All questions
Question 1
A patient with primary hypothyroidism has been on a stable dose of levothyroxine for years, with a consistently normal TSH. They recently started taking an oral calcium carbonate supplement for osteoporosis. A follow-up TSH level is found to be elevated. What is the most likely mechanism for this change?
- Calcium enhances the peripheral conversion of T4 to the less active reverse T3 (rT3).
- Calcium increases the synthesis of thyroxine-binding globulin (TBG) in the liver.
- Calcium carbonate directly suppresses the pituitary's sensitivity to circulating T4.
- Calcium cations form an insoluble chelate with levothyroxine in the gut, reducing its absorption. (correct answer)
Explanation: Levothyroxine absorption occurs in the small intestine. Divalent and trivalent cations, such as those found in calcium carbonate, iron supplements, and aluminum hydroxide antacids, can bind (chelate) to levothyroxine in the gastrointestinal tract. This forms an insoluble complex that cannot be absorbed, reducing the bioavailability of the drug and leading to a decreased therapeutic effect, which manifests as a rise in TSH.
Question 2
A patient with a large, autonomous multinodular goiter is clinically euthyroid with a normal TSH. The patient undergoes a cardiac catheterization procedure that involves administration of a large load of iodinated contrast agent. Two weeks later, the patient develops palpitations, heat intolerance, and tachycardia. Which phenomenon best describes this clinical course?
- Wolff-Chaikoff effect, causing transient hypothyroidism.
- Amiodarone-induced type 1 thyrotoxicosis.
- Thyroid stunning from the contrast agent's radioactivity.
- Jod-Basedow phenomenon, inducing hyperthyroidism. (correct answer)
Explanation: When you encounter thyroid dysfunction following iodine exposure, think about the thyroid's dual response to iodine loads and how baseline thyroid pathology influences the outcome.
The correct answer is D because this patient experienced the Jod-Basedow phenomenon. "Jod" means iodine in German, and this describes iodine-induced hyperthyroidism in patients with pre-existing thyroid autonomy. The patient's autonomous multinodular goiter contains thyroid tissue that functions independently of TSH regulation. When exposed to a large iodine load from the contrast agent, these autonomous nodules used the excess iodine substrate to produce excessive thyroid hormones, resulting in hyperthyroidism two weeks later.
Answer A is incorrect because the Wolff-Chaikoff effect describes the normal thyroid's protective mechanism that temporarily shuts down hormone synthesis when exposed to high iodine levels, causing transient hypothyroidism—the opposite of what occurred here.
Answer B is wrong because this patient received iodinated contrast, not amiodarone. Additionally, amiodarone-induced type 1 thyrotoxicosis occurs in patients with pre-existing thyroid disease but through amiodarone's iodine content, not contrast agents.
Answer C is incorrect because thyroid stunning refers to temporary thyroid dysfunction following radioactive iodine therapy, not from the minimal radioactivity in contrast agents.
Remember this pattern: iodine exposure in patients with autonomous thyroid tissue (multinodular goiter, toxic adenomas) often triggers hyperthyroidism (Jod-Basedow), while normal thyroid glands typically respond with temporary suppression (Wolff-Chaikoff). The baseline thyroid pathology determines the response direction.
Question 3
Why are patients with hyperthyroidism at an increased risk for developing atrial fibrillation?
- Excess T3 shortens the atrial refractory period and increases adrenergic sensitivity, promoting ectopic foci. (correct answer)
- Thyroid hormone directly decreases the resting membrane potential of atrial myocytes, making them more excitable.
- Hyperthyroidism causes significant hypokalemia, which destabilizes the atrial myocardial action potential.
- Thyroid-stimulating immunoglobulins cross-react with cardiac conduction tissue, causing chaotic signaling.
Explanation: When you encounter questions about hyperthyroidism and cardiac arrhythmias, focus on how thyroid hormones affect cardiac electrophysiology at the cellular level. Thyroid hormones have profound effects on heart rhythm through multiple mechanisms involving ion channels and autonomic sensitivity.
Excess thyroid hormone, particularly T3, creates a perfect storm for atrial fibrillation by shortening the atrial refractory period - the time after an action potential when cells cannot be stimulated again. This shorter refractory period allows for more frequent, chaotic electrical impulses. Additionally, thyroid hormones increase the heart's sensitivity to catecholamines (epinephrine and norepinephrine), amplifying the sympathetic nervous system's effects. Together, these changes promote the formation of ectopic foci - abnormal pacemaker sites in the atria that compete with the normal sinus node, leading to the characteristic chaotic rhythm of atrial fibrillation. This makes option A correct.
Option B incorrectly suggests thyroid hormones directly alter resting membrane potential. While thyroid hormones do affect ion channels, they don't primarily work by decreasing resting membrane potential. Option C mentions hypokalemia, but hyperthyroidism doesn't typically cause significant potassium depletion as a primary mechanism for AF. Option D describes an autoimmune cross-reactivity mechanism that isn't the primary pathophysiology - while Graves' disease involves antibodies, they don't directly cross-react with cardiac conduction tissue to cause AF.
Remember: thyroid-cardiac interactions focus on refractory periods and adrenergic sensitivity. This combination appears frequently in pathophysiology questions about endocrine-cardiovascular connections.
Question 4
A patient with a history of bipolar disorder treated with long-term lithium therapy develops hypothyroidism. While lithium can induce autoimmune thyroiditis, what is its most direct, non-autoimmune mechanism for disrupting thyroid function?
- It competitively blocks the binding of TSH to its receptor on thyroid follicular cells.
- It accelerates the hepatic clearance of T4 by inducing cytochrome P450 enzymes.
- It inhibits the coupling of iodotyrosines and the release of T4 and T3 from the thyroid gland. (correct answer)
- It functions as a goitrogen by preventing the intestinal absorption of dietary iodine.
Explanation: Lithium is concentrated in the thyroid gland and has multiple inhibitory effects on thyroid hormone production. Its primary mechanism is interfering with thyroid hormone synthesis and release. It inhibits the coupling of mono- and di-iodotyrosines to form T4 and T3 within thyroglobulin and, more significantly, it inhibits the colloid pinocytosis and proteolysis required to release T4 and T3 from the gland into the circulation.
Question 5
A patient is admitted in thyroid storm, characterized by hyperthermia, tachycardia, and altered mental status. While the levels of circulating thyroid hormones are high, they are often not substantially higher than in uncomplicated thyrotoxicosis. What is thought to be the key precipitating factor that transitions thyrotoxicosis to thyroid storm?
- A sudden saturation of all thyroxine-binding globulin, leading to a spike in free hormone.
- Development of central hypothyroidism due to pituitary exhaustion from overstimulation.
- A rapid shift in peripheral conversion from T3 to the more potent reverse T3.
- An acute systemic stressor that causes a massive surge in catecholamine release and response. (correct answer)
Explanation: When you encounter thyroid storm questions, focus on understanding why some patients with thyrotoxicosis develop this life-threatening crisis while others with similar hormone levels do not. The key lies in the synergistic relationship between thyroid hormones and the sympathetic nervous system.
Thyroid storm occurs when an acute systemic stressor triggers massive catecholamine release in a patient who already has elevated thyroid hormones. This creates a dangerous positive feedback loop: thyroid hormones increase tissue sensitivity to catecholamines, while stress-induced catecholamines amplify thyroid hormone effects. The result is the classic triad of hyperthermia, severe tachycardia, and altered mental status that defines thyroid storm. This explains why hormone levels aren't dramatically different from uncomplicated thyrotoxicosis—it's the catecholamine surge that tips the balance.
Looking at the wrong answers: Choice A incorrectly suggests that TBG saturation causes sudden free hormone spikes, but TBG binding changes occur gradually and don't explain the acute nature of thyroid storm. Choice B proposes pituitary exhaustion leading to central hypothyroidism, which contradicts the hypermetabolic state of thyroid storm. Choice C mentions conversion to reverse T3, but reverse T3 is actually less potent than T3 and represents the body's attempt to reduce thyroid hormone activity during illness.
Remember this pattern: thyroid storm isn't just about hormone levels—it's about the catastrophic interaction between existing thyrotoxicosis and acute stress. Always look for the stressor (infection, surgery, trauma) that precipitates the crisis through catecholamine release.
Question 6
A 34-year-old female presents with fatigue, cold intolerance, and a firm, non-tender goiter. Her TSH is 15.2 mIU/L (ref 0.4-4.0), free T4 is 0.6 ng/dL (ref 0.8-1.8), and anti-TPO antibodies are highly positive. Another 34-year-old female with Graves' disease also presents with a goiter. What is the fundamental difference in the pathophysiology of goiter formation between these two patients?
- In the first patient, TSH receptor antibodies cause thyroid hyperplasia; in the second, chronic TSH stimulation causes follicular cell growth.
- In the first patient, lymphocytic infiltration and fibrosis cause enlargement; in the second, TSH receptor-stimulating antibodies cause hypertrophy and hyperplasia. (correct answer)
- In the first patient, iodine trapping is enhanced, leading to colloid accumulation; in the second, follicular cells are destroyed by apoptosis.
- In the first patient, a lack of negative feedback causes pituitary growth; in the second, thyroid-stimulating immunoglobulins cause vascular engorgement.
Explanation: The first patient has Hashimoto's thyroiditis, the most common cause of hypothyroidism in iodine-sufficient areas. The goiter is primarily caused by intense infiltration of the gland by lymphocytes and plasma cells, along with fibrosis, leading to enlargement. In contrast, the patient with Graves' disease has a goiter caused by thyroid-stimulating immunoglobulins (a type of TRAb) that bind to and activate the TSH receptor, leading to both hypertrophy (increase in cell size) and hyperplasia (increase in cell number) of thyroid follicular cells.
Question 7
A patient with primary hypothyroidism has been on a stable dose of levothyroxine for years, with a consistently normal TSH. They recently started taking an oral calcium carbonate supplement for osteoporosis. A follow-up TSH level is found to be elevated. What is the most likely mechanism for this change?
- Calcium enhances the peripheral conversion of T4 to the less active reverse T3 (rT3).
- Calcium increases the synthesis of thyroxine-binding globulin (TBG) in the liver.
- Calcium carbonate directly suppresses the pituitary's sensitivity to circulating T4.
- Calcium cations form an insoluble chelate with levothyroxine in the gut, reducing its absorption. (correct answer)
Explanation: Levothyroxine absorption occurs in the small intestine. Divalent and trivalent cations, such as those found in calcium carbonate, iron supplements, and aluminum hydroxide antacids, can bind (chelate) to levothyroxine in the gastrointestinal tract. This forms an insoluble complex that cannot be absorbed, reducing the bioavailability of the drug and leading to a decreased therapeutic effect, which manifests as a rise in TSH.
Question 8
A patient is diagnosed with subacute thyroiditis (de Quervain's) after a viral illness. They initially present with symptoms of hyperthyroidism and a suppressed TSH. What is the underlying mechanism for this initial hyperthyroid phase?
- Production of TSH-receptor stimulating antibodies triggered by the viral infection.
- Inflammatory destruction of thyroid follicles and release of pre-formed hormone. (correct answer)
- Increased iodine uptake and hyper-synthesis of new thyroid hormone.
- A transient pituitary inflammation causing a surge in TSH secretion.
Explanation: Subacute thyroiditis is an inflammatory condition, often post-viral, that causes destruction of thyroid follicular cells. This damage leads to the unregulated release of large quantities of pre-formed T4 and T3 stored in the follicular colloid into the bloodstream. This causes a transient hyperthyroid state. Unlike Graves' disease, there is no new hormone synthesis; in fact, radioiodine uptake is characteristically low during this phase.
Question 9
An elderly patient with hypothyroidism requires a significantly lower dose of levothyroxine per kilogram of body weight compared to a younger adult to achieve a normal TSH. What is the primary age-related physiological change that accounts for this difference?
- Decreased metabolic clearance rate of thyroxine due to reduced hepatic and renal function. (correct answer)
- Increased bioavailability of oral levothyroxine due to slower gastrointestinal transit.
- Heightened sensitivity of the pituitary's TSH feedback mechanism to circulating T4.
- A greater proportion of lean body mass relative to fat mass in the elderly.
Explanation: When you encounter questions about medication dosing differences across age groups, think about how aging affects drug metabolism and clearance rather than just absorption or sensitivity changes.
The key insight here is that elderly patients require lower levothyroxine doses because their bodies clear the hormone more slowly from circulation. As we age, both hepatic metabolism and renal clearance decline significantly. The liver produces fewer metabolizing enzymes and has reduced blood flow, while kidney function typically decreases by about 1% per year after age 30. Since thyroxine is metabolized primarily in the liver and its metabolites are cleared by the kidneys, reduced function in both organs means the hormone stays in circulation longer. Therefore, smaller doses achieve the same therapeutic effect.
Option A correctly identifies this decreased metabolic clearance as the primary mechanism. Option B is incorrect because slower GI transit actually tends to decrease bioavailability of most medications, not increase it, and this effect is relatively minor compared to clearance changes. Option C misrepresents the physiology—pituitary sensitivity to thyroid hormones doesn't significantly increase with age; if anything, the feedback mechanism becomes less sensitive. Option D states the opposite of reality: elderly patients typically have decreased lean body mass and increased fat mass, which would require dose adjustments in the opposite direction for lipophilic drugs.
Remember that for pathophysiology exams, age-related medication questions usually test your understanding of pharmacokinetics—particularly how aging affects drug clearance through reduced liver and kidney function.
Question 10
A patient with severe, long-standing primary hypothyroidism is noted to have a significantly elevated serum cholesterol level, primarily due to an increase in LDL. What is the principal mechanism responsible for this dyslipidemia?
- Increased activity of HMG-CoA reductase, leading to enhanced hepatic cholesterol synthesis.
- Decreased expression and activity of hepatic LDL receptors, resulting in impaired LDL clearance. (correct answer)
- Reduced conversion of cholesterol to bile acids in the liver, causing cholesterol accumulation.
- Upregulation of intestinal cholesterol absorption mediated by Niemann-Pick C1-like 1 (NPC1L1) protein.
Explanation: Thyroid hormones, particularly T3, are critical for the transcription of the gene for the LDL receptor. In hypothyroidism, the reduced levels of thyroid hormone lead to a down-regulation of LDL receptors on hepatocytes. This decreases the liver's ability to clear LDL cholesterol from the circulation, leading to hypercholesterolemia.
Question 11
The pretibial myxedema seen in Graves' disease and the generalized myxedema of severe hypothyroidism both involve the deposition of the same substance in the dermis. What is this substance, and why does its accumulation differ between the two conditions?
- Collagen; its synthesis is stimulated by TRAbs in Graves' and by TSH in hypothyroidism.
- Albumin; it leaks into the interstitium due to high capillary pressure in Graves' and low oncotic pressure in hypothyroidism.
- Glycosaminoglycans; accumulation is localized and inflammatory in Graves' but generalized and metabolic in hypothyroidism. (correct answer)
- Keratin; its production is increased in Graves' due to epidermal stimulation, and its breakdown is slowed in hypothyroidism.
Explanation: Both conditions involve the accumulation of hydrophilic glycosaminoglycans (GAGs), primarily hyaluronic acid, in the dermis. However, the mechanisms differ. In Graves' disease, an autoimmune process involving T-cells and TRAbs stimulates fibroblasts (particularly in the pretibial area) to overproduce GAGs, leading to a localized, inflammatory, non-pitting edema (pretibial myxedema). In severe hypothyroidism, the metabolic clearance and degradation of GAGs are slowed throughout the body, leading to their widespread accumulation, which causes the characteristic generalized, non-pitting edema (myxedema).
Question 12
A 45-year-old male presents with palpitations, anxiety, and a 10-lb weight loss despite an increased appetite. Laboratory studies reveal a markedly suppressed TSH level (<0.01 mIU/L), an elevated free T4 level, and a significantly elevated free T3 level. Which of the following pathophysiological mechanisms best explains the disproportionately high free T3 compared to free T4?
- A TSH-secreting pituitary adenoma is causing symmetric stimulation of T3 and T4 release.
- Autoantibodies in Graves' disease preferentially stimulate the synthesis and release of T3 over T4. (correct answer)
- A toxic thyroid adenoma has developed autonomy and is primarily secreting pre-formed T3.
- Extrathyroidal deiodinase activity is converting the excess T4 to T3 at an accelerated rate.
Explanation: In Graves' disease, the stimulating TSH receptor antibodies (TRAb) not only increase hormone synthesis and release but also alter the ratio of secreted hormones, favoring T3. This, combined with increased peripheral conversion of T4 to T3, leads to a state where T3 levels are often disproportionately elevated compared to T4 levels, a condition known as T3 toxicosis. This contributes significantly to the severity of the patient's symptoms.
Question 13
A patient is found to have a low free T4 and a low TSH. This pattern is confirmed on repeat testing. Assuming the patient is not acutely ill (e.g., euthyroid sick syndrome), which of the following represents the most likely location of the primary pathology?
- Thyroid gland, due to autoimmune destruction.
- Peripheral tissues, due to deiodinase deficiency.
- Anterior pituitary, due to deficient TSH secretion. (correct answer)
- Adrenal gland, due to cortisol-mediated TSH suppression.
Explanation: This laboratory pattern (low T4 and low/inappropriately normal TSH) is characteristic of central hypothyroidism. The thyroid gland itself is capable of producing hormone, but it is not receiving the necessary stimulation from the pituitary. Therefore, the pathology lies in the anterior pituitary (secondary hypothyroidism) or the hypothalamus (tertiary hypothyroidism). The pituitary is failing to secrete adequate TSH in response to the low T4 level. Primary hypothyroidism would feature a high TSH.
Question 14
A patient with known thyrotoxicosis is treated with a non-selective beta-blocker, such as propranolol, which provides rapid symptomatic relief. In addition to blocking beta-adrenergic receptors, what other key mechanism contributes to propranolol's efficacy in severe hyperthyroidism?
- It inhibits the organification of iodine within the thyroid gland.
- It stimulates the release of TSH from the anterior pituitary.
- It reduces the peripheral conversion of T4 to the more active T3. (correct answer)
- It increases the renal clearance of both T4 and T3.
Explanation: While the primary benefit of beta-blockers in thyrotoxicosis is to counteract the effects of increased sympathetic activity (e.g., tachycardia, tremor, anxiety), propranolol (especially at higher doses) has an additional important mechanism. It inhibits the enzyme 5'-deiodinase, which is responsible for the conversion of thyroxine (T4) to the more biologically potent triiodothyronine (T3) in peripheral tissues. This reduces the overall metabolic effect of the excess thyroid hormone.
Question 15
A patient is diagnosed with subacute thyroiditis (de Quervain's) after a viral illness. They initially present with symptoms of hyperthyroidism and a suppressed TSH. What is the underlying mechanism for this initial hyperthyroid phase?
- Production of TSH-receptor stimulating antibodies triggered by the viral infection.
- Inflammatory destruction of thyroid follicles and release of pre-formed hormone. (correct answer)
- Increased iodine uptake and hyper-synthesis of new thyroid hormone.
- A transient pituitary inflammation causing a surge in TSH secretion.
Explanation: Subacute thyroiditis is an inflammatory condition, often post-viral, that causes destruction of thyroid follicular cells. This damage leads to the unregulated release of large quantities of pre-formed T4 and T3 stored in the follicular colloid into the bloodstream. This causes a transient hyperthyroid state. Unlike Graves' disease, there is no new hormone synthesis; in fact, radioiodine uptake is characteristically low during this phase.
Question 16
A 34-year-old female presents with fatigue, cold intolerance, and a firm, non-tender goiter. Her TSH is 15.2 mIU/L (ref 0.4-4.0), free T4 is 0.6 ng/dL (ref 0.8-1.8), and anti-TPO antibodies are highly positive. Another 34-year-old female with Graves' disease also presents with a goiter. What is the fundamental difference in the pathophysiology of goiter formation between these two patients?
- In the first patient, TSH receptor antibodies cause thyroid hyperplasia; in the second, chronic TSH stimulation causes follicular cell growth.
- In the first patient, lymphocytic infiltration and fibrosis cause enlargement; in the second, TSH receptor-stimulating antibodies cause hypertrophy and hyperplasia. (correct answer)
- In the first patient, iodine trapping is enhanced, leading to colloid accumulation; in the second, follicular cells are destroyed by apoptosis.
- In the first patient, a lack of negative feedback causes pituitary growth; in the second, thyroid-stimulating immunoglobulins cause vascular engorgement.
Explanation: The first patient has Hashimoto's thyroiditis, the most common cause of hypothyroidism in iodine-sufficient areas. The goiter is primarily caused by intense infiltration of the gland by lymphocytes and plasma cells, along with fibrosis, leading to enlargement. In contrast, the patient with Graves' disease has a goiter caused by thyroid-stimulating immunoglobulins (a type of TRAb) that bind to and activate the TSH receptor, leading to both hypertrophy (increase in cell size) and hyperplasia (increase in cell number) of thyroid follicular cells.
Question 17
A patient is found to have a low free T4 and a low TSH. This pattern is confirmed on repeat testing. Assuming the patient is not acutely ill (e.g., euthyroid sick syndrome), which of the following represents the most likely location of the primary pathology?
- Thyroid gland, due to autoimmune destruction.
- Peripheral tissues, due to deiodinase deficiency.
- Anterior pituitary, due to deficient TSH secretion. (correct answer)
- Adrenal gland, due to cortisol-mediated TSH suppression.
Explanation: This laboratory pattern (low T4 and low/inappropriately normal TSH) is characteristic of central hypothyroidism. The thyroid gland itself is capable of producing hormone, but it is not receiving the necessary stimulation from the pituitary. Therefore, the pathology lies in the anterior pituitary (secondary hypothyroidism) or the hypothalamus (tertiary hypothyroidism). The pituitary is failing to secrete adequate TSH in response to the low T4 level. Primary hypothyroidism would feature a high TSH.
Question 18
A 45-year-old male presents with palpitations, anxiety, and a 10-lb weight loss despite an increased appetite. Laboratory studies reveal a markedly suppressed TSH level (<0.01 mIU/L), an elevated free T4 level, and a significantly elevated free T3 level. Which of the following pathophysiological mechanisms best explains the disproportionately high free T3 compared to free T4?
- A TSH-secreting pituitary adenoma is causing symmetric stimulation of T3 and T4 release.
- Autoantibodies in Graves' disease preferentially stimulate the synthesis and release of T3 over T4. (correct answer)
- A toxic thyroid adenoma has developed autonomy and is primarily secreting pre-formed T3.
- Extrathyroidal deiodinase activity is converting the excess T4 to T3 at an accelerated rate.
Explanation: In Graves' disease, the stimulating TSH receptor antibodies (TRAb) not only increase hormone synthesis and release but also alter the ratio of secreted hormones, favoring T3. This, combined with increased peripheral conversion of T4 to T3, leads to a state where T3 levels are often disproportionately elevated compared to T4 levels, a condition known as T3 toxicosis. This contributes significantly to the severity of the patient's symptoms.
Question 19
A patient with known thyrotoxicosis is treated with a non-selective beta-blocker, such as propranolol, which provides rapid symptomatic relief. In addition to blocking beta-adrenergic receptors, what other key mechanism contributes to propranolol's efficacy in severe hyperthyroidism?
- It inhibits the organification of iodine within the thyroid gland.
- It stimulates the release of TSH from the anterior pituitary.
- It reduces the peripheral conversion of T4 to the more active T3. (correct answer)
- It increases the renal clearance of both T4 and T3.
Explanation: While the primary benefit of beta-blockers in thyrotoxicosis is to counteract the effects of increased sympathetic activity (e.g., tachycardia, tremor, anxiety), propranolol (especially at higher doses) has an additional important mechanism. It inhibits the enzyme 5'-deiodinase, which is responsible for the conversion of thyroxine (T4) to the more biologically potent triiodothyronine (T3) in peripheral tissues. This reduces the overall metabolic effect of the excess thyroid hormone.
Question 20
In Graves' ophthalmopathy, the characteristic proptosis and extraocular muscle dysfunction are not caused by the direct action of thyroid hormones. What is the initiating pathophysiological event in the retro-orbital tissues?
- Sympathetic nervous system overstimulation of the superior tarsal (Müller's) muscle.
- Deposition of thyroglobulin-antibody immune complexes in the extraocular muscles.
- Autoimmune T-cell recognition of antigens shared between the thyroid and orbital fibroblasts. (correct answer)
- Direct infiltration of orbital tissues by excess circulating T3 and T4, causing osmotic swelling.
Explanation: Graves' ophthalmopathy is an autoimmune process where activated T-cells recognize antigens, most notably the TSH receptor, which are expressed on the surface of orbital fibroblasts. This triggers an inflammatory cascade. The inflamed orbital fibroblasts proliferate and differentiate into adipocytes (fat cells) and also synthesize large amounts of hydrophilic glycosaminoglycans (like hyaluronic acid). This leads to an increase in the volume of retro-orbital fat and extraocular muscles, causing proptosis (exophthalmos) and muscle dysfunction.