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Endocrinology

Thyroid Disorders

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⭐ High-yield🎯 Drill Endocrinology
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Thyroid disorders represent some of the most common endocrine pathologies encountered in clinical practice, affecting approximately 12% of the US population over their lifetime. The thyroid gland produces thyroid hormones (T3 and T4) that regulate metabolism, growth, development, and thermogenesis through nuclear receptor-mediated gene transcription. Thyroid dysfunction presents as hyperthyroidism (excessive hormone production), hypothyroidism (insufficient hormone production), or structural abnormalities, each with distinct pathophysiologic mechanisms and clinical consequences. Understanding the hypothalamic-pituitary-thyroid (HPT) axis and autoimmune mechanisms is essential for diagnosis and management.

Autoimmune (most common in iodine-sufficient US)

  • Hashimoto thyroiditis: cytotoxic T-cell destruction of follicles with anti-TPO/anti-thyroglobulin antibodies — the leading cause of primary hypothyroidism in the United States
  • Graves disease: stimulating TSH-receptor antibodies (TSI/TRAb) drive unregulated hormone synthesis; the same antibody family drives orbitopathy and pretibial myxedema
  • Postpartum thyroiditis: lymphocytic thyroiditis 2–12 months after delivery, classically thyrotoxic → hypothyroid → recovery phases

Nodular/autonomous

  • Toxic multinodular goiter and toxic adenoma: somatic activating mutations of the TSH receptor or Gsα produce TSH-independent hormone output; typical of older patients with long-standing goiter

Destructive/inflammatory

  • Subacute granulomatous (de Quervain) thyroiditis: post-viral, painful gland, preformed hormone leaks out
  • Riedel and infiltrative disease (IgG4-related fibrosis, sarcoid, hemochromatosis): fibrous or infiltrative replacement of parenchyma

Iatrogenic and drug-related (modifiable)

  • Iodine excess: Jod-Basedow thyrotoxicosis in autonomous nodules; Wolff-Chaikoff escape failure causing hypothyroidism
  • Amiodarone: type 1 (iodine-load hyperthyroidism) vs type 2 (destructive thyroiditis); also a common cause of hypothyroidism
  • Lithium (blocks hormone release), interferon-α, tyrosine kinase inhibitors, and immune checkpoint inhibitors (thyroiditis)
  • Thyroidectomy, radioactive iodine, external-beam neck radiation
  • Factitious/exogenous levothyroxine use

Central

  • Pituitary or hypothalamic disease (macroadenoma, Sheehan syndrome, craniopharyngioma, hypophysitis) causing secondary hypothyroidism

Non-modifiable risk factors examiners plant in the stem

  • Female sex and age — autoimmune thyroid disease is several times more common in women
  • Family history and HLA associations; personal or family history of other autoimmune disease (type 1 diabetes, celiac disease, vitiligo, pernicious anemia, Addison disease in autoimmune polyglandular syndrome type 2)
  • Down syndrome and Turner syndrome — the American Academy of Pediatrics recommends periodic thyroid function screening in Down syndrome
  • Pregnancy and the postpartum year

Modifiable

  • Cigarette smoking — strongest modifiable risk factor for Graves orbitopathy and for its worsening after radioiodine
  • Iodine intake extremes — deficiency remains the leading global cause of hypothyroidism and goiter

Hypothalamic-Pituitary-Thyroid Axis

  • TRH (thyrotropin-releasing hormone) from the hypothalamus stimulates the anterior pituitary to release TSH (thyroid-stimulating hormone)
  • TSH binds to receptors on thyroid follicular cells, stimulating synthesis and release of T4 (80%) and T3 (20%)
  • T4 is peripherally converted to active T3 in target tissues by deiodinase enzymes
  • Negative feedback: T3 and T4 inhibit TRH and TSH release; free (not total) hormone levels provide the regulatory signal
  • This axis maintains tight homeostatic control of thyroid hormone levels with a set point at TSH of 0.5-5 mIU/L

Hormone Synthesis and Metabolism

  • Thyroid peroxidase (TPO) catalyzes iodination of tyrosine residues on thyroglobulin to form mono- and di-iodotyrosine
  • These iodinated residues couple to form T3 and T4 within thyroglobulin storage granules
  • T4 is more stable and circulates longer (half-life 7 days) than T3 (half-life 1.5 days)
  • Approximately 99% of T3 and T4 bound to thyroid-binding globulin (TBG), transthyretin, and albumin; only ~1% exists as biologically active free hormone
  • D1 and D3 deiodinases catalyze conversion of T4→T3 (activation) and T4→rT3 or T3→T2 (inactivation); D2 is crucial in CNS and pituitary

Major Pathophysiologic Categories

Hypothyroidism Mechanisms

  • Primary hypothyroidism (95% of cases): thyroid gland failure due to autoimmune destruction (Hashimoto thyroiditis—TPO and thyroglobulin antibodies), iodine deficiency, medications (lithium, amiodarone, PTU), radioactive iodine, thyroidectomy, or infiltrative disease (lymphoma, sarcoidosis)
  • Secondary hypothyroidism: TSH deficiency from pituitary disease or hypothalamic dysfunction (TRH deficiency); TSH will be low or inappropriately normal
  • In primary hypothyroidism, TSH rises as a compensatory response to falling free T4; TSH is the most sensitive marker of early disease

Hyperthyroidism Mechanisms

  • Graves disease (70% of hyperthyroidism cases): autoimmune IgG antibodies bind and activate TSH receptors on thyroid cells, stimulating hormone synthesis and release independently of TSH
  • Toxic multinodular goiter and toxic adenoma: autonomous thyroid tissue produces hormone without TSH stimulation
  • Thyroiditis (acute phase): inflammatory destruction of follicles releases preformed hormone into circulation; TSH is suppressed, but thyroid cannot synthesize new hormone
  • Exogenous thyroid hormone excess: iatrogenic or intentional overdose

Autoimmune Mechanisms (Hashimoto's and Graves')

  • Loss of self-tolerance leads to T cell and B cell responses against TPO, thyroglobulin, and TSH receptor
  • Infiltration of thyroid by CD4+ and CD8+ T cells and B cells producing pathogenic antibodies
  • Hashimoto's characterized by Th1-mediated response and progressive destruction; Graves' characterized by Th2-mediated response with TSH receptor-activating antibodies
  • Strong genetic predisposition (HLA-DR3, HLA-DR4 in Graves'; HLA-DR3, HLA-DR5 in Hashimoto's) with environmental triggers (infections, stress, pregnancy)

Hypothyroidism

  • Constitutional symptoms: fatigue, lethargy, weakness, inability to tolerate cold, weight gain despite poor appetite, dry skin and hair, hair loss
  • Neuropsychiatric: bradykinesia, slowed speech, depression, poor concentration, memory impairment, dementia in severe cases
  • Metabolic: slowed gastrointestinal transit causing constipation, decreased heart rate (bradycardia), decreased blood pressure, decreased cardiac contractility
  • Physical exam findings: myxedema (non-pitting edema from hyaluronic acid deposition in dermis and subcutaneous tissue affecting face, hands, and pretibial areas), thickened skin, husky voice, delayed deep tendon reflexes with prolonged relaxation phase ("hung-up" reflexes), macroglossia
  • Goiter: may or may not be present depending on etiology; more common in Hashimoto's and iodine deficiency
  • Menstrual abnormalities: menorrhagia, anovulation, infertility
  • Myxedema coma: life-threatening presentation with severe hypothermia, altered mental status, seizures, bradycardia, hypoventilation; occurs with prolonged untreated severe hypothyroidism

Hyperthyroidism

  • Constitutional symptoms: heat intolerance, excessive diaphoresis, weight loss despite increased appetite, nervousness, tremor, palpitations
  • Cardiovascular: tachycardia at rest and with exertion, widened pulse pressure, systolic flow murmur, atrial fibrillation (risk increases with age and is a serious complication), increased contractility
  • Neuropsychiatric: anxiety, irritability, insomnia, hyperreflexia, tremor (fine, rapid, best seen with hands outstretched), eye contact aversion, difficulty concentrating
  • Gastrointestinal: hyperdefecation (not truly diarrhea, but increased frequency), nausea, weight loss
  • Physical exam: warm, moist skin, lid lag and stare (from sympathetic overstimulation), tachycardia
  • Graves disease-specific findings:
  • Exophthalmos (proptosis): caused by lymphocytic infiltration and expansion of extraocular muscles and orbital fat; may cause compressive optic neuropathy or corneal ulceration (thyroid eye disease or Graves ophthalmopathy)
  • Lid lag: eyelid fails to descend smoothly with downward gaze due to sympathetic stimulation of Müller muscle
  • Pretibial myxedema: non-pitting edema over anterior shins (similar pathophysiology to hypothyroid myxedema but paradoxically occurs with hyperthyroidism)
  • Thyroid acropachy: clubbing of fingers and toes (rare)
  • Thyroid storm: life-threatening hypermetabolic state with high fever (>39°C), severe tachycardia, altered mental status, seizures, coma, precipitated by stress, infection, or abrupt iodine administration in untreated hyperthyroidism

Important Clinical Pearls

  • Subclinical hypothyroidism: elevated TSH with normal free T4; many remain asymptomatic but progress at ~5% per year; treatment controversial but increasingly recommended, especially if TSH >10 or TPO antibodies present
  • Subclinical hyperthyroidism: suppressed TSH with normal free T4; associated with atrial fibrillation risk and bone loss; should be treated if TSH <0.1 or symptoms present
  • Symptoms of thyroid disease overlap significantly with psychiatric, cardiovascular, and metabolic disorders; TSH should be checked liberally in patients with compatible presentations
  • Pregnancy considerations: both hyperthyroidism and hypothyroidism increase miscarriage and adverse fetal outcomes; TSH target is lower in pregnancy (0.1-2.5 mIU/L in first trim

Step 1 — screening test

  • Serum TSH: the single most sensitive initial test because of the log-linear amplification of TSH in response to small free T4 changes. Order TSH first in any suspected thyroid disorder; the USPSTF gives an I statement (insufficient evidence) for screening asymptomatic nonpregnant adults, so testing is case-finding, not screening

Step 2 — free T4 (± total or free T3) to localize the lesion

  • High TSH, low free T4: overt primary hypothyroidism
  • High TSH, normal free T4: subclinical hypothyroidism
  • Low/undetectable TSH, high free T4 or T3: overt thyrotoxicosis (T3 toxicosis if only T3 is elevated — think early Graves or toxic adenoma)
  • Low or inappropriately normal TSH with low free T4: central hypothyroidism — image the pituitary and evaluate other axes
  • High TSH with high free T4: think assay interference, TSH-secreting adenoma, or thyroid hormone resistance

Step 3 — establish etiology

  • Anti-TPO antibodies: confirm Hashimoto thyroiditis and predict progression from subclinical to overt disease
  • TRAb/TSI: confirms Graves when the diagnosis is not clinically obvious, and is the ATA-recommended test in pregnancy (transplacental antibody predicts fetal/neonatal Graves)
  • Radioactive iodine uptake and scan (the classic discriminator when TRAb is unavailable or negative):
  • Diffusely increased uptake — Graves
  • Focal hot nodule with suppressed background — toxic adenoma; patchy — toxic multinodular goiter
  • Near-zero uptake — thyroiditis, exogenous hormone, or iodine load. Distinguish with thyroglobulin: low in factitious ingestion, high in destructive thyroiditis
  • Ultrasound with color Doppler: first-line for nodules and goiter, and separates amiodarone-induced thyrotoxicosis type 1 (increased vascularity) from type 2 (absent flow)

Nodule work-up

  • Risk-stratify by ACR TI-RADS or the ATA sonographic pattern system, then FNA by size threshold; cytology is reported by the Bethesda System for Reporting Thyroid Cytopathology

Named scoring system

  • Burch-Wartofsky Point Scale quantifies likelihood of thyroid storm (temperature, CNS, GI-hepatic, cardiovascular, atrial fibrillation, precipitant); storm is a clinical diagnosis, not a lab value

Immediate stabilization — thyroid storm (emergency, ATA 2016 sequence)

  • Beta blocker: propranolol — controls adrenergic symptoms and partially blocks T4→T3 conversion; use esmolol if titration/reversal is needed
  • Thionamide: propylthiouracil preferred in storm because it also inhibits peripheral deiodination
  • Iodine (SSKI or Lugol solution) given at least one hour after the thionamide, exploiting the Wolff-Chaikoff effect to block hormone release; giving iodine first fuels new hormone synthesis
  • Glucocorticoid: hydrocortisone — blocks T4→T3 conversion and covers relative adrenal insufficiency
  • Cooling, volume resuscitation, and treatment of the precipitant. Avoid aspirin — it displaces T4 from TBG and raises free hormone

Immediate stabilization — myxedema coma (emergency)

  • IV levothyroxine (some add liothyronine), with IV hydrocortisone given first or concurrently until adrenal insufficiency is excluded, plus passive rewarming and ventilatory support

Hypothyroidism, first-line

  • Levothyroxine (T4) monotherapy is the ATA 2014 standard; combination T4/T3 and desiccated thyroid extract are not routinely recommended
  • Take on an empty stomach, separated from calcium, iron, and PPIs; recheck TSH after about six weeks
  • Start at low dose in the elderly and in coronary disease to avoid precipitating angina or arrhythmia
  • In pregnancy, requirements rise — ATA 2017 advises an early dose increase and trimester-specific TSH targets

Hyperthyroidism, three definitive options (ATA 2016 — all acceptable, choice is shared)

  • Thionamides: methimazole is first-line for nearly all patients; PTU is reserved for first-trimester pregnancy, storm, and methimazole intolerance because of its black-box hepatotoxicity
  • Radioactive iodine ablation: convenient and definitive; contraindicated in pregnancy and lactation, and avoided in moderate-to-severe active Graves orbitopathy (may worsen it — steroid prophylaxis if used in smokers/mild eye disease)
  • Total thyroidectomy: preferred for large compressive goiter, suspected malignancy, severe orbitopathy, or pregnancy failing medical therapy; pretreat with thionamide ± iodine to render euthyroid
  • Adjunct beta blockers for symptom control in all thyrotoxicosis, including thyroiditis, which is otherwise self-limited and needs no thionamide

Emergencies

  • Thyroid storm: decompensated thyrotoxicosis triggered by surgery, infection, parturition, or iodine load; fever, delirium, tachyarrhythmia, and high-output heart failure. Mortality is substantial even with treatment
  • Myxedema coma: hypothermia, hypoventilation with CO2 retention, hyponatremia (impaired free-water excretion), bradycardia, and obtundation in a decompensated hypothyroid patient — frequently precipitated by cold exposure, sedatives, or infection

Complications of untreated hyperthyroidism

  • Atrial fibrillation and thromboembolism: shortened atrial refractoriness and increased automaticity; the risk applies to subclinical disease as well and rises with age
  • Osteoporosis and fragility fracture: thyroid hormone accelerates bone remodeling with net resorption
  • Graves orbitopathy: retro-orbital glycosaminoglycan deposition; compressive optic neuropathy (loss of color vision, afferent pupillary defect) and corneal ulceration from exposure are sight-threatening emergencies
  • Thyrotoxic periodic paralysis: intracellular potassium shift with sudden proximal weakness, classically in Asian men

Complications of untreated hypothyroidism

  • Atherogenic dyslipidemia (reduced LDL-receptor expression), pericardial effusion, and reversible diastolic hypertension
  • Obstetric: miscarriage, preeclampsia, preterm birth; untreated maternal/congenital hypothyroidism causes irreversible neurodevelopmental injury (cretinism) — the rationale for universal newborn screening
  • Primary thyroid lymphoma: rare but classically arises in a Hashimoto gland that enlarges rapidly

Treatment-related

  • Thionamide agranulocytosis: idiosyncratic; fever and sore throat mandate stopping the drug and obtaining a CBC with differential — do not simply treat as pharyngitis
  • PTU hepatotoxicity (black-box, can be fulminant) and ANCA-associated vasculitis
  • Methimazole embryopathy in first-trimester exposure (aplasia cutis, choanal/esophageal atresia)
  • Post-thyroidectomy: recurrent laryngeal nerve injury (hoarseness; bilateral injury causes stridor), hypoparathyroidism with perioral numbness, Chvostek and Trousseau signs and prolonged QT, and expanding neck hematoma causing airway compromise
  • Radioiodine: near-inevitable permanent hypothyroidism and possible worsening of orbitopathy
  • Levothyroxine over-replacement: iatrogenic subclinical hyperthyroidism with atrial fibrillation and bone loss

  • TSH is always the first step: in a stem describing fatigue, weight change, or new atrial fibrillation, the single best next step is a serum TSH, then free T4 to grade severity
  • Low uptake thyrotoxicosis is the classic discriminator: thyrotoxic symptoms with near-zero radioiodine uptake means thyroiditis, exogenous hormone, or iodine load — never Graves. Add thyroglobulin: suppressed in factitious ingestion, elevated in destructive thyroiditis. The distractor is reflexively starting methimazole, which does nothing for released preformed hormone; give a beta blocker instead
  • Order matters in thyroid storm: thionamide before iodine. Iodine given first supplies substrate and worsens the storm
  • PTU only in three settings: first-trimester pregnancy, thyroid storm, and methimazole intolerance. Otherwise methimazole, because of PTU's black-box hepatotoxicity (ATA 2016). Remember the mirror trap — methimazole is the teratogen (aplasia cutis), PTU is the hepatotoxin
  • Fever and sore throat on a thionamide = agranulocytosis until proven otherwise: stop the drug and get a CBC with differential. This is the most frequently tested drug-toxicity vignette in endocrinology
  • Radioactive iodine is absolutely contraindicated in pregnancy and lactation, and is avoided in moderate-to-severe active Graves orbitopathy; smoking is the modifiable risk factor that worsens eye disease
  • Hashimoto associations: anti-TPO antibodies, Hürthle cells and germinal centers on histology, other autoimmune disease, and rapid painless gland enlargement suggesting primary thyroid lymphoma
  • Painful tender goiter after a viral URI with elevated ESR is subacute (de Quervain) thyroiditis — self-limited, treat with NSAIDs (glucocorticoids if severe), not thionamides
  • In pregnancy, hCG cross-stimulates the TSH receptor and can suppress TSH physiologically in the first trimester; do not misread transient gestational thyrotoxicosis with hyperemesis as Graves — check TRAb and look for orbitopathy
  • Myxedema coma: give hydrocortisone before or with levothyroxine; thyroid hormone alone can precipitate adrenal crisis

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