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Question 1
Correct
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A 68-year-old diabetic man presents with a gradual decrease in consciousness and confusion over the past week. He normally controls his diabetes with metformin 500 mg twice a day. He recently received treatment for a urinary tract infection from his doctor, and his family reports that he has been excessively thirsty. He has vomited multiple times today. A urine dipstick test shows a small amount of white blood cells and moderate ketones. The results of his arterial blood gas test are as follows:
pH: 7.29
pO2: 11.1 kPa
pCO2: 4.6 kPa
HCO3-: 22 mmol/l
Na+: 154 mmol/l
K+: 3.2 mmol/l
Cl-: 100 mmol/l
Urea: 17.6 mmol/l
Glucose: 32 mmol/l
What is his serum osmolality?Your Answer: 364 mmol/l
Explanation:In an elderly patient with a history of gradual decline accompanied by high blood sugar levels, excessive thirst, and recent infection, the most likely diagnosis is hyperosmolar hyperglycemic state (HHS). This condition can be life-threatening, with a mortality rate of approximately 50%. Common symptoms include dehydration, elevated blood sugar levels, altered mental status, and electrolyte imbalances. About half of the patients with HHS also experience hypernatremia.
To calculate the serum osmolality, the formula is 2(K+ + Na+) + urea + glucose. In this case, the serum osmolality is 364 mmol/l, indicating a high level. It is important to discontinue the use of metformin in this patient due to the risk of metformin-associated lactic acidosis (MALA). Additionally, an intravenous infusion of insulin should be initiated.
The treatment goals for HHS are to address the underlying cause and gradually and safely:
– Normalize the osmolality
– Replace fluid and electrolyte losses
– Normalize blood glucose levelsIf significant ketonaemia is present (3β-hydroxybutyrate is more than 1 mmol/L), it indicates a relative lack of insulin, and insulin should be administered immediately. However, if significant ketonaemia is not present, insulin should not be started.
Patients with HHS are at a high risk of thromboembolism, and it is recommended to routinely administer low molecular weight heparin. In cases where the serum osmolality exceeds 350 mmol/l, full heparinization should be considered.
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This question is part of the following fields:
- Endocrinology
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Question 2
Correct
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A 45-year-old man with a long-standing history of type 2 diabetes mellitus complains of pain in his left buttock, hip, and thigh. The pain began abruptly a couple of months ago, and he cannot recall any previous injury. During the examination, you observe muscle wasting in his left quadriceps, struggles in standing up from a seated position, and an absent knee jerk on the left side. Additionally, you notice muscle fasciculations in his left thigh.
What is the SINGLE most probable diagnosis?Your Answer: Diabetic amyotrophy
Explanation:Diabetic amyotrophy, also referred to as proximal diabetic neuropathy, is the second most prevalent form of diabetic neuropathy. It typically begins with discomfort in the buttocks, hips, or thighs and is often initially experienced on one side. The pain may start off as mild and gradually progress or it can suddenly manifest, as seen in this case. Subsequently, weakness and wasting of the proximal muscles in the lower limbs occur, making it difficult for the patient to transition from sitting to standing without assistance. Reflexes in the affected areas can also be impacted. Good control of blood sugar levels, physiotherapy, and lifestyle adjustments can reverse diabetic amyotrophy.
Peripheral neuropathy is the most common type of diabetic neuropathy and typically manifests as pain or loss of sensation in the feet or hands.
Autonomic neuropathy leads to changes in digestion, bowel and bladder function, sexual response, and perspiration. It can also affect the cardiovascular system, resulting in rapid heart rates and orthostatic hypotension.
Focal neuropathy causes sudden weakness in a single nerve or group of nerves, resulting in pain, sensory loss, or muscle weakness. Any nerve in the body can be affected.
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This question is part of the following fields:
- Endocrinology
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Question 3
Incorrect
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A 65 year old is brought into the emergency department by two members of the public after collapsing in a nearby park. The patient appears confused, looking around the room but not responding to questions or commands. Verbal output is limited to grunting and coughing. Observations are taken and are shown below:
Blood pressure 148/76 mmHg
Pulse 90 bpm
Respirations 18 bpm
Temperature 36.8ºC
Oxygen Saturations 98% on air
Capillary glucose 1.2 mmol/l
What is the most appropriate next step in this patient's management?Your Answer: Administer 250ml 50% glucose via intravenous infusion over 15-30 minutes
Correct Answer: Give glucagon 1 mg via intramuscular injection
Explanation:The use of glucose infusion is not recommended due to its hypertonic nature, which can potentially increase the risk of extravasation injury.
Further Reading:
Diabetes Mellitus:
– Definition: a group of metabolic disorders characterized by persistent hyperglycemia caused by deficient insulin secretion, resistance to insulin, or both.
– Types: Type 1 diabetes (absolute insulin deficiency), Type 2 diabetes (insulin resistance and relative insulin deficiency), Gestational diabetes (develops during pregnancy), Other specific types (monogenic diabetes, diabetes secondary to pancreatic or endocrine disorders, diabetes secondary to drug treatment).
– Diagnosis: Type 1 diabetes diagnosed based on clinical grounds in adults presenting with hyperglycemia. Type 2 diabetes diagnosed in patients with persistent hyperglycemia and presence of symptoms or signs of diabetes.
– Risk factors for type 2 diabetes: obesity, inactivity, family history, ethnicity, history of gestational diabetes, certain drugs, polycystic ovary syndrome, metabolic syndrome, low birth weight.Hypoglycemia:
– Definition: lower than normal blood glucose concentration.
– Diagnosis: defined by Whipple’s triad (signs and symptoms of low blood glucose, low blood plasma glucose concentration, relief of symptoms after correcting low blood glucose).
– Blood glucose level for hypoglycemia: NICE defines it as <3.5 mmol/L, but there is inconsistency across the literature.
– Signs and symptoms: adrenergic or autonomic symptoms (sweating, hunger, tremor), neuroglycopenic symptoms (confusion, coma, convulsions), non-specific symptoms (headache, nausea).
– Treatment options: oral carbohydrate, buccal glucose gel, glucagon, dextrose. Treatment should be followed by re-checking glucose levels.Treatment of neonatal hypoglycemia:
– Treat with glucose IV infusion 10% given at a rate of 5 mL/kg/hour.
– Initial stat dose of 2 mL/kg over five minutes may be required for severe hypoglycemia.
– Mild asymptomatic persistent hypoglycemia may respond to a single dose of glucagon.
– If hypoglycemia is caused by an oral anti-diabetic drug, the patient should be admitted and ongoing glucose infusion or other therapies may be required. -
This question is part of the following fields:
- Endocrinology
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Question 4
Correct
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A 35-year-old man presents with occasional episodes of excessive sweating, rapid heartbeat, and a sense of panic and anxiety. He measured his blood pressure at home during one of these episodes and found it to be 190/110 mmHg. You measure it today and find it to be within the normal range at 118/74 mmHg. He mentions that his brother has a similar condition, but he can't recall the name of it.
What is the MOST LIKELY diagnosis for this patient?Your Answer: Phaeochromocytoma
Explanation:This patient is displaying symptoms and signs that are consistent with a diagnosis of phaeochromocytoma. Phaeochromocytoma is a rare functional tumor that originates from chromaffin cells in the adrenal medulla. There are also less common tumors called extra-adrenal paragangliomas, which develop in the ganglia of the sympathetic nervous system. Both types of tumors secrete catecholamines, leading to symptoms and signs associated with hyperactivity of the sympathetic nervous system.
The most common initial symptom is high blood pressure, which can either be sustained or occur in sudden episodes. The symptoms tend to be intermittent and can happen multiple times a day or very infrequently. However, as the disease progresses, the symptoms become more severe and occur more frequently.
Along with hypertension, the patient may experience the following clinical features:
– Headaches
– Excessive sweating
– Palpitations or rapid heartbeat
– Tremors
– Fever
– Nausea and vomiting
– Anxiety and panic attacks
– A feeling of impending doom
– Pain in the upper abdomen or flank
– Constipation
– Hypertensive retinopathy
– Low blood pressure upon standing (due to decreased blood volume)
– Cardiomyopathy
– Café au lait spotsIt is important to note that these symptoms and signs can vary from person to person, and not all individuals with phaeochromocytoma will experience all of them.
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This question is part of the following fields:
- Endocrinology
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Question 5
Correct
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A 37 year old woman presents to the emergency department with complaints of headache, profuse sweating, and heart palpitations. Upon examination, her blood pressure is measured at 228/114 mmHg. The possibility of phaeochromocytoma crosses your mind. Where do phaeochromocytomas typically originate within the adrenal tissue?
Your Answer: Medulla
Explanation:Phaeochromocytoma is a rare neuroendocrine tumor that secretes catecholamines. It typically arises from chromaffin tissue in the adrenal medulla, but can also occur in extra-adrenal chromaffin tissue. The majority of cases are spontaneous and occur in individuals aged 40-50 years. However, up to 30% of cases are hereditary and associated with genetic mutations. About 10% of phaeochromocytomas are metastatic, with extra-adrenal tumors more likely to be metastatic.
The clinical features of phaeochromocytoma are a result of excessive catecholamine production. Symptoms are typically paroxysmal and include hypertension, headaches, palpitations, sweating, anxiety, tremor, abdominal and flank pain, and nausea. Catecholamines have various metabolic effects, including glycogenolysis, mobilization of free fatty acids, increased serum lactate, increased metabolic rate, increased myocardial force and rate of contraction, and decreased systemic vascular resistance.
Diagnosis of phaeochromocytoma involves measuring plasma and urine levels of metanephrines, catecholamines, and urine vanillylmandelic acid. Imaging studies such as abdominal CT or MRI are used to determine the location of the tumor. If these fail to find the site, a scan with metaiodobenzylguanidine (MIBG) labeled with radioactive iodine is performed. The highest sensitivity and specificity for diagnosis is achieved with plasma metanephrine assay.
The definitive treatment for phaeochromocytoma is surgery. However, before surgery, the patient must be stabilized with medical management. This typically involves alpha-blockade with medications such as phenoxybenzamine or phentolamine, followed by beta-blockade with medications like propranolol. Alpha blockade is started before beta blockade to allow for expansion of blood volume and to prevent a hypertensive crisis.
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This question is part of the following fields:
- Endocrinology
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Question 6
Incorrect
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You are managing a 32-year-old type 1 diabetic patient who presented feeling generally unwell with a blood glucose of 27 mmol/l. The patient is currently being treated for diabetic ketoacidosis. The patient weighs 70kg and is currently receiving the following:
0.9% sodium chloride 1L with 40 mmol/l potassium chloride over 4 hours
3 units Actrapid® insulin / hour.
Monitoring bloods are taken and the results are shown below:
glucose 12.8 mmol/l
potassium 3.7 mmol/l
sodium 145 mmol/l
pH 7.2
What is the most appropriate action to take for this patient?Your Answer: Replace fluid infusion with 10% glucose in place of 0.9% sodium chloride
Correct Answer: Start 10% glucose infusion at a rate of 125 mL/hour in addition to existing treatment
Explanation:The healthcare provider should also assess the insulin infusion rate. It is important to note that the recommended minimum rate is 0.05 units per kilogram per hour. In this case, the patient weighs 60 kilograms and is currently receiving 3 units of Actrapid® insulin per hour, which is equivalent to 0.05 units per kilogram per hour. Therefore, the patient is already on the lowest possible dose. However, if the patient was on a higher dose of 0.1 units per kilogram per hour, it can be reduced once the glucose level falls below 14 mmol/l.
Further Reading:
Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia.
The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis.
DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain.
The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels.
Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L.
Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 7
Correct
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In which age group does Addison's disease typically first manifest?
Your Answer: Adults aged 30-50 years of age
Explanation:Adrenal insufficiency, also known as Addison’s disease, is a condition that is more frequently observed in women and typically manifests in individuals aged 30-50 years. While it can affect people of all ages, it predominantly occurs in women and those within the 30-50 age range.
Further Reading:
Addison’s disease, also known as primary adrenal insufficiency or hypoadrenalism, is a rare disorder caused by the destruction of the adrenal cortex. This leads to reduced production of glucocorticoids, mineralocorticoids, and adrenal androgens. The deficiency of cortisol results in increased production of adrenocorticotropic hormone (ACTH) due to reduced negative feedback to the pituitary gland. This condition can cause metabolic disturbances such as hyperkalemia, hyponatremia, hypercalcemia, and hypoglycemia.
The symptoms of Addison’s disease can vary but commonly include fatigue, weight loss, muscle weakness, and low blood pressure. It is more common in women and typically affects individuals between the ages of 30-50. The most common cause of primary hypoadrenalism in developed countries is autoimmune destruction of the adrenal glands. Other causes include tuberculosis, adrenal metastases, meningococcal septicaemia, HIV, and genetic disorders.
The diagnosis of Addison’s disease is often suspected based on low cortisol levels and electrolyte abnormalities. The adrenocorticotropic hormone stimulation test is commonly used for confirmation. Other investigations may include adrenal autoantibodies, imaging scans, and genetic screening.
Addisonian crisis is a potentially life-threatening condition that occurs when there is an acute deficiency of cortisol and aldosterone. It can be the first presentation of undiagnosed Addison’s disease. Precipitating factors of an Addisonian crisis include infection, dehydration, surgery, trauma, physiological stress, pregnancy, hypoglycemia, and acute withdrawal of long-term steroids. Symptoms of an Addisonian crisis include malaise, fatigue, nausea or vomiting, abdominal pain, fever, muscle pains, dehydration, confusion, and loss of consciousness.
There is no fixed consensus on diagnostic criteria for an Addisonian crisis, as symptoms are non-specific. Investigations may include blood tests, blood gas analysis, and septic screens if infection is suspected. Management involves administering hydrocortisone and fluids. Hydrocortisone is given parenterally, and the dosage varies depending on the age of the patient. Fluid resuscitation with saline is necessary to correct any electrolyte disturbances and maintain blood pressure. The underlying cause of the crisis should also be identified and treated. Close monitoring of sodium levels is important to prevent complications such as osmotic demyelination syndrome.
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This question is part of the following fields:
- Endocrinology
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Question 8
Correct
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A 70 year old male presents to the emergency department feeling generally fatigued. On taking a history the patient reports a decline in his skin and hair condition over the past few months. Thyroid function tests are ordered which show the following:
Test Result Normal range
TSH 6.2 miU/L 0.27 - 4.2 miU/L
Free T4 13 pmol/L 12.0 - 22.0 pmol/L
What is the diagnosis?Your Answer: Subclinical hypothyroidism
Explanation:Subclinical hypothyroidism is a condition where the thyroid-stimulating hormone (TSH) levels are higher than normal, but the levels of free thyroxine (T4) are still within the normal range. On the other hand, subclinical hyperthyroidism is a condition where the TSH levels are lower than normal, but the levels of free triiodothyronine (T3) and free thyroxine (T4) are still within the normal range.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 9
Correct
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A 72-year-old man presents to the Emergency Department anxious, confused, and agitated. He has also vomited several times. He has recently been prescribed a course of amoxicillin for a suspected chest infection by his primary care physician. You are unable to obtain a coherent medical history from him, but he has brought his regular medications with him, which include: aspirin, simvastatin, and carbimazole. His friend who accompanied him states that he stopped taking his medications a few days ago. His vital signs are as follows: temperature 38.9°C, heart rate 138, respiratory rate 23, blood pressure 173/96, and oxygen saturation 97% on room air.
Which of the following medications would be most appropriate to prescribe in this case?Your Answer: Potassium iodide
Explanation:Thyroid storm is a rare condition that affects only 1-2% of patients with hyperthyroidism. However, it is crucial to diagnose it promptly because it has a high mortality rate of approximately 10%. Thyroid storm is often triggered by a physiological stressor, such as stopping antithyroid therapy prematurely, recent surgery or radio-iodine treatment, infections (especially chest infections), trauma, diabetic ketoacidosis or hyperosmolar diabetic crisis, thyroid hormone overdose, pre-eclampsia. It typically occurs in patients with Graves’ disease or toxic multinodular goitre and presents with sudden and severe hyperthyroidism. Symptoms include high fever (over 41°C), dehydration, rapid heart rate (greater than 140 beats per minute) with or without irregular heart rhythms, low blood pressure, congestive heart failure, nausea, jaundice, vomiting, diarrhea, abdominal pain, confusion, agitation, delirium, psychosis, seizures, or coma.
To diagnose thyroid storm, various blood tests should be conducted, including a full blood count, urea and electrolytes, blood glucose, coagulation screen, CRP, and thyroid profile (T4/T3 and TSH). A bone profile/calcium test should also be done as 10% of patients develop hypocalcemia. Blood cultures should be taken as well. Other important investigations include a urine dipstick/MC&S, chest X-ray, and ECG.
The management of thyroid storm involves several steps. Intravenous fluids, such as 1-2 liters of 0.9% saline, should be administered. Airway support and management should be provided as necessary. A nasogastric tube should be inserted if the patient is vomiting. Urgent referral for inpatient management is essential. Paracetamol (1 g PO/IV) can be given to reduce fever. Benzodiazepines, such as diazepam (5-20 mg PO/IV), can be used for sedation. Steroids, like hydrocortisone (100 mg IV), may be necessary if there is co-existing adrenal suppression. Antibiotics should be prescribed if there is an intercurrent infection. Beta-blockers, such as propranolol (80 mg PO), can help control heart rate. High-dose carbimazole (45-60 mg/day) is recommended.
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This question is part of the following fields:
- Endocrinology
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Question 10
Incorrect
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A 62 year old male presents to the emergency department with worsening cellulitis. The patient informs you that he visited the after-hours GP earlier in the week. The after-hours GP prescribed oral antibiotics, which the patient has been taking for 3 days. However, the patient notices that the red area is spreading despite the medication. The patient mentions to you that he informed the GP about his susceptibility to infections, and the GP ordered a blood test for diabetes, advising him to follow up with his regular GP. You come across an HbA1c result on the pathology system. What is the diagnostic threshold for diabetes?
Your Answer: HbA1c ≥ 38 mmol/mol
Correct Answer: HbA1c ≥ 48 mmol/mol
Explanation:An HBA1C result between 42-47 mmol/mol indicates a pre-diabetic condition.
Further Reading:
Diabetes Mellitus:
– Definition: a group of metabolic disorders characterized by persistent hyperglycemia caused by deficient insulin secretion, resistance to insulin, or both.
– Types: Type 1 diabetes (absolute insulin deficiency), Type 2 diabetes (insulin resistance and relative insulin deficiency), Gestational diabetes (develops during pregnancy), Other specific types (monogenic diabetes, diabetes secondary to pancreatic or endocrine disorders, diabetes secondary to drug treatment).
– Diagnosis: Type 1 diabetes diagnosed based on clinical grounds in adults presenting with hyperglycemia. Type 2 diabetes diagnosed in patients with persistent hyperglycemia and presence of symptoms or signs of diabetes.
– Risk factors for type 2 diabetes: obesity, inactivity, family history, ethnicity, history of gestational diabetes, certain drugs, polycystic ovary syndrome, metabolic syndrome, low birth weight.Hypoglycemia:
– Definition: lower than normal blood glucose concentration.
– Diagnosis: defined by Whipple’s triad (signs and symptoms of low blood glucose, low blood plasma glucose concentration, relief of symptoms after correcting low blood glucose).
– Blood glucose level for hypoglycemia: NICE defines it as <3.5 mmol/L, but there is inconsistency across the literature.
– Signs and symptoms: adrenergic or autonomic symptoms (sweating, hunger, tremor), neuroglycopenic symptoms (confusion, coma, convulsions), non-specific symptoms (headache, nausea).
– Treatment options: oral carbohydrate, buccal glucose gel, glucagon, dextrose. Treatment should be followed by re-checking glucose levels.Treatment of neonatal hypoglycemia:
– Treat with glucose IV infusion 10% given at a rate of 5 mL/kg/hour.
– Initial stat dose of 2 mL/kg over five minutes may be required for severe hypoglycemia.
– Mild asymptomatic persistent hypoglycemia may respond to a single dose of glucagon.
– If hypoglycemia is caused by an oral anti-diabetic drug, the patient should be admitted and ongoing glucose infusion or other therapies may be required. -
This question is part of the following fields:
- Endocrinology
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Question 11
Correct
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A 21 year old female is brought to the emergency department by her boyfriend as he is concerned the patient has become drowsy after intermittent vomiting throughout the day. The boyfriend informs you that the patient is a type 1 diabetic. After evaluation, the patient is diagnosed with diabetic ketoacidosis and started on fluids and an insulin infusion. Due to a lack of available beds, the patient is transferred to the A&E observation ward. Several hours later, you are asked about discontinuing the insulin infusion. What criteria must be met before stopping the insulin infusion?
Your Answer: Ketones less than 0.3 mmol/l and venous pH over 7.3
Explanation:In the treatment of diabetic ketoacidosis (DKA), it is important to continue the infusion of insulin until certain criteria are met. These criteria include ketone levels being less than 0.3 mmol/L and the pH of the blood being above 7.3 or the bicarbonate levels being above 18 mmol/L. Additionally, the patient should feel comfortable enough to eat at this point. It is crucial not to stop the intravenous insulin infusion until at least 30 minutes after administering subcutaneous short-acting insulin.
Further Reading:
Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia.
The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis.
DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain.
The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels.
Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L.
Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 12
Correct
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A 36 year old male comes to the emergency department complaining of increased thirst and frequent urination. During the assessment, you order blood and urine samples to measure osmolality. The results reveal an elevated plasma osmolality of 320 mOSm/Kg and a decreased urine osmolality of 198 mOSm/Kg. What is the most probable diagnosis?
Your Answer: Diabetes insipidus
Explanation:Diabetes insipidus (DI) is characterized by specific biochemical markers. One of these markers is a low urine osmolality, meaning that the concentration of solutes in the urine is lower than normal. In contrast, the serum osmolality, which measures the concentration of solutes in the blood, is high in individuals with DI. This combination of low urine osmolality and high serum osmolality is indicative of DI. Other common biochemical disturbances associated with DI include elevated plasma osmolality, polyuria (excessive urine production), and hypernatremia (high sodium levels in the blood). However, it is important to note that sodium levels can sometimes be within the normal range in individuals with DI. It is worth mentioning that conditions such as Addison’s disease, syndrome of inappropriate antidiuretic hormone secretion (SIADH), and primary polydipsia are associated with low serum osmolality and hyponatremia. Additionally, the use of selective serotonin reuptake inhibitors (SSRIs) can also lead to hyponatremia as a side effect.
Further Reading:
Diabetes insipidus (DI) is a condition characterized by either a decrease in the secretion of antidiuretic hormone (cranial DI) or insensitivity to antidiuretic hormone (nephrogenic DI). Antidiuretic hormone, also known as arginine vasopressin, is produced in the hypothalamus and released from the posterior pituitary. The typical biochemical disturbances seen in DI include elevated plasma osmolality, low urine osmolality, polyuria, and hypernatraemia.
Cranial DI can be caused by various factors such as head injury, CNS infections, pituitary tumors, and pituitary surgery. Nephrogenic DI, on the other hand, can be genetic or result from electrolyte disturbances or the use of certain drugs. Symptoms of DI include polyuria, polydipsia, nocturia, signs of dehydration, and in children, irritability, failure to thrive, and fatigue.
To diagnose DI, a 24-hour urine collection is done to confirm polyuria, and U&Es will typically show hypernatraemia. High plasma osmolality with low urine osmolality is also observed. Imaging studies such as MRI of the pituitary, hypothalamus, and surrounding tissues may be done, as well as a fluid deprivation test to evaluate the response to desmopressin.
Management of cranial DI involves supplementation with desmopressin, a synthetic form of arginine vasopressin. However, hyponatraemia is a common side effect that needs to be monitored. In nephrogenic DI, desmopressin supplementation is usually not effective, and management focuses on ensuring adequate fluid intake to offset water loss and monitoring electrolyte levels. Causative drugs need to be stopped, and there is a risk of developing complications such as hydroureteronephrosis and an overdistended bladder.
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This question is part of the following fields:
- Endocrinology
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Question 13
Correct
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A 10 year old male is brought into the emergency department due to worsening fatigue, vomiting, and frequent urination over the past 48 hours. You assess for potential underlying causes, including diabetic ketoacidosis (DKA). DKA is characterized by which of the following?
Your Answer: Hyperglycaemia, acidosis and ketonaemia
Explanation:DKA is characterized by three main symptoms: high blood sugar levels (hyperglycemia), an acidic pH in the body (acidosis), and an increased presence of ketones in the blood (ketonaemia).
Further Reading:
Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia.
The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis.
DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain.
The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels.
Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L.
Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 14
Incorrect
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A 42 year old male patient is brought into resus with a three day history of nausea and vomiting. He has decreased GCS, is hypotensive and tachycardic. His roommate informs you that he was diagnosed with Addison's disease approximately six months ago and frequently neglects to take his prescribed medication. What is the most accurate description of the underlying cause of Addison's disease?
Your Answer: Inappropriate hormonal response of the adrenal medulla
Correct Answer: Destruction of the adrenal cortex
Explanation:Addison’s disease occurs when the adrenal cortex is destroyed. The anterior pituitary gland produces and releases adrenocorticotropic hormone (ACTH), not the posterior pituitary gland. The adrenal cortex is responsible for producing cortisol, not the adrenal medulla.
Further Reading:
Addison’s disease, also known as primary adrenal insufficiency or hypoadrenalism, is a rare disorder caused by the destruction of the adrenal cortex. This leads to reduced production of glucocorticoids, mineralocorticoids, and adrenal androgens. The deficiency of cortisol results in increased production of adrenocorticotropic hormone (ACTH) due to reduced negative feedback to the pituitary gland. This condition can cause metabolic disturbances such as hyperkalemia, hyponatremia, hypercalcemia, and hypoglycemia.
The symptoms of Addison’s disease can vary but commonly include fatigue, weight loss, muscle weakness, and low blood pressure. It is more common in women and typically affects individuals between the ages of 30-50. The most common cause of primary hypoadrenalism in developed countries is autoimmune destruction of the adrenal glands. Other causes include tuberculosis, adrenal metastases, meningococcal septicaemia, HIV, and genetic disorders.
The diagnosis of Addison’s disease is often suspected based on low cortisol levels and electrolyte abnormalities. The adrenocorticotropic hormone stimulation test is commonly used for confirmation. Other investigations may include adrenal autoantibodies, imaging scans, and genetic screening.
Addisonian crisis is a potentially life-threatening condition that occurs when there is an acute deficiency of cortisol and aldosterone. It can be the first presentation of undiagnosed Addison’s disease. Precipitating factors of an Addisonian crisis include infection, dehydration, surgery, trauma, physiological stress, pregnancy, hypoglycemia, and acute withdrawal of long-term steroids. Symptoms of an Addisonian crisis include malaise, fatigue, nausea or vomiting, abdominal pain, fever, muscle pains, dehydration, confusion, and loss of consciousness.
There is no fixed consensus on diagnostic criteria for an Addisonian crisis, as symptoms are non-specific. Investigations may include blood tests, blood gas analysis, and septic screens if infection is suspected. Management involves administering hydrocortisone and fluids. Hydrocortisone is given parenterally, and the dosage varies depending on the age of the patient. Fluid resuscitation with saline is necessary to correct any electrolyte disturbances and maintain blood pressure. The underlying cause of the crisis should also be identified and treated. Close monitoring of sodium levels is important to prevent complications such as osmotic demyelination syndrome.
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This question is part of the following fields:
- Endocrinology
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Question 15
Incorrect
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A 2-week-old baby comes in with vomiting, decreased weight, and an electrolyte imbalance. After being referred to the pediatricians, they are diagnosed with congenital adrenal hyperplasia (CAH).
Which ONE statement is correct about this condition?Your Answer: The commonest cause is 11-beta-hydroxylase deficiency
Correct Answer: Diagnosis can be made by finding elevated 17-hydroxyprogesterone levels
Explanation:Congenital adrenal hyperplasia (CAH) is a group of inherited disorders that are caused by autosomal recessive genes. The majority of affected patients, over 90%, have a deficiency of the enzyme 21-hydroxylase. This enzyme is encoded by the 21-hydroxylase gene, which is located on chromosome 6p21 within the HLA histocompatibility complex. The second most common cause of CAH is a deficiency of the enzyme 11-beta-hydroxylase. The condition is rare, with an incidence of approximately 1 in 500 births in the UK. It is more prevalent in the offspring of consanguineous marriages.
The deficiency of 21-hydroxylase leads to a deficiency of cortisol and/or aldosterone, as well as an excess of precursor steroids. As a result, there is an increased secretion of ACTH from the anterior pituitary, leading to adrenocortical hyperplasia.
The severity of CAH varies depending on the degree of 21-hydroxylase deficiency. Female infants often exhibit ambiguous genitalia, such as clitoral hypertrophy and labial fusion. Male infants may have an enlarged scrotum and/or scrotal pigmentation. Hirsutism, or excessive hair growth, occurs in 10% of cases.
Boys with CAH often experience a salt-losing adrenal crisis at around 1-3 weeks of age. This crisis is characterized by symptoms such as vomiting, weight loss, floppiness, and circulatory collapse.
The diagnosis of CAH can be made by detecting markedly elevated levels of the metabolic precursor 17-hydroxyprogesterone. Neonatal screening is possible, primarily through the identification of persistently elevated 17-hydroxyprogesterone levels.
In infants presenting with a salt-losing crisis, the following biochemical abnormalities are observed: hyponatremia (low sodium levels), hyperkalemia (high potassium levels), metabolic acidosis, and hypoglycemia.
Boys experiencing a salt-losing crisis will require fluid resuscitation, intravenous dextrose, and intravenous hydrocortisone.
Affected females will require corrective surgery for their external genitalia. However, they have an intact uterus and ovaries and are capable of having children.
The long-term management of both sexes involves lifelong replacement of hydrocortisone (to suppress ACTH levels).
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This question is part of the following fields:
- Endocrinology
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Question 16
Incorrect
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A 75-year-old gentleman is brought in by ambulance from his assisted living facility with a decreased level of consciousness. He has a history of type II diabetes mellitus, which is managed with glibenclamide and metformin. He is unconscious but breathing on his own and has a strong pulse. You order a blood glucose test, and his result is 1.0 mmol/l. Intravenous access has been established.
What is the MOST appropriate initial step in managing this patient?Your Answer: Administer 1 mg glucagon IM or SC
Correct Answer: Administer 150 mL of 10% dextrose
Explanation:This woman is experiencing hypoglycemia, most likely due to her treatment with glibenclamide. Hypoglycemia is defined as having a blood glucose level below 3.0 mmol/l, and it is crucial to promptly treat this condition to prevent further complications such as seizures, stroke, or heart problems.
If the patient is conscious and able to swallow, a fast-acting carbohydrate like sugar or GlucoGel can be given orally. However, since this woman is unconscious, this option is not feasible.
In cases where intravenous access is available, like in this situation, an intravenous bolus of dextrose should be administered. The recommended doses are either 75 mL of 20% dextrose or 150 mL of 10% dextrose.
When a patient is at home and intravenous access is not possible, the preferred initial treatment is glucagon. Under these circumstances, 1 mg of glucagon can be given either intramuscularly (IM) or subcutaneously (SC).
It is important to note that immediate action is necessary to address hypoglycemia and prevent any potential complications.
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This question is part of the following fields:
- Endocrinology
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Question 17
Correct
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Your supervisor requests you to arrange a training session for the new medical interns on diabetes mellitus and hypoglycemia. Which of the following statements is accurate?
Your Answer: Glucose levels should be checked 10-15 minutes after administering glucagon
Explanation:After administering any treatment for hypoglycemia, it is important to re-check glucose levels within 10-15 minutes. This allows for a reassessment of the effectiveness of the treatment and the possibility of administering additional treatment if needed. Obesity is a significant risk factor for developing type 2 diabetes, while most individuals with type 1 diabetes have a body mass index (BMI) below 25 kg/m2. It is crucial to provide carbohydrates promptly after treating hypoglycemia. The correct dose of glucagon for treating hypoglycemia in adults is 1 mg, and the same dose can be used for children aged 9 and above who weigh more than 25kg. HbA1c results between 42 and 47 indicate pre-diabetes.
Further Reading:
Diabetes Mellitus:
– Definition: a group of metabolic disorders characterized by persistent hyperglycemia caused by deficient insulin secretion, resistance to insulin, or both.
– Types: Type 1 diabetes (absolute insulin deficiency), Type 2 diabetes (insulin resistance and relative insulin deficiency), Gestational diabetes (develops during pregnancy), Other specific types (monogenic diabetes, diabetes secondary to pancreatic or endocrine disorders, diabetes secondary to drug treatment).
– Diagnosis: Type 1 diabetes diagnosed based on clinical grounds in adults presenting with hyperglycemia. Type 2 diabetes diagnosed in patients with persistent hyperglycemia and presence of symptoms or signs of diabetes.
– Risk factors for type 2 diabetes: obesity, inactivity, family history, ethnicity, history of gestational diabetes, certain drugs, polycystic ovary syndrome, metabolic syndrome, low birth weight.Hypoglycemia:
– Definition: lower than normal blood glucose concentration.
– Diagnosis: defined by Whipple’s triad (signs and symptoms of low blood glucose, low blood plasma glucose concentration, relief of symptoms after correcting low blood glucose).
– Blood glucose level for hypoglycemia: NICE defines it as <3.5 mmol/L, but there is inconsistency across the literature.
– Signs and symptoms: adrenergic or autonomic symptoms (sweating, hunger, tremor), neuroglycopenic symptoms (confusion, coma, convulsions), non-specific symptoms (headache, nausea).
– Treatment options: oral carbohydrate, buccal glucose gel, glucagon, dextrose. Treatment should be followed by re-checking glucose levels.Treatment of neonatal hypoglycemia:
– Treat with glucose IV infusion 10% given at a rate of 5 mL/kg/hour.
– Initial stat dose of 2 mL/kg over five minutes may be required for severe hypoglycemia.
– Mild asymptomatic persistent hypoglycemia may respond to a single dose of glucagon.
– If hypoglycemia is caused by an oral anti-diabetic drug, the patient should be admitted and ongoing glucose infusion or other therapies may be required. -
This question is part of the following fields:
- Endocrinology
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Question 18
Correct
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A 75 year old man with a long-standing history of hypothyroidism presents to the emergency department due to worsening confusion and fatigue. On examination you note diffuse non-pitting edema and decreased deep tendon reflexes. Observations are shown below:
Blood pressure 98/66 mmHg
Pulse 42 bpm
Respiration rate 11 bpm
Temperature 34.6ºC
Bloods are sent for analysis. Which of the following laboratory abnormalities would you expect in a patient with this condition?Your Answer: Hyponatremia
Explanation:Myxoedema coma is a condition characterized by severe hypothyroidism, leading to a state of metabolic decompensation and changes in mental status. Patients with myxoedema coma often experience electrolyte disturbances such as hypoglycemia and hyponatremia. In addition, laboratory findings typically show elevated levels of TSH, as well as low levels of T4 and T3. Other expected findings include hypoxemia and hypercapnia.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 19
Correct
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You assess a patient with diabetes who has a past medical history of inadequate blood sugar control and diabetic neuropathy. What is the most prevalent form of diabetic neuropathy?
Your Answer: Peripheral neuropathy
Explanation:The most prevalent form of neuropathy in individuals with diabetes is peripheral neuropathy. Following closely behind is diabetic amyotrophy.
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This question is part of the following fields:
- Endocrinology
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Question 20
Correct
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A 72 year old male is brought into the emergency department by his wife with increasing fatigue, weakness and confusion over the past week. You note the patient takes metformin for type 2 diabetes mellitus. The patient's observations and initial tests are shown below:
Blood pressure 96/60 mmHg
Pulse 114 bpm
Respiration rate 22 bpm
Oxygen saturations 96% on air
Na+ 147 mmol/l
K+ 5.6 mmol/l
Urea 21 mmol/l
Creatinine 132 µmol/l
Glucose 32 mmol/l
pH 7.33
Bicarbonate 19 mmol/l
Ketones 2 mmol/l
What is the most likely diagnosis?Your Answer: Hyperosmolar hyperglycaemic state
Explanation:Hyperosmolar hyperglycaemic state (HHS) is a condition characterized by extremely high blood sugar levels, dehydration, and increased osmolality without significant ketosis. In this patient, the symptoms are consistent with HHS as they have high blood sugar levels without significant ketoacidosis (pH is above 7.3 and ketones are less than 3 mmol/L). Additionally, they show signs of dehydration with low blood pressure and a fast heart rate. The osmolality is calculated to be equal to or greater than 320 mosmol/kg, indicating increased concentration of solutes in the blood.
Further Reading:
Hyperosmolar hyperglycaemic state (HHS) is a syndrome that occurs in people with type 2 diabetes and is characterized by extremely high blood glucose levels, dehydration, and hyperosmolarity without significant ketosis. It can develop over days or weeks and has a mortality rate of 5-20%, which is higher than that of diabetic ketoacidosis (DKA). HHS is often precipitated by factors such as infection, inadequate diabetic treatment, physiological stress, or certain medications.
Clinical features of HHS include polyuria, polydipsia, nausea, signs of dehydration (hypotension, tachycardia, poor skin turgor), lethargy, confusion, and weakness. Initial investigations for HHS include measuring capillary blood glucose, venous blood gas, urinalysis, and an ECG to assess for any potential complications such as myocardial infarction. Osmolality should also be calculated to monitor the severity of the condition.
The management of HHS aims to correct dehydration, hyperglycaemia, hyperosmolarity, and electrolyte disturbances, as well as identify and treat any underlying causes. Intravenous 0.9% sodium chloride solution is the principal fluid used to restore circulating volume and reverse dehydration. If the osmolality does not decline despite adequate fluid balance, a switch to 0.45% sodium chloride solution may be considered. Care must be taken in correcting plasma sodium and osmolality to avoid complications such as cerebral edema and osmotic demyelination syndrome.
The rate of fall of plasma sodium should not exceed 10 mmol/L in 24 hours, and the fall in blood glucose should be no more than 5 mmol/L per hour. Low-dose intravenous insulin may be initiated if the blood glucose is not falling with fluids alone or if there is significant ketonaemia. Potassium replacement should be guided by the potassium level, and the patient should be encouraged to drink as soon as it is safe to do so.
Complications of treatment, such as fluid overload, cerebral edema, or central pontine myelinolysis, should be assessed for, and underlying precipitating factors should be identified and treated. Prophylactic anticoagulation is required in most patients, and all patients should be assumed to be at high risk of foot ulceration, necessitating appropriate foot protection and daily foot checks.
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This question is part of the following fields:
- Endocrinology
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Question 21
Incorrect
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A 7 year old girl is brought into the emergency department with a 24 hour history of vomiting and becoming increasingly tired. A capillary blood glucose is taken and the result is shown as 25 mmol/l. You suspect diabetic ketoacidosis (DKA). Which of the following is included in the diagnostic criteria for DKA?
Your Answer: Blood pH <7.3 or bicarbonate <15 mmol/L
Correct Answer:
Explanation:To diagnose diabetic ketoacidosis (DKA), all three of the following criteria must be present: ketonaemia (≥3 mmol/L) or ketonuria (> 2+ on urine dipstick), blood glucose > 11 mmol/L or known diabetes mellitus, and blood pH <7.3 or bicarbonate < 15 mmol/L. It is important to note that plasma osmolality and anion gap, although typically elevated in DKA, are not included in the diagnostic criteria. Further Reading: Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia. The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis. DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain. The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels. Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L. Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 22
Incorrect
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A 32 year old male attends the emergency department following a fall in which he sustained a minor head injury. You observe that the patient is a Ukrainian refugee and has recently arrived in SA. During the assessment, you notice a significant goitre. Upon checking his thyroid function, it confirms hypothyroidism. What is the most probable reason for his hypothyroidism?
Your Answer: Hashimoto's thyroiditis
Correct Answer: Iodine deficiency
Explanation:Iodine deficiency is a widespread issue globally and is the leading cause of hypothyroidism worldwide. It is particularly prevalent in numerous African countries, as well as in developed nations such as Norway, Germany, Russia, and Ukraine. In the UK, however, autoimmune thyroiditis is the most common cause of hypothyroidism.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 23
Incorrect
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A 70-year-old woman from a retirement community experiences a sudden collapse. Her blood sugar level is measured and found to be 2.2. She has a medical history of diabetes mellitus.
Which ONE medication is most likely to have caused her episode of hypoglycemia?Your Answer: Sitagliptin
Correct Answer: Pioglitazone
Explanation:Of all the medications mentioned in this question, only pioglitazone is known to be a potential cause of hypoglycemia. Glucagon, on the other hand, is specifically used as a treatment for hypoglycemia. The remaining medications mentioned are antidiabetic drugs that do not typically lead to hypoglycemia when used alone.
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This question is part of the following fields:
- Endocrinology
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Question 24
Correct
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A 35 year old male is brought into the emergency department after collapsing at home. The patient is observed to be hypotensive and drowsy upon arrival and is promptly transferred to the resuscitation bay. The patient's spouse informs you that the patient has been feeling sick with nausea and vomiting for the past 48 hours. It is important to note that the patient has a medical history of Addison's disease. What would be the most suitable initial treatment option?
Your Answer: 100mg IM hydrocortisone
Explanation:The first-line treatment for Addisonian (adrenal) crisis is hydrocortisone. This patient displays symptoms that indicate an Addisonian crisis, and the main components of their management involve administering hydrocortisone and providing intravenous fluids for resuscitation.
Further Reading:
Addison’s disease, also known as primary adrenal insufficiency or hypoadrenalism, is a rare disorder caused by the destruction of the adrenal cortex. This leads to reduced production of glucocorticoids, mineralocorticoids, and adrenal androgens. The deficiency of cortisol results in increased production of adrenocorticotropic hormone (ACTH) due to reduced negative feedback to the pituitary gland. This condition can cause metabolic disturbances such as hyperkalemia, hyponatremia, hypercalcemia, and hypoglycemia.
The symptoms of Addison’s disease can vary but commonly include fatigue, weight loss, muscle weakness, and low blood pressure. It is more common in women and typically affects individuals between the ages of 30-50. The most common cause of primary hypoadrenalism in developed countries is autoimmune destruction of the adrenal glands. Other causes include tuberculosis, adrenal metastases, meningococcal septicaemia, HIV, and genetic disorders.
The diagnosis of Addison’s disease is often suspected based on low cortisol levels and electrolyte abnormalities. The adrenocorticotropic hormone stimulation test is commonly used for confirmation. Other investigations may include adrenal autoantibodies, imaging scans, and genetic screening.
Addisonian crisis is a potentially life-threatening condition that occurs when there is an acute deficiency of cortisol and aldosterone. It can be the first presentation of undiagnosed Addison’s disease. Precipitating factors of an Addisonian crisis include infection, dehydration, surgery, trauma, physiological stress, pregnancy, hypoglycemia, and acute withdrawal of long-term steroids. Symptoms of an Addisonian crisis include malaise, fatigue, nausea or vomiting, abdominal pain, fever, muscle pains, dehydration, confusion, and loss of consciousness.
There is no fixed consensus on diagnostic criteria for an Addisonian crisis, as symptoms are non-specific. Investigations may include blood tests, blood gas analysis, and septic screens if infection is suspected. Management involves administering hydrocortisone and fluids. Hydrocortisone is given parenterally, and the dosage varies depending on the age of the patient. Fluid resuscitation with saline is necessary to correct any electrolyte disturbances and maintain blood pressure. The underlying cause of the crisis should also be identified and treated. Close monitoring of sodium levels is important to prevent complications such as osmotic demyelination syndrome.
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This question is part of the following fields:
- Endocrinology
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Question 25
Correct
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A 45-year-old man presents to the Emergency Department anxious, confused, and agitated. He has also vomited several times. He has recently been prescribed a course of amoxicillin for a presumed sinus infection by his primary care physician. You are unable to obtain a coherent medical history from him, but he has his regular medications with him, which include: ibuprofen, atorvastatin, and metformin. He has a friend with him who states he stopped taking his medications a few days ago. His vital signs are: temperature 38.9°C, heart rate 138, respiratory rate 23, blood pressure 173/96, and oxygen saturation 97% on room air.
What is the SINGLE most likely diagnosis?Your Answer: Thyroid storm
Explanation:Thyroid storm is a rare condition that affects only 1-2% of patients with hyperthyroidism. However, it is crucial to diagnose it promptly because it has a high mortality rate of approximately 10%. Thyroid storm is often triggered by a physiological stressor, such as stopping antithyroid therapy prematurely, recent surgery or radio-iodine treatment, infections (especially chest infections), trauma, diabetic ketoacidosis or hyperosmolar diabetic crisis, thyroid hormone overdose, pre-eclampsia. It typically occurs in patients with Graves’ disease or toxic multinodular goitre and presents with sudden and severe hyperthyroidism. Symptoms include high fever (over 41°C), dehydration, rapid heart rate (greater than 140 beats per minute) with or without irregular heart rhythms, low blood pressure, congestive heart failure, nausea, jaundice, vomiting, diarrhea, abdominal pain, confusion, agitation, delirium, psychosis, seizures, or coma.
To diagnose thyroid storm, various blood tests should be conducted, including a full blood count, urea and electrolytes, blood glucose, coagulation screen, CRP, and thyroid profile (T4/T3 and TSH). A bone profile/calcium test should also be done as 10% of patients develop hypocalcemia. Blood cultures should be taken as well. Other important investigations include a urine dipstick/MC&S, chest X-ray, and ECG.
The management of thyroid storm involves several steps. Intravenous fluids, such as 1-2 liters of 0.9% saline, should be administered. Airway support and management should be provided as necessary. A nasogastric tube should be inserted if the patient is vomiting. Urgent referral for inpatient management is essential. Paracetamol (1 g PO/IV) can be given to reduce fever. Benzodiazepines, such as diazepam (5-20 mg PO/IV), can be used for sedation. Steroids, like hydrocortisone (100 mg IV), may be necessary if there is co-existing adrenal suppression. Antibiotics should be prescribed if there is an intercurrent infection. Beta-blockers, such as propranolol (80 mg PO), can help control heart rate. High-dose carbimazole (45-60 mg/day) is recommended.
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This question is part of the following fields:
- Endocrinology
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Question 26
Correct
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A 45 year old male attends the emergency department and complains about fatigue, muscle spasms and frequent urination. A capillary blood glucose is normal at 4.4 mmol/l. You review his medication list and suspect the patient may have acquired diabetes insipidus. Which medication is most likely to be responsible?
Your Answer: Lithium
Explanation:Nephrogenic diabetes insipidus may develop in a certain percentage of individuals who take lithium.
Further Reading:
Diabetes insipidus (DI) is a condition characterized by either a decrease in the secretion of antidiuretic hormone (cranial DI) or insensitivity to antidiuretic hormone (nephrogenic DI). Antidiuretic hormone, also known as arginine vasopressin, is produced in the hypothalamus and released from the posterior pituitary. The typical biochemical disturbances seen in DI include elevated plasma osmolality, low urine osmolality, polyuria, and hypernatraemia.
Cranial DI can be caused by various factors such as head injury, CNS infections, pituitary tumors, and pituitary surgery. Nephrogenic DI, on the other hand, can be genetic or result from electrolyte disturbances or the use of certain drugs. Symptoms of DI include polyuria, polydipsia, nocturia, signs of dehydration, and in children, irritability, failure to thrive, and fatigue.
To diagnose DI, a 24-hour urine collection is done to confirm polyuria, and U&Es will typically show hypernatraemia. High plasma osmolality with low urine osmolality is also observed. Imaging studies such as MRI of the pituitary, hypothalamus, and surrounding tissues may be done, as well as a fluid deprivation test to evaluate the response to desmopressin.
Management of cranial DI involves supplementation with desmopressin, a synthetic form of arginine vasopressin. However, hyponatraemia is a common side effect that needs to be monitored. In nephrogenic DI, desmopressin supplementation is usually not effective, and management focuses on ensuring adequate fluid intake to offset water loss and monitoring electrolyte levels. Causative drugs need to be stopped, and there is a risk of developing complications such as hydroureteronephrosis and an overdistended bladder.
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This question is part of the following fields:
- Endocrinology
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Question 27
Incorrect
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A 15 year old female is brought to the emergency department by a family member after collapsing at home. The triage nurse asks you to evaluate the patient after obtaining vital signs and a capillary glucose. The results are as follows:
Blood pressure: 88/58 mmHg
Pulse rate: 118 bpm
Respiration rate: 38 bpm
Temperature: 37.5ºC
Oxygen saturation: 97% on room air
Glucose level: 28 mmol/l
Further tests confirm a diagnosis of diabetic ketoacidosis. What would be the most appropriate initial treatment in this case?Your Answer: Administer 1000 ml of 0.9% sodium chloride over 10 - 15 minutes
Correct Answer: Administer 500ml of 0.9% sodium chloride solution over 10-15 minutes
Explanation:It is recommended to administer sodium chloride solution gradually over a period of 10-15 minutes. If the systolic does not respond adequately, the bolus dose may need to be repeated. It is important to note that patients with DKA often have a fluid deficit of more than 5 liters, which should be taken into consideration.
Further Reading:
Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia.
The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis.
DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain.
The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels.
Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L.
Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 28
Correct
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A 36 year old male is brought into the emergency department following a syncopal episode. The patient reports several weeks of generalized weakness, muscle aches, and feeling dizzy when standing which has been gradually worsening. On examination, you note pigmented areas on the lips, tongue, and gums with patches of vitiligo around the hands and wrists. Observation and blood test results are shown below:
Hb 132 g/l
Platelets 124 * 109/l
WBC 8.0 * 109/l
Na+ 128 mmol/l
K+ 6.2 mmol/l
Urea 8.9 mmol/l
Creatinine 95 µmol/l
Glucose 3.1 mmol/l
Blood pressure 94/56 mmHg
Pulse 102 bpm
Respirations 18 bpm
Oxygen sats 97% on air
What is the most likely diagnosis?Your Answer: Addison's disease
Explanation:Addison’s disease, also known as adrenal insufficiency, is characterized by a gradual onset of symptoms over several weeks, although it can sometimes occur suddenly. The diagnosis of Addison’s disease can be challenging as its symptoms, such as fatigue, muscle pain, weight loss, and nausea, are non-specific. However, a key feature is low blood pressure. The disease is associated with changes in pigmentation, ranging from increased pigmentation due to elevated ACTH levels to the development of vitiligo caused by the autoimmune destruction of melanocytes.
Patients with Addison’s disease often exhibit hyponatremia (low sodium levels) and hyperkalemia (high potassium levels). If the patient is dehydrated, this may be reflected in elevated urea and creatinine levels. While hypercalcemia (high calcium levels) and hypoglycemia (low blood sugar levels) can occur in Addison’s disease, they are less common than hyponatremia and hyperkalemia.
In contrast, diabetes insipidus, characterized by normal or elevated sodium levels, does not cause pigmentation changes. Cushing’s syndrome, which results from excess steroid production, is almost the opposite of Addison’s disease, with hypertension (high blood pressure) and hypokalemia (low potassium levels) being typical symptoms. Phaeochromocytoma, on the other hand, is associated with episodes of high blood pressure and hyperglycemia (high blood sugar levels).
Further Reading:
Addison’s disease, also known as primary adrenal insufficiency or hypoadrenalism, is a rare disorder caused by the destruction of the adrenal cortex. This leads to reduced production of glucocorticoids, mineralocorticoids, and adrenal androgens. The deficiency of cortisol results in increased production of adrenocorticotropic hormone (ACTH) due to reduced negative feedback to the pituitary gland. This condition can cause metabolic disturbances such as hyperkalemia, hyponatremia, hypercalcemia, and hypoglycemia.
The symptoms of Addison’s disease can vary but commonly include fatigue, weight loss, muscle weakness, and low blood pressure. It is more common in women and typically affects individuals between the ages of 30-50. The most common cause of primary hypoadrenalism in developed countries is autoimmune destruction of the adrenal glands. Other causes include tuberculosis, adrenal metastases, meningococcal septicaemia, HIV, and genetic disorders.
The diagnosis of Addison’s disease is often suspected based on low cortisol levels and electrolyte abnormalities. The adrenocorticotropic hormone stimulation test is commonly used for confirmation. Other investigations may include adrenal autoantibodies, imaging scans, and genetic screening.
Addisonian crisis is a potentially life-threatening condition that occurs when there is an acute deficiency of cortisol and aldosterone. It can be the first presentation of undiagnosed Addison’s disease. Precipitating factors of an Addisonian crisis include infection, dehydration, surgery, trauma, physiological stress, pregnancy, hypoglycemia, and acute withdrawal of long-term steroids. Symptoms of an Addisonian crisis include malaise, fatigue, nausea or vomiting, abdominal pain, fever, muscle pains, dehydration, confusion, and loss of consciousness.
There is no fixed consensus on diagnostic criteria for an Addisonian crisis, as symptoms are non-specific. Investigations may include blood tests, blood gas analysis, and septic screens if infection is suspected. Management involves administering hydrocortisone and fluids. Hydrocortisone is given parenterally, and the dosage varies depending on the age of the patient. Fluid resuscitation with saline is necessary to correct any electrolyte disturbances and maintain blood pressure. The underlying cause of the crisis should also be identified and treated. Close monitoring of sodium levels is important to prevent complications such as osmotic demyelination syndrome.
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This question is part of the following fields:
- Endocrinology
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Question 29
Correct
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A 52 year old female presents to the emergency department due to increasing confusion and restlessness over the past 48 hours. The patient's family inform you that she had complained of feeling anxious and having loose stools yesterday but had attributed it to the antibiotics prescribed by her dentist for a tooth infection a few days ago. It is important to note that the patient has a history of Graves disease. The patient's vital signs are as follows:
Blood pressure: 152/78 mmHg
Pulse: 128 bpm
Respiration rate: 24 bpm
Temperature: 39.8ºC
What is the most likely diagnosis?Your Answer: Thyroid storm
Explanation:Thyroid storm, also known as thyrotoxic crisis, is a rare and potentially life-threatening complication of hyperthyroidism. The most common cause of thyroid storm is infection. Please refer to the yellow box at the bottom of the notes for additional information on thyroid storm.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 30
Correct
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A 35 year old woman arrives at the emergency department with complaints of pain and numbness in her middle finger, index finger, and thumb on the right hand. Upon reviewing her medical history, you discover that she has a previous diagnosis of hypothyroidism. Which of the following clinical features would you expect to find in this patient with hypothyroidism?
Your Answer: Decreased deep tendon reflexes
Explanation:Hypothyroidism often presents with various clinical features. These include weight gain, lethargy, intolerance to cold temperatures, non-pitting edema (such as swelling in the hands and face), dry skin, hair thinning and loss, loss of the outer part of the eyebrows, decreased appetite, constipation, decreased deep tendon reflexes, carpal tunnel syndrome, and menorrhagia.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 31
Correct
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A 42 year old female presents to the emergency department complaining of chest pain. The patient appears highly anxious and mentions that she recently had a fasting blood test to screen for diabetes. She was informed that her result was abnormal and needs to follow up with her GP. Concerned about the potential cardiovascular complications associated with diabetes, she expresses worry about her heart. Upon reviewing the pathology system, you come across a recent fasting glucose result. What is the diagnostic threshold for diabetes?
Your Answer: fasting plasma glucose level ≥ 7.0 mmol/l
Explanation:A fasting plasma glucose level of 7.0 mmol/l or higher is indicative of diabetes mellitus. However, it is important to note that hyperglycemia can also occur in individuals with acute infection, trauma, circulatory issues, or other forms of stress, and may only be temporary. Therefore, it is not recommended to diagnose diabetes based on a single test result, and the test should be repeated for confirmation.
Further Reading:
Diabetes Mellitus:
– Definition: a group of metabolic disorders characterized by persistent hyperglycemia caused by deficient insulin secretion, resistance to insulin, or both.
– Types: Type 1 diabetes (absolute insulin deficiency), Type 2 diabetes (insulin resistance and relative insulin deficiency), Gestational diabetes (develops during pregnancy), Other specific types (monogenic diabetes, diabetes secondary to pancreatic or endocrine disorders, diabetes secondary to drug treatment).
– Diagnosis: Type 1 diabetes diagnosed based on clinical grounds in adults presenting with hyperglycemia. Type 2 diabetes diagnosed in patients with persistent hyperglycemia and presence of symptoms or signs of diabetes.
– Risk factors for type 2 diabetes: obesity, inactivity, family history, ethnicity, history of gestational diabetes, certain drugs, polycystic ovary syndrome, metabolic syndrome, low birth weight.Hypoglycemia:
– Definition: lower than normal blood glucose concentration.
– Diagnosis: defined by Whipple’s triad (signs and symptoms of low blood glucose, low blood plasma glucose concentration, relief of symptoms after correcting low blood glucose).
– Blood glucose level for hypoglycemia: NICE defines it as <3.5 mmol/L, but there is inconsistency across the literature.
– Signs and symptoms: adrenergic or autonomic symptoms (sweating, hunger, tremor), neuroglycopenic symptoms (confusion, coma, convulsions), non-specific symptoms (headache, nausea).
– Treatment options: oral carbohydrate, buccal glucose gel, glucagon, dextrose. Treatment should be followed by re-checking glucose levels.Treatment of neonatal hypoglycemia:
– Treat with glucose IV infusion 10% given at a rate of 5 mL/kg/hour.
– Initial stat dose of 2 mL/kg over five minutes may be required for severe hypoglycemia.
– Mild asymptomatic persistent hypoglycemia may respond to a single dose of glucagon.
– If hypoglycemia is caused by an oral anti-diabetic drug, the patient should be admitted and ongoing glucose infusion or other therapies may be required. -
This question is part of the following fields:
- Endocrinology
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Question 32
Incorrect
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A 35-year-old patient arrives at the emergency department complaining of overall muscle weakness and fatigue. Upon reviewing the patient's medical history, you discover a previous diagnosis of primary hyperaldosteronism. Which of the following statements about primary hyperaldosteronism is correct?
Your Answer: Hypernatraemia is the most common electrolyte disturbance
Correct Answer: Hypertension is usually resistant to drug treatment
Explanation:Primary hyperaldosteronism is a condition where hypertension is often difficult to control with antihypertensive medication. The most common electrolyte disturbance seen in this condition is hypokalaemia. To diagnose primary hyperaldosteronism, the preferred test is the plasma aldosterone-to-renin ratio (ARR), followed by imaging to identify the underlying cause. It is important to note that renal artery stenosis is a common cause of secondary hyperaldosteronism.
Further Reading:
Hyperaldosteronism is a condition characterized by excessive production of aldosterone by the adrenal glands. It can be classified into primary and secondary hyperaldosteronism. Primary hyperaldosteronism, also known as Conn’s syndrome, is typically caused by adrenal hyperplasia or adrenal tumors. Secondary hyperaldosteronism, on the other hand, is a result of high renin levels in response to reduced blood flow across the juxtaglomerular apparatus.
Aldosterone is the main mineralocorticoid steroid hormone produced by the adrenal cortex. It acts on the distal renal tubule and collecting duct of the nephron, promoting the reabsorption of sodium ions and water while secreting potassium ions.
The causes of hyperaldosteronism vary depending on whether it is primary or secondary. Primary hyperaldosteronism can be caused by adrenal adenoma, adrenal hyperplasia, adrenal carcinoma, or familial hyperaldosteronism. Secondary hyperaldosteronism can be caused by renal artery stenosis, reninoma, renal tubular acidosis, nutcracker syndrome, ectopic tumors, massive ascites, left ventricular failure, or cor pulmonale.
Clinical features of hyperaldosteronism include hypertension, hypokalemia, metabolic alkalosis, hypernatremia, polyuria, polydipsia, headaches, lethargy, muscle weakness and spasms, and numbness. It is estimated that hyperaldosteronism is present in 5-10% of patients with hypertension, and hypertension in primary hyperaldosteronism is often resistant to drug treatment.
Diagnosis of hyperaldosteronism involves various investigations, including U&Es to assess electrolyte disturbances, aldosterone-to-renin plasma ratio (ARR) as the gold standard diagnostic test, ECG to detect arrhythmia, CT/MRI scans to locate adenoma, fludrocortisone suppression test or oral salt testing to confirm primary hyperaldosteronism, genetic testing to identify familial hyperaldosteronism, and adrenal venous sampling to determine lateralization prior to surgery.
Treatment of primary hyperaldosteronism typically involves surgical adrenalectomy for patients with unilateral primary aldosteronism. Diet modification with sodium restriction and potassium supplementation may also be recommended.
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This question is part of the following fields:
- Endocrinology
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Question 33
Incorrect
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One of your consultants is finishing their shift and hands over the management of a 6 year old patient with severe diabetic ketoacidosis (DKA). Which of the following criteria is used to categorize DKA as severe?
Your Answer: Blood pH < 7.1
Correct Answer:
Explanation:When a person’s systolic blood pressure is less than 90 mmHg, it indicates low blood pressure. A pulse rate above 100 or below 60 beats per minute is considered abnormal. An anion gap above 16 is indicative of an imbalance in the body’s electrolytes.
Further Reading:
Diabetic ketoacidosis (DKA) is a serious complication of diabetes that occurs due to a lack of insulin in the body. It is most commonly seen in individuals with type 1 diabetes but can also occur in type 2 diabetes. DKA is characterized by hyperglycemia, acidosis, and ketonaemia.
The pathophysiology of DKA involves insulin deficiency, which leads to increased glucose production and decreased glucose uptake by cells. This results in hyperglycemia and osmotic diuresis, leading to dehydration. Insulin deficiency also leads to increased lipolysis and the production of ketone bodies, which are acidic. The body attempts to buffer the pH change through metabolic and respiratory compensation, resulting in metabolic acidosis.
DKA can be precipitated by factors such as infection, physiological stress, non-compliance with insulin therapy, acute medical conditions, and certain medications. The clinical features of DKA include polydipsia, polyuria, signs of dehydration, ketotic breath smell, tachypnea, confusion, headache, nausea, vomiting, lethargy, and abdominal pain.
The diagnosis of DKA is based on the presence of ketonaemia or ketonuria, blood glucose levels above 11 mmol/L or known diabetes mellitus, and a blood pH below 7.3 or bicarbonate levels below 15 mmol/L. Initial investigations include blood gas analysis, urine dipstick for glucose and ketones, blood glucose measurement, and electrolyte levels.
Management of DKA involves fluid replacement, electrolyte correction, insulin therapy, and treatment of any underlying cause. Fluid replacement is typically done with isotonic saline, and potassium may need to be added depending on the patient’s levels. Insulin therapy is initiated with an intravenous infusion, and the rate is adjusted based on blood glucose levels. Monitoring of blood glucose, ketones, bicarbonate, and electrolytes is essential, and the insulin infusion is discontinued once ketones are below 0.3 mmol/L, pH is above 7.3, and bicarbonate is above 18 mmol/L.
Complications of DKA and its treatment include gastric stasis, thromboembolism, electrolyte disturbances, cerebral edema, hypoglycemia, acute respiratory distress syndrome, and acute kidney injury. Prompt medical intervention is crucial in managing DKA to prevent potentially fatal outcomes.
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This question is part of the following fields:
- Endocrinology
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Question 34
Incorrect
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A 2-month-old baby comes in with symptoms of vomiting, decreased weight, and an electrolyte imbalance. Upon consulting with the pediatricians, the baby is diagnosed with congenital adrenal hyperplasia (CAH). Which of the following is NOT a characteristic biochemical finding associated with this condition?
Your Answer: Elevated 17-hydroxyprogesterone
Correct Answer: Hyperglycaemia
Explanation:Congenital adrenal hyperplasia (CAH) is a group of inherited disorders that are caused by autosomal recessive genes. The majority of affected patients, over 90%, have a deficiency of the enzyme 21-hydroxylase. This enzyme is encoded by the 21-hydroxylase gene, which is located on chromosome 6p21 within the HLA histocompatibility complex. The second most common cause of CAH is a deficiency of the enzyme 11-beta-hydroxylase. The condition is rare, with an incidence of approximately 1 in 500 births in the UK. It is more prevalent in the offspring of consanguineous marriages.
The deficiency of 21-hydroxylase leads to a deficiency of cortisol and/or aldosterone, as well as an excess of precursor steroids. As a result, there is an increased secretion of ACTH from the anterior pituitary, leading to adrenocortical hyperplasia.
The severity of CAH varies depending on the degree of 21-hydroxylase deficiency. Female infants often exhibit ambiguous genitalia, such as clitoral hypertrophy and labial fusion. Male infants may have an enlarged scrotum and/or scrotal pigmentation. Hirsutism, or excessive hair growth, occurs in 10% of cases.
Boys with CAH often experience a salt-losing adrenal crisis at around 1-3 weeks of age. This crisis is characterized by symptoms such as vomiting, weight loss, floppiness, and circulatory collapse.
The diagnosis of CAH can be made by detecting markedly elevated levels of the metabolic precursor 17-hydroxyprogesterone. Neonatal screening is possible, primarily through the identification of persistently elevated 17-hydroxyprogesterone levels.
In infants presenting with a salt-losing crisis, the following biochemical abnormalities are observed: hyponatremia (low sodium levels), hyperkalemia (high potassium levels), metabolic acidosis, and hypoglycemia.
Boys experiencing a salt-losing crisis will require fluid resuscitation, intravenous dextrose, and intravenous hydrocortisone.
Affected females will require corrective surgery for their external genitalia. However, they have an intact uterus and ovaries and are capable of having children.
The long-term management of both sexes involves lifelong replacement of hydrocortisone (to suppress ACTH levels).
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This question is part of the following fields:
- Endocrinology
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Question 35
Correct
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A 37 year old male presents to the emergency department complaining of sudden onset headache, tremor, and palpitations. During triage, his blood pressure is measured at 220/110 mmHg. You start considering the likelihood of secondary causes of hypertension, including the possibility of extra-adrenal phaeochromocytoma. What percentage of phaeochromocytoma cases are extra-adrenal?
Your Answer: 10-15%
Explanation:The correct answer is 10-15%. This means that out of all phaeochromocytoma cases, approximately 10-15% occur outside of the adrenal glands.
Further Reading:
Phaeochromocytoma is a rare neuroendocrine tumor that secretes catecholamines. It typically arises from chromaffin tissue in the adrenal medulla, but can also occur in extra-adrenal chromaffin tissue. The majority of cases are spontaneous and occur in individuals aged 40-50 years. However, up to 30% of cases are hereditary and associated with genetic mutations. About 10% of phaeochromocytomas are metastatic, with extra-adrenal tumors more likely to be metastatic.
The clinical features of phaeochromocytoma are a result of excessive catecholamine production. Symptoms are typically paroxysmal and include hypertension, headaches, palpitations, sweating, anxiety, tremor, abdominal and flank pain, and nausea. Catecholamines have various metabolic effects, including glycogenolysis, mobilization of free fatty acids, increased serum lactate, increased metabolic rate, increased myocardial force and rate of contraction, and decreased systemic vascular resistance.
Diagnosis of phaeochromocytoma involves measuring plasma and urine levels of metanephrines, catecholamines, and urine vanillylmandelic acid. Imaging studies such as abdominal CT or MRI are used to determine the location of the tumor. If these fail to find the site, a scan with metaiodobenzylguanidine (MIBG) labeled with radioactive iodine is performed. The highest sensitivity and specificity for diagnosis is achieved with plasma metanephrine assay.
The definitive treatment for phaeochromocytoma is surgery. However, before surgery, the patient must be stabilized with medical management. This typically involves alpha-blockade with medications such as phenoxybenzamine or phentolamine, followed by beta-blockade with medications like propranolol. Alpha blockade is started before beta blockade to allow for expansion of blood volume and to prevent a hypertensive crisis.
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This question is part of the following fields:
- Endocrinology
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Question 36
Correct
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A 3-month-old girl presents with vomiting, poor weight gain, and decreased muscle tone. She is hypotensive and has a rapid heart rate. On examination, you notice that she has enlarged scrotum and increased pigmentation. Blood tests show high potassium, low sodium, and elevated 17-hydroxyprogesterone levels. Venous blood gas analysis reveals the presence of metabolic acidosis.
What is the SINGLE most probable diagnosis?Your Answer: Congenital adrenal hyperplasia
Explanation:Congenital adrenal hyperplasia (CAH) is a group of inherited disorders that are caused by autosomal recessive genes. The majority of affected patients, over 90%, have a deficiency of the enzyme 21-hydroxylase. This enzyme is encoded by the 21-hydroxylase gene, which is located on chromosome 6p21 within the HLA histocompatibility complex. The second most common cause of CAH is a deficiency of the enzyme 11-beta-hydroxylase. The condition is rare, with an incidence of approximately 1 in 500 births in the UK. It is more prevalent in the offspring of consanguineous marriages.
The deficiency of 21-hydroxylase leads to a deficiency of cortisol and/or aldosterone, as well as an excess of precursor steroids. As a result, there is an increased secretion of ACTH from the anterior pituitary, leading to adrenocortical hyperplasia.
The severity of CAH varies depending on the degree of 21-hydroxylase deficiency. Female infants often exhibit ambiguous genitalia, such as clitoral hypertrophy and labial fusion. Male infants may have an enlarged scrotum and/or scrotal pigmentation. Hirsutism, or excessive hair growth, occurs in 10% of cases.
Boys with CAH often experience a salt-losing adrenal crisis at around 1-3 weeks of age. This crisis is characterized by symptoms such as vomiting, weight loss, floppiness, and circulatory collapse.
The diagnosis of CAH can be made by detecting markedly elevated levels of the metabolic precursor 17-hydroxyprogesterone. Neonatal screening is possible through the detection of persistently elevated 17-hydroxyprogesterone.
In infants presenting with a salt-losing crisis, the following biochemical abnormalities are typically observed: hyponatremia (low sodium levels), hyperkalemia (high potassium levels), metabolic acidosis, and hypoglycemia.
Boys experiencing a salt-losing crisis will require fluid resuscitation, intravenous dextrose, and intravenous hydrocortisone. Affected females may require corrective surgery for their external genitalia. However, they have an intact uterus and ovaries and are able to have children.
The long-term management of CAH involves lifelong replacement of hydrocortisone to suppress ACTH levels.
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This question is part of the following fields:
- Endocrinology
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Question 37
Correct
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You evaluate a patient who has developed Nelson's syndrome after undergoing a bilateral adrenalectomy 15 years ago.
Which ONE statement is NOT TRUE regarding this diagnosis?Your Answer: ACTH levels will be low
Explanation:Nelson’s syndrome is a rare condition that occurs many years after a bilateral adrenalectomy for Cushing’s syndrome. It is believed to develop due to the loss of the normal negative feedback control that suppresses high cortisol levels. As a result, the hypothalamus starts producing CRH again, which stimulates the growth of a pituitary adenoma that produces adrenocorticotropic hormone (ACTH).
Only 15-20% of patients who undergo bilateral adrenalectomy will develop this condition, and it is now rarely seen as the procedure is no longer commonly performed.
The symptoms and signs of Nelson’s syndrome are related to the growth of the pituitary adenoma and the increased production of ACTH and melanocyte-stimulating hormone (MSH) from the adenoma. These may include headaches, visual field defects (up to 50% of cases), increased skin pigmentation, and the possibility of hypopituitarism.
ACTH levels will be significantly elevated (usually >500 ng/L). Thyroxine, TSH, gonadotrophin, and sex hormone levels may be low. Prolactin levels may be high, but not as high as with a prolactin-producing tumor. MRI or CT scanning can be helpful in identifying the presence of an expanding pituitary mass.
The treatment of choice for Nelson’s syndrome is trans-sphenoidal surgery.
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This question is part of the following fields:
- Endocrinology
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Question 38
Correct
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You are summoned to the resuscitation bay to aid in the care of a 45-year-old male who has suffered a head injury. A fellow healthcare provider informs you that the patient is exhibiting Cushing's triad of symptoms. What is the most accurate description of Cushing's triad?
Your Answer: Widened pulse pressure, bradycardia and bradypnoea
Explanation:Cushing’s triad is a combination of widened pulse pressure, bradycardia, and reduced respirations. It is a physiological response of the nervous system to acute increases in intracranial pressure (ICP). This response, known as the Cushing reflex, can cause the symptoms of Cushing’s triad. These symptoms include an increase in systolic blood pressure and a decrease in diastolic blood pressure, a slower heart rate, and irregular or reduced breathing. Additionally, raised ICP can also lead to other symptoms such as headache, papilloedema, and vomiting.
Further Reading:
Intracranial pressure (ICP) refers to the pressure within the craniospinal compartment, which includes neural tissue, blood, and cerebrospinal fluid (CSF). Normal ICP for a supine adult is 5-15 mmHg. The body maintains ICP within a narrow range through shifts in CSF production and absorption. If ICP rises, it can lead to decreased cerebral perfusion pressure, resulting in cerebral hypoperfusion, ischemia, and potentially brain herniation.
The cranium, which houses the brain, is a closed rigid box in adults and cannot expand. It is made up of 8 bones and contains three main components: brain tissue, cerebral blood, and CSF. Brain tissue accounts for about 80% of the intracranial volume, while CSF and blood each account for about 10%. The Monro-Kellie doctrine states that the sum of intracranial volumes is constant, so an increase in one component must be offset by a decrease in the others.
There are various causes of raised ICP, including hematomas, neoplasms, brain abscesses, edema, CSF circulation disorders, venous sinus obstruction, and accelerated hypertension. Symptoms of raised ICP include headache, vomiting, pupillary changes, reduced cognition and consciousness, neurological signs, abnormal fundoscopy, cranial nerve palsy, hemiparesis, bradycardia, high blood pressure, irregular breathing, focal neurological deficits, seizures, stupor, coma, and death.
Measuring ICP typically requires invasive procedures, such as inserting a sensor through the skull. Management of raised ICP involves a multi-faceted approach, including antipyretics to maintain normothermia, seizure control, positioning the patient with a 30º head up tilt, maintaining normal blood pressure, providing analgesia, using drugs to lower ICP (such as mannitol or saline), and inducing hypocapnoeic vasoconstriction through hyperventilation. If these measures are ineffective, second-line therapies like barbiturate coma, optimised hyperventilation, controlled hypothermia, or decompressive craniectomy may be considered.
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This question is part of the following fields:
- Endocrinology
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Question 39
Correct
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A 45-year-old woman comes in with a history of fatigue, excessive thirst, and frequent urination. A urine dipstick test is done, which shows the presence of glucose in the urine.
Which ONE result would be INCONSISTENT with a diagnosis of diabetes mellitus in this patient?Your Answer: An HbA1c of 40 mmol/mol
Explanation:According to the 2011 recommendations from the World Health Organization (WHO), HbA1c can now be used as a diagnostic test for diabetes. However, this is only applicable if stringent quality assurance tests are in place and the assays are standardized to criteria aligned with international reference values. Additionally, accurate measurement of HbA1c is only possible if there are no conditions present that could hinder its accuracy.
To diagnose diabetes using HbA1c, a value of 48 mmol/mol (6.5%) is recommended as the cut-off point. It’s important to note that a value lower than 48 mmol/mol (6.5%) does not exclude the possibility of diabetes, as glucose tests are still necessary for a definitive diagnosis.
When using glucose tests, the following criteria are considered diagnostic for diabetes mellitus:
– A random venous plasma glucose concentration greater than 11.1 mmol/l
– A fasting plasma glucose concentration greater than 7.0 mmol/l
– A two-hour plasma glucose concentration greater than 11.1 mmol/l, two hours after consuming 75g of anhydrous glucose in an oral glucose tolerance test (OGTT)However, there are certain circumstances where HbA1c is not appropriate for diagnosing diabetes mellitus. These include:
– ALL children and young people
– Patients of any age suspected of having Type 1 diabetes
– Patients with symptoms of diabetes for less than two months
– Patients at high risk of diabetes who are acutely ill, such as those requiring hospital admission
– Patients taking medication that may cause a rapid rise in glucose levels, such as steroids or antipsychotics
– Patients with acute pancreatic damage, including those who have undergone pancreatic surgery
– Pregnant individuals
– Presence of genetic, hematologic, and illness-related factors that can influence HbA1c and its measurement. -
This question is part of the following fields:
- Endocrinology
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Question 40
Correct
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You are evaluating a 4-year-old girl who has been diagnosed with diabetic ketoacidosis (DKA). She had initially improved after receiving fluids, but her condition has worsened in the past hour. She is now expressing discomfort due to a headache and is displaying irritability. She has also started vomiting again, and the nursing staff has observed an increase in her blood pressure and a decrease in her heart rate.
What would be the most suitable course of treatment for this patient?Your Answer: Mannitol
Explanation:Cerebral edema is the most significant complication of diabetic ketoacidosis (DKA), leading to death in many cases. It occurs in approximately 0.2-1% of DKA cases. The high blood glucose levels cause an osmolar gradient, resulting in the movement of water from the intracellular fluid (ICF) to the extracellular fluid (ECF) space and a decrease in cell volume. When insulin and intravenous fluids are administered to correct the condition, the effective osmolarity decreases rapidly, causing a reversal of the fluid shift and the development of cerebral edema.
Cerebral edema is associated with a higher mortality rate and poor neurological outcomes. To prevent its occurrence, it is important to slowly normalize osmolarity over a period of 48 hours, paying attention to glucose and sodium levels, as well as ensuring proper hydration. Monitoring the child for symptoms such as headache, recurrent vomiting, irritability, changes in Glasgow Coma Scale (GCS), abnormal slowing of heart rate, and increasing blood pressure is crucial.
If cerebral edema does occur, it should be treated with either a hypertonic (3%) saline solution at a dosage of 3 ml/kg or a mannitol infusion at a dosage of 250-500 mg/kg over a 20-minute period.
In addition to cerebral edema, there are other complications associated with DKA in children, including cardiac arrhythmias, pulmonary edema, and acute renal failure.
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This question is part of the following fields:
- Endocrinology
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Question 41
Correct
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You evaluate a 4-year-old girl who has been diagnosed with diabetic ketoacidosis (DKA). She had initially improved after receiving fluids, but her condition has worsened in the past hour. She is now expressing discomfort due to a headache and is displaying irritability. She has started vomiting again, and the nursing staff has observed an increase in her blood pressure and a decrease in her heart rate.
What complication has developed?Your Answer: Cerebral oedema
Explanation:Cerebral edema is the most significant complication of diabetic ketoacidosis (DKA), leading to death in many cases. It occurs in approximately 0.2-1% of DKA cases. The high blood glucose levels cause an osmolar gradient, resulting in the movement of water from the intracellular fluid (ICF) to the extracellular fluid (ECF) space and a decrease in cell volume. When insulin and intravenous fluids are administered to correct the condition, the effective osmolarity decreases rapidly, causing a reversal of the fluid shift and the development of cerebral edema.
Cerebral edema is associated with a higher mortality rate and poor neurological outcomes. To prevent its occurrence, it is important to slowly normalize osmolarity over a period of 48 hours, paying attention to glucose and sodium levels, as well as ensuring proper hydration. Monitoring the child for symptoms such as headache, recurrent vomiting, irritability, changes in Glasgow Coma Scale (GCS), abnormal slowing of heart rate, and increasing blood pressure is crucial.
If cerebral edema does occur, it should be treated with either a hypertonic (3%) saline solution at a dosage of 3 ml/kg or a mannitol infusion at a dosage of 250-500 mg/kg over a 20-minute period.
In addition to cerebral edema, there are other complications associated with DKA in children, including cardiac arrhythmias, pulmonary edema, and acute renal failure.
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This question is part of the following fields:
- Endocrinology
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Question 42
Correct
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A 45-year-old man with a long history of type 2 diabetes mellitus presents with pain in his left buttock, hip, and thigh. The pain started suddenly a few weeks ago, and he cannot recall any previous injury. During the examination, he shows wasting of his left quadriceps, struggles to stand up from a seated position, and has an absent knee jerk on the left side. Muscle fasciculations are observed in his left thigh. His BMI is 30, and he is a smoker.
What is the SINGLE most beneficial management measure for this patient?Your Answer: Good glycaemic control
Explanation:Diabetic amyotrophy, also referred to as proximal diabetic neuropathy, is the second most prevalent form of diabetic neuropathy. It typically manifests with pain in the buttocks, hips, or thighs and is often initially experienced on one side of the body. The pain may start off as mild and gradually progress or it can suddenly appear, as seen in this particular case. Subsequently, weakness and wasting of the proximal muscles in the lower limbs occur, potentially leading to the patient requiring assistance when transitioning from a seated to a standing position. Reflexes in the affected areas can also be impacted. Fortunately, diabetic amyotrophy can be reversed through effective management of blood sugar levels, physiotherapy, and adopting a healthy lifestyle.
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This question is part of the following fields:
- Endocrinology
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Question 43
Correct
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A 72 year old male presents to the emergency department following a fall onto an outstretched hand. Following assessment you order an X-ray of the wrist which confirms a dorsally angulated extra-articular fracture of the right distal radius. You also observe cortical thinning and increased radiolucency of the bone and consider the possibility of underlying osteoporosis. What is a risk factor for osteoporosis?
Your Answer: Menopause
Explanation:Osteoporosis and fragility fractures are more likely to occur in individuals with low levels of estrogen. Menopause, which causes a decrease in estrogen, can lead to estrogen deficiency. Estrogen plays a role in preventing bone breakdown by inhibiting osteoclast activity. After menopause, there is an increase in osteoclast activity, resulting in a rapid decline in bone mineral density. Osteoporosis is also associated with the long-term use of corticosteroids.
Further Reading:
Fragility fractures are fractures that occur following a fall from standing height or less, and may be atraumatic. They often occur in the presence of osteoporosis, a disease characterized by low bone mass and structural deterioration of bone tissue. Fragility fractures commonly affect the wrist, spine, hip, and arm.
Osteoporosis is defined as a bone mineral density (BMD) of 2.5 standard deviations below the mean peak mass, as measured by dual-energy X-ray absorptiometry (DXA). Osteopenia, on the other hand, refers to low bone mass between normal bone mass and osteoporosis, with a T-score between -1 to -2.5.
The pathophysiology of osteoporosis involves increased osteoclast activity relative to bone production by osteoblasts. The prevalence of osteoporosis increases with age, from approximately 2% at 50 years to almost 50% at 80 years.
There are various risk factors for fragility fractures, including endocrine diseases, GI causes of malabsorption, chronic kidney and liver diseases, menopause, immobility, low body mass index, advancing age, oral corticosteroids, smoking, alcohol consumption, previous fragility fractures, rheumatological conditions, parental history of hip fracture, certain medications, visual impairment, neuromuscular weakness, cognitive impairment, and unsafe home environment.
Assessment of a patient with a possible fragility fracture should include evaluating the risk of further falls, the risk of osteoporosis, excluding secondary causes of osteoporosis, and ruling out non-osteoporotic causes for fragility fractures such as metastatic bone disease, multiple myeloma, osteomalacia, and Paget’s disease.
Management of fragility fractures involves initial management by the emergency clinician, while treatment of low bone density is often delegated to the medical team or general practitioner. Management considerations include determining who needs formal risk assessment, who needs a DXA scan to measure BMD, providing lifestyle advice, and deciding who requires drug treatment.
Medication for osteoporosis typically includes vitamin D, calcium, and bisphosphonates. Vitamin D and calcium supplementation should be considered based on individual needs, while bisphosphonates are advised for postmenopausal women and men over 50 years with confirmed osteoporosis or those taking high doses of oral corticosteroids.
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This question is part of the following fields:
- Endocrinology
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Question 44
Incorrect
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You assess a patient who has been admitted to the resuscitation unit in an obtunded state. The patient is wearing a MedicAlert bracelet, indicating a diagnosis of Addison's disease.
Which ONE biochemical characteristic would you NOT anticipate observing in this particular condition?Your Answer: High calcium
Correct Answer: Low serum renin level
Explanation:Addison’s disease is characterized by several classical biochemical features. One of these features is an increase in ACTH levels, which is a hormone that stimulates the production of cortisol. Additionally, individuals with Addison’s disease often have elevated serum renin levels, which is an enzyme involved in regulating blood pressure. Another common biochemical feature is hyponatremia, which refers to low levels of sodium in the blood. Hyperkalemia, or high levels of potassium, is also frequently observed in individuals with Addison’s disease. Furthermore, hypercalcemia, an excess of calcium in the blood, may be present. Hypoglycemia, or low blood sugar levels, is another characteristic feature. Lastly, metabolic acidosis, a condition where the body produces too much acid or cannot eliminate it properly, is often seen in individuals with Addison’s disease.
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This question is part of the following fields:
- Endocrinology
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Question 45
Incorrect
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A 5-year-old girl is brought into the Emergency Department with stomach pain and vomiting. Her mother informs you that she has been losing weight recently and has been drinking a lot of fluids and urinating frequently. During the examination, you observe that she is drowsy and visibly dehydrated. She is breathing deeply and rapidly. A blood glucose test reveals very high levels. The urine dipstick shows 3+ ketones, and a venous blood gas test indicates a pH of 7.14. The diagnosis is diabetic ketoacidosis.
How long should it take to correct this fluid deficit?Your Answer: 6 hours
Correct Answer: 48 hours
Explanation:The most probable diagnosis in this case is diabetic ketoacidosis (DKA). To confirm the diagnosis, it is necessary to establish that his blood glucose levels are elevated, he has significant ketonuria or ketonaemia, and that he is acidotic.
DKA is a life-threatening condition that occurs when there is a lack of insulin, leading to an inability to metabolize glucose. This results in high blood sugar levels and an osmotic diuresis, causing excessive thirst and increased urine production. Dehydration becomes inevitable when the urine output exceeds the patient’s ability to drink. Additionally, without insulin, fat becomes the primary energy source, leading to the production of large amounts of ketones and metabolic acidosis.
The key features of DKA include hyperglycemia (blood glucose > 11 mmol/l), ketonaemia (> 3 mmol/l) or significant ketonuria (> 2+ on urine dipstick), and acidosis (bicarbonate < 15 mmol/l and/or venous pH < 7.3). Clinical symptoms of DKA include nausea, vomiting, excessive thirst, excessive urine production, abdominal pain, signs of dehydration, a smell of ketones on breath (similar to pear drops), deep and rapid respiration (Kussmaul breathing), confusion or reduced consciousness, and tachycardia, hypotension, and shock. Investigations that should be performed include blood glucose measurement, urine dipstick (which will show marked glycosuria and ketonuria), blood ketone assay (more sensitive and specific than urine dipstick), blood tests (full blood count and urea and electrolytes), and arterial or venous blood gas analysis to assess for metabolic acidosis. The main principles of managing DKA are as follows: – Fluid boluses should only be given to reverse signs of shock and should be administered slowly in 10 ml/kg aliquots. If there are no signs of shock, fluid boluses should not be given, and specialist advice should be sought if a second bolus is required.
– Rehydration should be done with replacement therapy over 48 hours after signs of shock have been reversed.
– The first 20 ml/kg of fluid resuscitation should be given in addition to replacement fluid calculations and should not be subtracted from the calculations for the 48-hour fluid replacement.
– If a child in DKA shows signs of hypotensive shock, the use of inotropes may be considered. -
This question is part of the following fields:
- Endocrinology
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Question 46
Correct
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A 20-year-old woman presents with frequent urination, excessive thirst, and stomach pain. The results of her arterial blood gas (ABG) on air are as follows:
pH: 7.21
pO2: 11.4 kPa
PCO2: 3.1 kPa
HCO3-: 17 mmol/l
Na+: 149 mmol/l
Cl–: 100 mmol/l
Lactate: 6 IU/l
Which SINGLE statement about this patient is correct?Your Answer: She is likely to have a type B lactic acidosis
Explanation:Arterial blood gas (ABG) interpretation is essential for evaluating a patient’s respiratory gas exchange and acid-base balance. While the normal values on an ABG may slightly vary between analyzers, they generally fall within the following ranges:
pH: 7.35 – 7.45
pO2: 10 – 14 kPa
PCO2: 4.5 – 6 kPa
HCO3-: 22 – 26 mmol/l
Base excess: -2 – 2 mmol/lIn this particular case, the patient’s medical history raises concerns about a possible diagnosis of diabetic ketoacidosis (DKA). The relevant ABG findings are as follows:
Normal PO2
Low pH (acidaemia)
Low PCO2
Low bicarbonate
Raised lactateThe anion gap refers to the concentration of unmeasured anions in the plasma. It is calculated by subtracting the primary measured cations from the primary measured anions in the serum. The reference range for anion gap varies depending on the measurement methodology but typically falls between 8 to 16 mmol/L.
To calculate her anion gap, we can use the formula:
Anion gap = [Na+] – [Cl-] – [HCO3-]
Using the provided values, her anion gap can be calculated as:
Anion gap = [149] – [100] – [17]
Anion gap = 32Therefore, it is evident that she has a raised anion gap metabolic acidosis.
It is likely that she is experiencing a type B lactic acidosis secondary to diabetic ketoacidosis. Some potential causes of type A and type B lactic acidosis are listed below:
Type A lactic acidosis:
– Shock (including septic shock)
– Left ventricular failure
– Severe anemia
– Asphyxia
– Cardiac arrest
– Carbon monoxide poisoning
– Respiratory failure
– Severe asthma and COPD
– Regional hypoperfusionType B lactic acidosis:
– Renal failure
– Liver failure
– Sepsis (non-hypoxic sepsis)
– Thiamine deficiency
– Alcoholic ketoacidosis
– Diabetic ketoacidosis
– Cyanide poisoning
– Methanol poisoning
– Biguanide poisoning -
This question is part of the following fields:
- Endocrinology
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Question 47
Correct
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A 35-year-old woman with a past medical history of recurrent episodes of profuse sweating, rapid heartbeat, and sudden high blood pressure is found to have a phaeochromocytoma. What is the most suitable initial treatment for this patient?
Your Answer: Alpha-blocker
Explanation:A phaeochromocytoma is a rare functional tumor that develops from chromaffin cells in the adrenal medulla. Extra-adrenal paragangliomas, also known as extra-adrenal pheochromocytomas, are similar tumors that originate in the ganglia of the sympathetic nervous system but are less common. These tumors secrete catecholamines and cause a range of symptoms and signs related to hyperactivity of the sympathetic nervous system.
The most common initial symptom is high blood pressure, which can be either sustained or sporadic. Symptoms tend to come and go, occurring multiple times a day or very infrequently. As the disease progresses, the symptoms usually become more severe and frequent.
Surgical removal is the preferred and definitive treatment option. If the tumor is completely removed without any spread to other parts of the body, it often leads to a cure for hypertension.
Before surgery, it is crucial to manage the condition medically to reduce the risk of hypertensive crises during the operation. This is typically done by using a combination of non-competitive alpha-blockers (such as phenoxybenzamine) and beta-blockers. Alpha-blockade should be started first, at least 7-10 days before the surgery, to allow for expansion of blood volume. Once this is achieved, beta-blockade can be initiated to help control rapid heart rate and certain irregular heart rhythms. Starting beta-blockade too early can trigger a hypertensive crisis.
Genetic counseling should also be provided, and any associated conditions should be identified and managed appropriately.
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This question is part of the following fields:
- Endocrinology
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Question 48
Incorrect
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A 62 year old male presents to the emergency department with complaints of fatigue, headache, and muscle spasms. Upon examination, the patient is found to have hypertension with a blood pressure reading of 198/96 mmHg. In order to screen for secondary causes of hypertension, which of the following tests would be the most suitable for detecting Conn's syndrome?
Your Answer: Short Synacthen test
Correct Answer: Aldosterone and renin levels
Explanation:The preferred diagnostic test for hyperaldosteronism is the plasma aldosterone-to-renin ratio (ARR). Hyperaldosteronism is also known as Conn’s syndrome and can be diagnosed by measuring aldosterone and renin levels. By calculating the aldosterone-to-renin ratio, an abnormal increase (>30 ng/dL per ng/mL/h) can indicate primary hyperaldosteronism. Adrenal insufficiency can be detected using the Synacthen test. To detect phaeochromocytoma, tests such as plasma metanephrines and urine vanillylmandelic acid are used. The dexamethasone suppression test is employed for diagnosing Cushing syndrome.
Further Reading:
Hyperaldosteronism is a condition characterized by excessive production of aldosterone by the adrenal glands. It can be classified into primary and secondary hyperaldosteronism. Primary hyperaldosteronism, also known as Conn’s syndrome, is typically caused by adrenal hyperplasia or adrenal tumors. Secondary hyperaldosteronism, on the other hand, is a result of high renin levels in response to reduced blood flow across the juxtaglomerular apparatus.
Aldosterone is the main mineralocorticoid steroid hormone produced by the adrenal cortex. It acts on the distal renal tubule and collecting duct of the nephron, promoting the reabsorption of sodium ions and water while secreting potassium ions.
The causes of hyperaldosteronism vary depending on whether it is primary or secondary. Primary hyperaldosteronism can be caused by adrenal adenoma, adrenal hyperplasia, adrenal carcinoma, or familial hyperaldosteronism. Secondary hyperaldosteronism can be caused by renal artery stenosis, reninoma, renal tubular acidosis, nutcracker syndrome, ectopic tumors, massive ascites, left ventricular failure, or cor pulmonale.
Clinical features of hyperaldosteronism include hypertension, hypokalemia, metabolic alkalosis, hypernatremia, polyuria, polydipsia, headaches, lethargy, muscle weakness and spasms, and numbness. It is estimated that hyperaldosteronism is present in 5-10% of patients with hypertension, and hypertension in primary hyperaldosteronism is often resistant to drug treatment.
Diagnosis of hyperaldosteronism involves various investigations, including U&Es to assess electrolyte disturbances, aldosterone-to-renin plasma ratio (ARR) as the gold standard diagnostic test, ECG to detect arrhythmia, CT/MRI scans to locate adenoma, fludrocortisone suppression test or oral salt testing to confirm primary hyperaldosteronism, genetic testing to identify familial hyperaldosteronism, and adrenal venous sampling to determine lateralization prior to surgery.
Treatment of primary hyperaldosteronism typically involves surgical adrenalectomy for patients with unilateral primary aldosteronism. Diet modification with sodium restriction and potassium supplementation may also be recommended.
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This question is part of the following fields:
- Endocrinology
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Question 49
Correct
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A 65-year-old diabetic man presents with a gradual decrease in consciousness and confusion over the past week. His diabetes is typically controlled with metformin 500 mg twice daily. He recently received treatment for a urinary tract infection from his primary care physician, and his family reports that he has been experiencing excessive thirst. He has vomited multiple times today. A urine dipstick test shows a small amount of white blood cells and 1+ ketones. The results of his arterial blood gas analysis are as follows:
pH: 7.29
pO2: 11.1 kPa
pCO2: 4.6 kPa
HCO3-: 22 mmol/l
Na+: 154 mmol/l
K+: 3.2 mmol/l
Cl-: 100 mmol/l
Urea: 17.6 mmol/l
Glucose: 32 mmol/l
Which SINGLE statement is true regarding this case?Your Answer: Anticoagulation should be given
Explanation:In an elderly patient with a history of gradual decline accompanied by high blood sugar levels, excessive thirst, and recent infection, the most likely diagnosis is hyperosmolar hyperglycemic state (HHS). This condition can be life-threatening, with a mortality rate of approximately 50%. Common symptoms include dehydration, elevated blood sugar levels, altered mental status, and electrolyte imbalances. About half of the patients with HHS also experience hypernatremia.
To calculate the serum osmolality, the formula is 2(K+ + Na+) + urea + glucose. In this case, the serum osmolality is 364 mmol/l, indicating a high level. It is important to discontinue the use of metformin in this patient due to the risk of metformin-associated lactic acidosis (MALA). Additionally, an intravenous infusion of insulin should be initiated.
The treatment goals for HHS are to address the underlying cause and gradually and safely:
– Normalize the osmolality
– Replace fluid and electrolyte losses
– Normalize blood glucose levelsIf significant ketonaemia is present (3β-hydroxybutyrate is more than 1 mmol/L), it indicates a relative lack of insulin, and insulin should be administered immediately. However, if significant ketonaemia is not present, insulin should not be started.
Patients with HHS are at a high risk of thromboembolism, and it is recommended to routinely administer low molecular weight heparin. In cases where the serum osmolality exceeds 350 mmol/l, full heparinization should be considered.
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This question is part of the following fields:
- Endocrinology
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Question 50
Correct
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A 40-year-old male patient presents with a history of dizziness and fainting episodes. He has also been suffering from a mild flu-like illness for the past few days. He had a syncopal episode in the department and was moved into the resuscitation area. His observations are as follows: Temperature 38.4°C, HR 112, BP 78/44, oxygen saturation 98% on high-flow oxygen, GCS 14/15, BM 1.5.
His initial blood results are shown below:
Na+: 118 mmol/l
K+: 6.1 mmol/l
Urea: 11.6 mmol/l
Creatinine: 132 mmol/l
What is the SINGLE most likely diagnosis?Your Answer: Addisonian crisis
Explanation:This patient has presented with an Addisonian crisis, which is a rare but potentially catastrophic condition if not diagnosed promptly. It is more commonly seen in women than men and typically occurs between the ages of 30 and 50.
Addison’s disease is caused by insufficient production of steroid hormones by the adrenal glands, affecting the production of glucocorticoids, mineralocorticoids, and sex steroids. The main causes of Addison’s disease include autoimmune adrenalitis (accounting for 80% of cases), bilateral adrenalectomy, Waterhouse-Friderichsen syndrome (hemorrhage into the adrenal glands), and tuberculosis.
The most common trigger for an Addisonian crisis in patients with Addison’s disease is the intentional or accidental withdrawal of steroid therapy. Other factors that can precipitate a crisis include infection, trauma, myocardial infarction, cerebral infarction, asthma, hypothermia, and alcohol abuse.
Clinical features of Addison’s disease include weakness, lethargy, hypotension (especially orthostatic hypotension), nausea, vomiting, weight loss, reduced axillary and pubic hair, depression, and hyperpigmentation (particularly in palmar creases, buccal mucosa, and exposed areas). In an Addisonian crisis, the main symptoms are usually hypoglycemia and shock, characterized by tachycardia, peripheral vasoconstriction, hypotension, altered consciousness, and even coma.
Biochemical markers of Addison’s disease typically include increased ACTH levels (as a compensatory response to stimulate the adrenal glands), elevated serum renin levels, hyponatremia, hyperkalemia, hypercalcemia, hypoglycemia, and metabolic acidosis. Confirmatory investigations may involve the Synacthen test, plasma ACTH level measurement, plasma renin level measurement, and testing for adrenocortical antibodies.
Management of Addison’s disease should be overseen by an Endocrinologist. Treatment usually involves the administration of hydrocortisone, fludrocortisone, and dehydroepiandrosterone. Some patients may also require thyroxine if there is concurrent hypothalamic-pituitary disease. Treatment is lifelong, and patients should carry a steroid card and MedicAlert bracelet to alert healthcare professionals about their condition and the potential for an Addisonian crisis.
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This question is part of the following fields:
- Endocrinology
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Question 51
Correct
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A 45-year-old woman presents with overall fatigue and increased skin pigmentation. She has a history of bilateral adrenalectomy for Cushing's syndrome 10 years ago. During the examination of her visual fields, a bitemporal hemianopia is discovered.
What is the MOST LIKELY single biochemical finding in this scenario?Your Answer: Elevated ACTH levels
Explanation:Nelson’s syndrome is a rare condition that occurs many years after a bilateral adrenalectomy for Cushing’s syndrome. It is believed to develop due to the loss of the normal negative feedback control that suppresses high cortisol levels. As a result, the hypothalamus starts producing CRH again, which stimulates the growth of a pituitary adenoma that produces adrenocorticotropic hormone (ACTH).
Only 15-20% of patients who undergo bilateral adrenalectomy will develop this condition, and it is now rarely seen as the procedure is no longer commonly performed.
The symptoms and signs of Nelson’s syndrome are related to the growth of the pituitary adenoma and the increased production of ACTH and melanocyte-stimulating hormone (MSH) from the adenoma. These may include headaches, visual field defects (up to 50% of cases), increased skin pigmentation, and the possibility of hypopituitarism.
ACTH levels will be significantly elevated (usually >500 ng/L). Thyroxine, TSH, gonadotrophin, and sex hormone levels may be low. Prolactin levels may be high, but not as high as with a prolactin-producing tumor. MRI or CT scanning can be helpful in identifying the presence of an expanding pituitary mass.
The treatment of choice for Nelson’s syndrome is trans-sphenoidal surgery.
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This question is part of the following fields:
- Endocrinology
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Question 52
Correct
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A 45 year old visits the emergency department complaining of extreme thirst, fatigue, and disorientation that have progressively worsened over the past week. A urine dip reveals a high level of glucose. You suspect the presence of diabetes mellitus and decide to send a plasma glucose sample for further testing. What is the appropriate threshold for diagnosing diabetes mellitus?
Your Answer: Random venous plasma glucose concentration ≥ 11.1 mmol/l
Explanation:If a person has symptoms or signs that indicate diabetes, a random venous plasma glucose concentration of 11.1 mmol/l or higher is considered to be indicative of diabetes mellitus. However, it is important to note that a diagnosis should not be made based solely on one test. A second test should be conducted to confirm the diagnosis. It is also worth mentioning that temporary high blood sugar levels may occur in individuals who are experiencing acute infection, trauma, circulatory issues, or other forms of stress that are not related to diabetes.
Further Reading:
Diabetes Mellitus:
– Definition: a group of metabolic disorders characterized by persistent hyperglycemia caused by deficient insulin secretion, resistance to insulin, or both.
– Types: Type 1 diabetes (absolute insulin deficiency), Type 2 diabetes (insulin resistance and relative insulin deficiency), Gestational diabetes (develops during pregnancy), Other specific types (monogenic diabetes, diabetes secondary to pancreatic or endocrine disorders, diabetes secondary to drug treatment).
– Diagnosis: Type 1 diabetes diagnosed based on clinical grounds in adults presenting with hyperglycemia. Type 2 diabetes diagnosed in patients with persistent hyperglycemia and presence of symptoms or signs of diabetes.
– Risk factors for type 2 diabetes: obesity, inactivity, family history, ethnicity, history of gestational diabetes, certain drugs, polycystic ovary syndrome, metabolic syndrome, low birth weight.Hypoglycemia:
– Definition: lower than normal blood glucose concentration.
– Diagnosis: defined by Whipple’s triad (signs and symptoms of low blood glucose, low blood plasma glucose concentration, relief of symptoms after correcting low blood glucose).
– Blood glucose level for hypoglycemia: NICE defines it as <3.5 mmol/L, but there is inconsistency across the literature.
– Signs and symptoms: adrenergic or autonomic symptoms (sweating, hunger, tremor), neuroglycopenic symptoms (confusion, coma, convulsions), non-specific symptoms (headache, nausea).
– Treatment options: oral carbohydrate, buccal glucose gel, glucagon, dextrose. Treatment should be followed by re-checking glucose levels.Treatment of neonatal hypoglycemia:
– Treat with glucose IV infusion 10% given at a rate of 5 mL/kg/hour.
– Initial stat dose of 2 mL/kg over five minutes may be required for severe hypoglycemia.
– Mild asymptomatic persistent hypoglycemia may respond to a single dose of glucagon.
– If hypoglycemia is caused by an oral anti-diabetic drug, the patient should be admitted and ongoing glucose infusion or other therapies may be required. -
This question is part of the following fields:
- Endocrinology
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Question 53
Correct
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You evaluate a 6-year-old boy who has been diagnosed with diabetic ketoacidosis. He experiences a complication while undergoing treatment.
What is the primary cause of mortality in children with DKA?Your Answer: Cerebral oedema
Explanation:Cerebral edema is the most significant complication of diabetic ketoacidosis (DKA), leading to death in many cases. It occurs in approximately 0.2-1% of DKA cases. The high blood glucose levels cause an osmolar gradient, resulting in the movement of water from the intracellular fluid (ICF) to the extracellular fluid (ECF) space and a decrease in cell volume. When insulin and intravenous fluids are administered to correct the condition, the effective osmolarity decreases rapidly, causing a reversal of the fluid shift and the development of cerebral edema.
Cerebral edema is associated with a higher mortality rate and poor neurological outcomes. To prevent its occurrence, it is important to slowly normalize osmolarity over a period of 48 hours, paying attention to glucose and sodium levels, as well as ensuring proper hydration. Monitoring the child for symptoms such as headache, recurrent vomiting, irritability, changes in Glasgow Coma Scale (GCS), abnormal slowing of heart rate, and increasing blood pressure is crucial.
If cerebral edema does occur, it should be treated with either a hypertonic (3%) saline solution at a dosage of 3 ml/kg or a mannitol infusion at a dosage of 250-500 mg/kg over a 20-minute period.
In addition to cerebral edema, there are other complications associated with DKA in children, including cardiac arrhythmias, pulmonary edema, and acute renal failure.
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This question is part of the following fields:
- Endocrinology
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Question 54
Correct
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A 42 year old male patient is brought into resus with a two day history of nausea and vomiting. He has reduced GCS, is hypotensive and tachycardic. His wife tells you he has Addison's but frequently neglects to take his medication. Concerning Addison's, which electrolyte imbalance is most frequently linked to the condition?
Your Answer: Hyponatraemia
Explanation:The electrolyte imbalances that are commonly observed in individuals with Addison’s disease are decreased sodium levels, increased potassium levels, increased calcium levels, and decreased glucose levels. In cases of Addisonian crisis, which is a severe form of Addison’s disease, patients may also experience hyponatremia (low sodium levels), hyperkalemia (high potassium levels), hypercalcemia (high calcium levels), and hypoglycemia (low glucose levels). Additionally, these patients may often develop acidosis.
Further Reading:
Addison’s disease, also known as primary adrenal insufficiency or hypoadrenalism, is a rare disorder caused by the destruction of the adrenal cortex. This leads to reduced production of glucocorticoids, mineralocorticoids, and adrenal androgens. The deficiency of cortisol results in increased production of adrenocorticotropic hormone (ACTH) due to reduced negative feedback to the pituitary gland. This condition can cause metabolic disturbances such as hyperkalemia, hyponatremia, hypercalcemia, and hypoglycemia.
The symptoms of Addison’s disease can vary but commonly include fatigue, weight loss, muscle weakness, and low blood pressure. It is more common in women and typically affects individuals between the ages of 30-50. The most common cause of primary hypoadrenalism in developed countries is autoimmune destruction of the adrenal glands. Other causes include tuberculosis, adrenal metastases, meningococcal septicaemia, HIV, and genetic disorders.
The diagnosis of Addison’s disease is often suspected based on low cortisol levels and electrolyte abnormalities. The adrenocorticotropic hormone stimulation test is commonly used for confirmation. Other investigations may include adrenal autoantibodies, imaging scans, and genetic screening.
Addisonian crisis is a potentially life-threatening condition that occurs when there is an acute deficiency of cortisol and aldosterone. It can be the first presentation of undiagnosed Addison’s disease. Precipitating factors of an Addisonian crisis include infection, dehydration, surgery, trauma, physiological stress, pregnancy, hypoglycemia, and acute withdrawal of long-term steroids. Symptoms of an Addisonian crisis include malaise, fatigue, nausea or vomiting, abdominal pain, fever, muscle pains, dehydration, confusion, and loss of consciousness.
There is no fixed consensus on diagnostic criteria for an Addisonian crisis, as symptoms are non-specific. Investigations may include blood tests, blood gas analysis, and septic screens if infection is suspected. Management involves administering hydrocortisone and fluids. Hydrocortisone is given parenterally, and the dosage varies depending on the age of the patient. Fluid resuscitation with saline is necessary to correct any electrolyte disturbances and maintain blood pressure. The underlying cause of the crisis should also be identified and treated. Close monitoring of sodium levels is important to prevent complications such as osmotic demyelination syndrome.
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This question is part of the following fields:
- Endocrinology
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Question 55
Correct
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A patient presents with abdominal pain and confusion. They have a history of Addison’s disease but recently ran out of their steroid medication. You suspect an Addisonian crisis.
What is the most frequent cause of Addison’s disease?Your Answer: Autoimmune adrenalitis
Explanation:Addison’s disease can be attributed to various underlying causes. The most common cause, accounting for approximately 80% of cases, is autoimmune adrenalitis. This occurs when the body’s immune system mistakenly attacks the adrenal glands. Another cause is bilateral adrenalectomy, which involves the surgical removal of both adrenal glands. Additionally, Addison’s disease can be triggered by a condition known as Waterhouse-Friderichsen syndrome, which involves bleeding into the adrenal glands. Tuberculosis, a bacterial infection, is also recognized as a potential cause of this disease. Lastly, although rare, congenital adrenal hyperplasia can contribute to the development of Addison’s disease.
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This question is part of the following fields:
- Endocrinology
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Question 56
Correct
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A 3-week-old girl presents with vomiting, poor weight gain, and decreased muscle tone. She is hypotensive and has a fast heart rate. During the examination, you notice that she has enlarged labia and increased pigmentation. Blood tests show high potassium, low sodium, and elevated levels of 17-hydroxyprogesterone. A venous blood gas reveals the presence of metabolic acidosis, and her blood glucose level is slightly low. Intravenous fluids have already been started.
What is the SINGLE most appropriate next step in management?Your Answer: IV hydrocortisone and IV dextrose
Explanation:Congenital adrenal hyperplasia (CAH) is a group of inherited disorders that are caused by autosomal recessive genes. The majority of affected patients, over 90%, have a deficiency of the enzyme 21-hydroxylase. This enzyme is encoded by the 21-hydroxylase gene, which is located on chromosome 6p21 within the HLA histocompatibility complex. The second most common cause of CAH is a deficiency of the enzyme 11-beta-hydroxylase. The condition is rare, with an incidence of approximately 1 in 500 births in the UK. It is more prevalent in the offspring of consanguineous marriages.
The deficiency of 21-hydroxylase leads to a deficiency of cortisol and/or aldosterone, as well as an excess of precursor steroids. As a result, there is an increased secretion of ACTH from the anterior pituitary, leading to adrenocortical hyperplasia.
The severity of CAH varies depending on the degree of 21-hydroxylase deficiency. Female infants often exhibit ambiguous genitalia, such as clitoral hypertrophy and labial fusion. Male infants may have an enlarged scrotum and/or scrotal pigmentation. Hirsutism, or excessive hair growth, occurs in 10% of cases.
Boys with CAH often experience a salt-losing adrenal crisis at around 1-3 weeks of age. This crisis is characterized by symptoms such as vomiting, weight loss, floppiness, and circulatory collapse.
The diagnosis of CAH can be made by detecting markedly elevated levels of the metabolic precursor 17-hydroxyprogesterone. Neonatal screening is possible, primarily through the identification of persistently elevated 17-hydroxyprogesterone levels.
In infants presenting with a salt-losing crisis, the following biochemical abnormalities are observed: hyponatremia (low sodium levels), hyperkalemia (high potassium levels), metabolic acidosis, and hypoglycemia.
Boys experiencing a salt-losing crisis will require fluid resuscitation, intravenous dextrose, and intravenous hydrocortisone.
Affected females will require corrective surgery for their external genitalia. However, they have an intact uterus and ovaries and are capable of having children.
The long-term management of both sexes involves lifelong replacement of hydrocortisone (to suppress ACTH levels).
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This question is part of the following fields:
- Endocrinology
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Question 57
Correct
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A 35-year-old presents to the emergency department complaining of palpitations. During the history-taking, the patient reveals a recent weight loss of approximately 10 kg over the past 6 months and the presence of hand tremors. Thyroid function tests are ordered and the results confirm hyperthyroidism. What is the predominant cause of thyrotoxicosis in the United Kingdom?
Your Answer: Graves' disease
Explanation:TSH-secreting pituitary adenoma is an uncommon cause of hyperthyroidism in the United Kingdom, accounting for only a small number of cases.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 58
Correct
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A 60 year old male presents to the emergency department complaining of headache and palpitations. Upon assessment, the patient appears sweaty and his blood pressure is measured at 224/122 mmHg. The patient expresses fear of potential death. He mentions experiencing similar episodes in the past few weeks, although not as severe as this one. Which of the following tests would be the most suitable to determine the suspected underlying condition?
Your Answer: Plasma metanephrines
Explanation:When there is suspicion of phaeochromocytoma, the first tests to be done are plasma and/or urinary metanephrines. This patient exhibits paroxysmal symptoms that are consistent with phaeochromocytoma, such as high blood pressure, headache, sweating, anxiety, and fear. The initial diagnostic tests aim to confirm any metabolic disturbances by measuring levels of plasma and/or urine metanephrines, catecholamines, and urine vanillylmandelic acid (VMA). If these levels are found to be elevated, further imaging tests will be needed to determine the location and structure of the phaeochromocytoma tumor.
Further Reading:
Phaeochromocytoma is a rare neuroendocrine tumor that secretes catecholamines. It typically arises from chromaffin tissue in the adrenal medulla, but can also occur in extra-adrenal chromaffin tissue. The majority of cases are spontaneous and occur in individuals aged 40-50 years. However, up to 30% of cases are hereditary and associated with genetic mutations. About 10% of phaeochromocytomas are metastatic, with extra-adrenal tumors more likely to be metastatic.
The clinical features of phaeochromocytoma are a result of excessive catecholamine production. Symptoms are typically paroxysmal and include hypertension, headaches, palpitations, sweating, anxiety, tremor, abdominal and flank pain, and nausea. Catecholamines have various metabolic effects, including glycogenolysis, mobilization of free fatty acids, increased serum lactate, increased metabolic rate, increased myocardial force and rate of contraction, and decreased systemic vascular resistance.
Diagnosis of phaeochromocytoma involves measuring plasma and urine levels of metanephrines, catecholamines, and urine vanillylmandelic acid. Imaging studies such as abdominal CT or MRI are used to determine the location of the tumor. If these fail to find the site, a scan with metaiodobenzylguanidine (MIBG) labeled with radioactive iodine is performed. The highest sensitivity and specificity for diagnosis is achieved with plasma metanephrine assay.
The definitive treatment for phaeochromocytoma is surgery. However, before surgery, the patient must be stabilized with medical management. This typically involves alpha-blockade with medications such as phenoxybenzamine or phentolamine, followed by beta-blockade with medications like propranolol. Alpha blockade is started before beta blockade to allow for expansion of blood volume and to prevent a hypertensive crisis.
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This question is part of the following fields:
- Endocrinology
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Question 59
Correct
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A 40 year old man presents to the emergency department after experiencing difficulty swallowing a food bolus. However, the patient successfully swallows the bolus while being evaluated by the triage nurse. During the examination, you observe an enlarged thyroid gland. What is the most appropriate test for evaluating thyroid function?
Your Answer: TSH
Explanation:The best single test to evaluate thyroid function is TSH. Goitres can be associated with either hypothyroidism or hyperthyroidism, although hypothyroidism is more common. According to NICE guidelines, when there is suspicion of hypothyroidism, it is recommended to first check the TSH level. If the TSH level is above the normal range, then the free thyroxine (FT4) should be checked on the same sample. Similarly, in cases of suspected hyperthyroidism, it is advised to first check the TSH level. If the TSH level is below the normal range, then the free thyroxine (FT4) and free triiodothyronine (FT3) should be checked on the same sample.
Further Reading:
The thyroid gland is an endocrine organ located in the anterior neck. It consists of two lobes connected by an isthmus. The gland produces hormones called thyroxine (T4) and triiodothyronine (T3), which regulate energy use, protein synthesis, and the body’s sensitivity to other hormones. The production of T4 and T3 is stimulated by thyroid-stimulating hormone (TSH) secreted by the pituitary gland, which is in turn stimulated by thyrotropin-releasing hormone (TRH) from the hypothalamus.
Thyroid disorders can occur when there is an imbalance in the production or regulation of thyroid hormones. Hypothyroidism is characterized by a deficiency of thyroid hormones, while hyperthyroidism is characterized by an excess. The most common cause of hypothyroidism is autoimmune thyroiditis, also known as Hashimoto’s thyroiditis. It is more common in women and is often associated with goiter. Other causes include subacute thyroiditis, atrophic thyroiditis, and iodine deficiency. On the other hand, the most common cause of hyperthyroidism is Graves’ disease, which is also an autoimmune disorder. Other causes include toxic multinodular goiter and subacute thyroiditis.
The symptoms and signs of thyroid disorders can vary depending on whether the thyroid gland is underactive or overactive. In hypothyroidism, common symptoms include weight gain, lethargy, cold intolerance, and dry skin. In hyperthyroidism, common symptoms include weight loss, restlessness, heat intolerance, and increased sweating. Both hypothyroidism and hyperthyroidism can also affect other systems in the body, such as the cardiovascular, gastrointestinal, and neurological systems.
Complications of thyroid disorders can include dyslipidemia, metabolic syndrome, coronary heart disease, heart failure, subfertility and infertility, impaired special senses, and myxedema coma in severe cases of hypothyroidism. In hyperthyroidism, complications can include Graves’ orbitopathy, compression of the esophagus or trachea by goiter, thyrotoxic periodic paralysis, arrhythmias, osteoporosis, mood disorders, and increased obstetric complications.
Myxedema coma is a rare and life-threatening complication of severe hypothyroidism. It can be triggered by factors such as infection or physiological insult and presents with lethargy, bradycardia, hypothermia, hypotension, hypoventilation, altered mental state, seizures and/or coma.
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This question is part of the following fields:
- Endocrinology
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Question 60
Correct
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A child with a known adrenal insufficiency presents with vomiting, excessive sweating, and abdominal discomfort. You suspect the possibility of an Addisonian crisis.
What type of acid-base imbalance would you anticipate in a patient with adrenal insufficiency?Your Answer: Normal anion gap metabolic acidosis
Explanation:The following provides a summary of common causes for different acid-base disorders.
Respiratory alkalosis can be caused by hyperventilation, such as during periods of anxiety. It can also be a result of conditions like pulmonary embolism, CNS disorders (such as stroke or encephalitis), altitude, pregnancy, or the early stages of aspirin overdose.
Respiratory acidosis, on the other hand, is often associated with chronic obstructive pulmonary disease (COPD), life-threatening asthma, pulmonary edema, sedative drug overdose (such as opiates or benzodiazepines), neuromuscular disease, obesity, or other respiratory conditions.
Metabolic alkalosis can occur due to vomiting, potassium depletion (often caused by diuretic usage), Cushing’s syndrome, or Conn’s syndrome.
Metabolic acidosis with a raised anion gap can be caused by lactic acidosis (such as in cases of hypoxemia, shock, sepsis, or infarction), ketoacidosis (such as in diabetes, starvation, or alcohol excess), renal failure, or poisoning (such as in late stages of aspirin overdose, methanol or ethylene glycol ingestion).
Lastly, metabolic acidosis with a normal anion gap can be a result of conditions like diarrhea, ammonium chloride ingestion, or adrenal insufficiency.
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This question is part of the following fields:
- Endocrinology
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