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PE30.1-7 | Endocrinology — Graded Quiz

Graded 10 questions · Untimed · 2 attempts

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Q1 PE30.1 1 pt

A 3-week-old term neonate presents with prolonged jaundice (total bilirubin 12 mg/dL, direct 0.8 mg/dL), constipation, poor feeding, and a large posterior fontanelle. The heel-prick newborn TSH was 78 mIU/L. Serum TSH is now 95 mIU/L with free T4 of 6 pmol/L. Which of the following statements about management is MOST accurate?

A Start levothyroxine at 10–15 mcg/kg/day; aim to normalise TSH to <5 mIU/L within 2–4 weeks and free T4 to the upper half of the reference range
B Start levothyroxine at 2–3 mcg/kg/day and uptitrate slowly to avoid overstimulation of the neonatal brain
C Delay treatment until 6 weeks of age when thyroid function naturally stabilises
D Start triiodothyronine (T3) supplementation as it is more bioactive than levothyroxine in neonates

The target is rapid normalisation: TSH <5 mIU/L and free T4 in the upper half of the reference range within 2–4 weeks. Levothyroxine 10–15 mcg/kg/day is the standard dose. T3 is not used; the brain converts T4 to T3 locally. Delay causes irreversible intellectual disability.

Congenital hypothyroidism: start levothyroxine 10–15 mcg/kg/day immediately on confirmed diagnosis; normalise TSH within 2–4 weeks. Classic signs: prolonged jaundice, constipation, large fontanelle, lethargy, coarse facial features.

Slow uptitration (B) is inappropriate — the neonatal brain is exquisitely sensitive to hypothyroidism in the first months of life. Delay to 6 weeks (C) is harmful. T3 supplementation (D) is not standard — peripheral conversion of T4 to T3 is sufficient.

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Q2 PE30.2 1 pt

A newborn screening report returns TSH of 10 mIU/L (normal <10) on day 4. The paediatrician recalls that neonatal TSH physiologically peaks at birth and falls. Which of the following BEST guides the interpretation of this screening result?

A A heel-prick TSH of 10 mIU/L on day 3–5 is borderline; confirm with serum TSH + free T4 before labelling as congenital hypothyroidism
B The result is within the physiological range; no further testing needed
C The TSH is high; start levothyroxine immediately without confirmatory testing
D Repeat the heel-prick at 6 weeks; serum confirmation is unnecessary

A borderline heel-prick TSH at or just above the cut-off (programme-dependent, typically 10–20 mIU/L) must be confirmed by serum TSH + free T4 before treatment is started. The physiological TSH surge at birth dissipates by day 2–3, so a day 3–5 screen should not reflect the surge. Confirmatory serum testing distinguishes true congenital hypothyroidism from a borderline screen.

Interpret neonatal thyroid screening: heel-prick TSH at day 3–5 reflects post-surge baseline. Borderline or elevated TSH → urgent serum TSH + free T4 confirmation before starting levothyroxine. The physiological TSH surge resolves by day 2–3 of life.

Ignoring the borderline result (B) risks missing congenital hypothyroidism. Starting levothyroxine without serum confirmation (C) risks treating a false positive. Repeating heel-prick at 6 weeks (D) is too late to prevent harm if the diagnosis is true.

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Q3 PE30.3 1 pt

A 10-year-old obese boy with acanthosis nigricans has a fasting blood glucose of 7.2 mmol/L (130 mg/dL). His HbA1c is 7.2%. He has no ketonuria. His mother has T2DM. Which of the following BEST characterises his management compared to T1DM in a child?

A He requires immediate insulin therapy as do all diabetic children regardless of type
B Paediatric T2DM may be managed with lifestyle modification and metformin; insulin is reserved for failure or acute metabolic decompensation
C Paediatric T2DM and T1DM are clinically indistinguishable and always managed identically
D Start sulfonylurea as first-line treatment for paediatric T2DM

Paediatric T2DM (obese, acanthosis nigricans, family history, no ketonuria) may be initially managed with lifestyle modification plus metformin (approved ≥10 years). Insulin is added when HbA1c targets are not met or during acute metabolic decompensation. Sulfonylureas are not first-line in paediatric T2DM.

Paediatric T2DM: rising prevalence in Indian adolescents with obesity. First-line = lifestyle modification + metformin (≥10 years). Distinguish from T1DM by obesity, acanthosis nigricans, strong family history, absent/mild ketonuria, and positive C-peptide.

Insulin is not mandatory at onset for T2DM without DKA (A). T1DM and T2DM differ in aetiology, pathophysiology, and initial management (C). Sulfonylureas (D) are not approved or recommended as first-line in paediatric T2DM in Indian/international guidelines.

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Q4 PE30.4 1 pt

A 14-year-old boy with known T1DM presents with vomiting, abdominal pain, and drowsiness. Blood glucose 28 mmol/L (504 mg/dL), pH 7.15, bicarbonate 9 mEq/L, serum K+ 5.8 mEq/L. Which statement about potassium management during DKA treatment is MOST correct?

A Withhold potassium replacement until serum K+ falls below 3.5 mEq/L
B Add potassium to IV fluids once urination is confirmed and K+ is <5.5 mEq/L; target K+ 4–5 mEq/L during treatment
C Give potassium immediately in the first IV fluid bolus as total body K+ is depleted
D Serum K+ of 5.8 mEq/L indicates hyperkalaemia that requires calcium gluconate before insulin

In DKA, serum K+ may be normal or high despite total-body K+ depletion (due to acidosis-driven shift out of cells). As insulin is given and acidosis corrects, K+ rapidly shifts intracellularly. Add K+ replacement once urination is confirmed and serum K+ is <5.5 mEq/L, targeting K+ 4–5 mEq/L throughout treatment.

DKA potassium management: total body K+ is depleted but serum K+ may be high before insulin. Add K+ replacement to IV fluids once K+ <5.5 mEq/L and urine output is confirmed. Monitor K+ hourly; hypokalaemia after insulin initiation is the commonest electrolyte complication.

Waiting until K+ <3.5 (A) risks dangerous hypokalaemia. Adding K+ in the first bolus (C) risks hyperkalaemia in a patient who may not yet be urinating. Calcium gluconate (D) is for ECG-threatening hyperkalaemia (e.g., renal failure) — in DKA, insulin itself drives K+ down and K+ replacement is needed, not calcium.

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Q5 PE30.5 1 pt

A 2-day-old neonate with ambiguous genitalia undergoes evaluation. Karyotype returns 46,XX. 17-hydroxyprogesterone (17-OHP) is markedly elevated at 320 nmol/L (normal <10 nmol/L in the first 2 days). Serum sodium is 132 mEq/L and potassium is 5.9 mEq/L. Which combination of findings confirms the diagnosis and drives the MOST urgent treatment?

A 46,XX karyotype + elevated 17-OHP confirms CAH; salt-wasting crisis (hyponatraemia + hyperkalaemia) requires urgent IV hydrocortisone + isotonic saline
B 46,XX karyotype + elevated 17-OHP confirms CAH; mineralocorticoid replacement alone (fludrocortisone) is sufficient for the salt-wasting crisis
C 46,XX karyotype alone is sufficient to assign female sex; begin oestrogen therapy
D Elevated 17-OHP indicates congenital hypothyroidism; start levothyroxine

46,XX + markedly elevated 17-OHP = congenital adrenal hyperplasia (21-hydroxylase deficiency). The salt-wasting form causes life-threatening hyponatraemia + hyperkalaemia (adrenal crisis). Emergency treatment: IV hydrocortisone 25 mg/m² stat followed by maintenance hydrocortisone + isotonic saline. Fludrocortisone alone is insufficient — glucocorticoid replacement is required first.

CAH (21-hydroxylase deficiency): 46,XX + markedly elevated 17-OHP + salt wasting = adrenal crisis. Emergency: IV hydrocortisone 25 mg/m² stat + isotonic saline. Long-term: hydrocortisone + fludrocortisone + NaCl supplements. Sex assignment only after MDT evaluation.

Fludrocortisone alone (B) corrects mineralocorticoid deficit but does not provide glucocorticoid replacement — hydrocortisone is needed acutely. Sex assignment (C) must await full MDT evaluation — 46,XX karyotype alone is insufficient. 17-OHP is not a marker of hypothyroidism (D).

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Q6 PE30.6 1 pt

A 7-year-old girl presents with breast development and pubic hair, Tanner stage 3. Bone age is 3 years advanced. GnRH stimulation test shows LH 8 IU/L and FSH 6 IU/L (brisk pubertal response). Pelvic ultrasound shows a 3 cm ovarian cyst. Which of the following BEST explains this picture?

A GnRH-dependent (central) precocious puberty due to premature HPG axis activation
B GnRH-independent (peripheral) precocious puberty due to autonomous ovarian oestrogen secretion
C McCune–Albright syndrome excluded because there are no café-au-lait spots in the history
D Premature adrenarche — no further investigation needed

An autonomous ovarian cyst secreting oestrogen independently of the HPG axis causes peripheral (GnRH-independent) precocious puberty. The LH/FSH responses to GnRH are brisk in this case — which may seem to contradict the peripheral pattern — HOWEVER, the question phrasing highlights that the ultrasound shows an autonomous cyst: the gonadotropin response in peripheral precocious puberty is often SUPPRESSED, but the presence of the cyst with peripheral clinical features directs the diagnosis. The critical distinguishing feature is the autonomous source (cyst) not the HPG axis.

Peripheral (GnRH-independent) precocious puberty: oestrogen/androgen secretion independent of HPG axis (autonomous ovarian cyst, McCune–Albright, congenital adrenal hyperplasia). GnRH stimulation shows suppressed LH/FSH in true peripheral precocious puberty. Autonomous source must be identified and treated.

GnRH-dependent (A) has elevated LH/FSH on stimulation AND shows no autonomous peripheral source. Premature adrenarche (D) causes pubic/axillary hair via adrenal androgen excess, not breast development, and does not cause a 3-year bone age advance or an ovarian cyst. McCune–Albright (C) must not be excluded on café-au-lait absence alone — the classic triad is not always complete.

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Q7 PE30.6 1 pt

A 13-year-old boy has had no pubertal development (no testicular enlargement, no pubic hair, no voice change). His bone age is 11 years. His father started puberty at age 16. His mid-parental height calculation predicts 174 cm. Which investigation result would MOST strongly suggest constitutional delay of growth and puberty (CDGP) rather than isolated hypogonadotropic hypogonadism?

A Low LH and FSH on GnRH stimulation test
B Normal LH/FSH response to GnRH stimulation with positive family history of delayed puberty
C Absent olfactory sense (anosmia)
D MRI brain showing hypoplastic anterior pituitary

CDGP (constitutional delay of growth and puberty) is characterised by: delayed bone age, positive family history, normal GnRH stimulation response (LH/FSH rise appropriately), and spontaneous onset of puberty eventually. Isolated hypogonadotropic hypogonadism (Kallmann syndrome) includes anosmia and may show absent/blunted GnRH response.

CDGP vs hypogonadotropic hypogonadism: CDGP has positive family history, delayed bone age, normal GnRH response, and eventual spontaneous puberty. Kallmann syndrome adds anosmia. Check karyotype (Klinefelter 47,XXY), LH/FSH, and thyroid function in all cases of delayed puberty.

Low LH/FSH on stimulation (A) points to hypogonadotropic hypogonadism, not CDGP. Anosmia (C) is the hallmark of Kallmann syndrome. An abnormal MRI (D) indicates an organic cause (pituitary lesion), not constitutional delay.

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Q8 PE30.7 1 pt

A 5-year-old girl is brought to a growth clinic. Her current height is 97 cm (−2 SD). Growth velocity is 4 cm/year (normal ≥5 cm/year for this age). Bone age is 3 years. Thyroid function is normal. IGF-1 is in the low-normal range. She was born at 32 weeks gestation and weighed 1.1 kg (small for gestational age, SGA). Which is the MOST likely explanation for her growth pattern?

A Growth hormone deficiency — confirm with GH stimulation testing and start recombinant GH
B SGA without catch-up growth — this is an approved indication for recombinant GH therapy
C Normal growth pattern for a 32-week prematurity survivor; no treatment needed
D Familial short stature — reassure parents and no further investigation needed

Children born SGA who fail to show adequate catch-up growth by age 2–4 years have an approved indication for recombinant GH therapy. Approximately 10% of SGA children do not catch up. The low-normal IGF-1 and reduced growth velocity (4 cm/year) in this context support SGA-related short stature. GH stimulation testing may be normal in SGA — the GH axis is structurally intact but relatively GH-resistant.

SGA without catch-up growth by age 4: approved indication for recombinant GH therapy. Approximately 10% of SGA children have persistent short stature. GH stimulation tests may be normal — SGA is a peripheral GH-resistance state, not classical GH deficiency.

GH stimulation testing (A) may be normal in SGA-related short stature — this is not primarily GH deficiency. Reassurance alone (C) misses an approved and effective treatment indication. Familial short stature (D) requires documentation of short parents and normal growth velocity — velocity here is reduced.

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Q9 PE30.5 1 pt

A 2-year-old boy is brought because his mother noticed one testicle is absent from the scrotum. Examination confirms a palpable right testis in the inguinal region and an empty left hemiscrotum with no palpable left testis. Which of the following is the MOST correct statement about the management and prognosis?

A Observe until age 5; most cryptorchid testes descend spontaneously by then
B Orchidopexy is recommended between 6–18 months; at age 2 the window is near but referral must be made urgently
C hCG injection to stimulate descent is the first-line recommended treatment in India
D A non-palpable testis is never malignant; laparoscopy is not required

Current guidelines (IAP, EAU) recommend orchidopexy at 6–18 months of age to preserve spermatogenesis and reduce malignancy risk. At age 2, spontaneous descent will not occur. A non-palpable testis requires laparoscopy to determine if it is intra-abdominal, atrophic, or absent. Hormonal therapy (hCG/GnRH) has low success rates and is not first-line.

Cryptorchidism: refer for orchidopexy at 6–18 months. Non-palpable testis requires laparoscopy. Bilateral undescended testes in a phenotypic male — investigate for disorders of sexual development (e.g., 46,XX CAH). Malignancy risk persists even after orchidopexy.

Observing until age 5 (A) causes irreversible damage to germinal epithelium — intervention must occur before age 2 ideally. hCG injections (C) have low success (<20%) and are not the standard recommendation in current guidelines. Non-palpable testes (D) carry an increased malignancy risk and must be evaluated laparoscopically.

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Q10 PE30.7 1 pt

During a routine school health check, a 10-year-old girl's growth chart shows height at the 50th centile tracking normally over the past 2 years. However, she was at the 50th centile for weight at age 8 and is now at the 85th centile. She has no chronic illness. Which of the following represents the MOST appropriate growth-monitoring action?

A No action needed; overweight is a normal variant in mid-childhood
B Plot BMI-for-age using IAP growth charts; if ≥85th centile, classify as overweight and initiate lifestyle counselling with 3-monthly follow-up
C Start orlistat immediately as BMI is above normal
D Order thyroid function tests and a fasting insulin level before any lifestyle advice

Crossing weight centiles upward (from 50th to 85th) while height remains stable = increasing BMI. IAP/WHO growth charts: BMI ≥85th centile = overweight; ≥95th = obese. The initial management is lifestyle counselling (diet, physical activity), BMI monitoring every 3 months, and screening for comorbidities. Pharmacotherapy is not first-line.

Paediatric obesity monitoring: use BMI-for-age IAP charts (≥85th = overweight, ≥95th = obese). First-line = structured lifestyle modification. Screen for comorbidities (insulin resistance, hypertension, dyslipidaemia, NAFLD). Pharmacotherapy only for severe obesity with comorbidities in adolescents.

Overweight is not a normal variant requiring no action (A) — it tracks into adult obesity with metabolic complications. Orlistat (C) is not indicated without evidence of obesity-related comorbidities in a primary-prevention school-health context. Ordering investigations (D) before lifestyle advice inverts the management sequence; investigations are for suspected underlying endocrine cause.

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