Hypercalcemia
Hypercalcemia is an elevated serum calcium level above the normal range, most commonly caused by primary hyperparathyroidism or malignancy, potentially leading to renal, gastrointestinal, neuromuscular, and cardiac dysfunction.
Hypercalcemia
Hypercalcemia literally means "hyper" (excessive) + "calc" (calcium) + "emia" (in the blood). It is defined as an elevated serum corrected calcium > 2.55 mmol/L (or ionized calcium above the upper limit of normal) [1][2].
Before interpreting any calcium result, you must correct for albumin, because ~40% of circulating calcium is protein-bound (mainly albumin). If albumin is low (e.g. in cirrhosis, nephrotic syndrome, malnutrition), total calcium will be falsely low even though ionized (biologically active) calcium is normal. Conversely, dehydration with haemoconcentration can raise total calcium artefactually.
Corrected Ca²⁺ (mmol/L) = Total Ca + [0.02 × (40 − albumin in g/L)] [1][2][3]
Why do we correct? 50% of plasma calcium is ionized (the physiologically active fraction), 40% is albumin-bound (inactive), and 10% is anion-bound (citrate, phosphate). Only the ionized fraction matters physiologically. When albumin drops, total calcium drops but ionized calcium stays the same — the patient is normocalcaemic. The correction formula estimates what total calcium would be if albumin were normal (40 g/L).
2. Epidemiology and Risk Factors
- Hypercalcemia is common: prevalence in the general population is approximately 1–3%.
- The two most common causes account for ~90% of all hypercalcemia: primary hyperparathyroidism (PHPT) and malignancy [2][4].
- Outpatient (ambulatory) setting: PHPT is the #1 cause (often an incidental finding on routine bloods — "comes with their insurance packages" [4]).
- Inpatient (hospital) setting: Malignancy-associated hypercalcemia (MAH) is the #1 cause.
- PHPT: Incidence 1–2 per 1000; peaks in 6th–7th decade; female preponderance (F:M ≈ 2–3:1), particularly postmenopausal women [4].
- Malignancy-associated hypercalcemia occurs in 10–30% of all cancer patients at some point during disease, and is a poor prognostic sign (median survival ~30 days if untreated).
| Risk Factor | Mechanism |
|---|---|
| Postmenopausal female | Oestrogen withdrawal → ↑ bone resorption; also ↑ incidence of parathyroid adenoma |
| Malignancy (lung SCC, breast, renal, myeloma, lymphoma) | PTHrP secretion, osteolytic metastases, 1,25(OH)₂D production (lymphoma) |
| Lithium use | Shifts the calcium-PTH set point rightward → PTH secreted at higher calcium levels [5] |
| Thiazide diuretics | ↑ Renal calcium reabsorption at the DCT (unlike loop diuretics which are calciuric) [6] |
| Vitamin D supplementation / granulomatous disease | Excessive 1,25(OH)₂D |
| Immobilization | ↑ Osteoclastic bone resorption |
| Familial (MEN syndromes, FHH) | Genetic predisposition |
| Chronic kidney disease (tertiary hyperparathyroidism) | Autonomous PTH secretion after prolonged secondary stimulation |
3. Anatomy and Physiology: Calcium Homeostasis
3.2 The Three Hormones of Calcium Homeostasis
- Secreted by chief cells of the parathyroid glands [7].
- Half-life: ~4 minutes (very short — allows rapid minute-to-minute regulation) [7].
- Actions (all raise serum calcium):
- Bone: Stimulates osteoclasts (indirectly via osteoblast RANKL signalling) → releases calcium and phosphate from bone.
- Kidney:
- ↑ Ca²⁺ reabsorption at the distal convoluted tubule.
- ↓ phosphate reabsorption at the proximal tubule (phosphaturic) — this is crucial because if phosphate also rose with calcium, calcium-phosphate product would increase → ectopic calcification.
- Activates vitamin D by stimulating 1α-hydroxylase in the kidney (converts 25(OH)D → 1,25(OH)₂D).
- Gut (indirect): Via vitamin D activation → ↑ intestinal calcium and phosphate absorption.
PTH responds more to phosphate level than calcium levels — this is why secondary hyperparathyroidism is the mechanism of hypocalcemia in renal disease (phosphate retention → stimulates PTH) [3].
Mechanism of vitamin D production requires hydroxylation in both liver and kidney [1]:
| Site | Enzyme/Mediator | Reaction |
|---|---|---|
| Skin | UV light | 7-dehydrocholesterol → Previtamin D → Cholecalciferol (Vitamin D₃) |
| Liver | Vitamin D 25-hydroxylase | Cholecalciferol → Calcidiol (25-hydroxyvitamin D) |
| Kidney | 1α-hydroxylase | Calcidiol → Calcitriol (1,25-dihydroxyvitamin D) |
- 25(OH)D (calcidiol) is the storage form and best reflects vitamin D status.
- 1,25(OH)₂D (calcitriol) is the active form but has a short half-life and is tightly regulated.
- Actions: ↑ intestinal calcium and phosphate absorption; works with PTH on bone resorption; ↑ renal calcium reabsorption.
- Secreted by C cells (parafollicular cells) of the thyroid gland [7].
- Half-life: ~60 minutes [7].
- Antagonizes PTH action: inhibits osteoclast activity → ↓ bone resorption → ↓ serum calcium [7].
- Physiological role in humans is modest (thyroidectomy patients don't get hypercalcemia from calcitonin deficiency), but pharmacological doses are used therapeutically.
The calcium-sensing receptor (CaSR) on parathyroid chief cells is the key sensor. When ionized calcium is high, CaSR is activated → suppresses PTH release. This receptor is critical for understanding:
- Familial Hypocalciuric Hypercalcemia (FHH): Loss-of-function mutation of CaSR → parathyroid gland "thinks" calcium is lower than it actually is → continues secreting PTH despite mild hypercalcemia → benign condition requiring NO surgery.
- Calcimimetics (e.g. cinacalcet): Allosteric activators of CaSR → make the receptor more sensitive to calcium → ↓ PTH secretion. Used in secondary/tertiary hyperparathyroidism and parathyroid carcinoma.
4. Etiology
90% Rule
Hypercalcemia: most common (90%) is Malignancy + Primary Hyperparathyroidism [2]. So when you see incidental hypercalcemia, your two main differentials are PHPT and malignancy. Always exclude malignancy in any new presentation.
4.1 PTH-Mediated Hypercalcemia (PTH is HIGH or inappropriately normal)
- Most common cause of hypercalcemia overall (especially outpatient) [4].
- Causes of PHPT [4]:
- Solitary parathyroid adenoma (85%)
- Parathyroid hyperplasia (10–15%)
- Double adenomas (1–2%)
- Parathyroid carcinoma (~1%)
- Associated with MEN syndromes:
- MEN 1 (3Ps: Parathyroid, Pituitary, Pancreatic tumours) — most common component is PHPT (~95%).
- MEN 2A (Medullary thyroid cancer, Phaeochromocytoma, Parathyroid hyperplasia).
- Occurs after prolonged secondary hyperparathyroidism (usually in CKD) → parathyroid glands become autonomous and no longer respond to calcium feedback.
- PTH is very high, calcium is high, and phosphate may be high (unlike PHPT where phosphate is low).
- Lithium causes hyperparathyroidism / hypercalcemia [5].
- Mechanism: Lithium shifts the CaSR set point → PTH is secreted at higher calcium concentrations. Can also cause parathyroid hyperplasia with chronic use.
- Must exclude FHH for hypercalcemia → not due to parathyroid, so don't unnecessarily refer these patients to surgery [2].
- Autosomal dominant loss-of-function mutation of CaSR.
- Features: Mild hypercalcemia, low urinary calcium excretion (calcium:creatinine clearance ratio < 0.01), normal or mildly elevated PTH.
- Benign — requires no treatment. Important to differentiate from PHPT (which needs surgery).
- Diagnosis: 24-hour urine calcium and calcium:creatinine clearance ratio [2].
4.2 Non-PTH-Mediated Hypercalcemia (PTH is appropriately SUPPRESSED / low)
The most common cause in hospitalized patients. Four mechanisms:
| Mechanism | Tumour Type | Pathophysiology |
|---|---|---|
| Humoral hypercalcemia of malignancy (HHM) — PTHrP | Squamous cell carcinomas (lung, head/neck, oesophagus), renal cell carcinoma, breast, bladder | Tumour secretes PTHrP (parathyroid hormone-related peptide) which mimics PTH action on bone and kidney (~80% of MAH) |
| Osteolytic metastases | Breast cancer, multiple myeloma, lung cancer | Direct bone destruction by tumour → local release of calcium. In myeloma, myeloma cells secrete RANKL, MIP-1α, and other osteoclast-activating factors |
| Ectopic 1,25(OH)₂D production | Lymphoma (Hodgkin's and NHL) | Tumour macrophages express 1α-hydroxylase → excess calcitriol production |
| Ectopic PTH secretion | Rare (some ovarian, lung tumours) | Tumour produces true PTH (extremely rare) |
Multiple Myeloma and ALP
In myeloma, despite all the bony involvement, ALP will be normal. High ALP indicates active bone mineralization and formation, but myeloma causes purely lytic lesions with no massive compensatory increase in bone formation [8]. This is a classic exam trap — if you see lytic bone lesions + normal ALP, think myeloma. Metastatic bone disease (especially prostate, breast) typically has elevated ALP because of mixed lytic/blastic or blastic activity.
Paraneoplastic hypercalcemia (via PTHrP) is one of the most important paraneoplastic syndromes to know. Squamous cell carcinoma of the lung is a classic culprit [9][10].
- Sarcoidosis, tuberculosis (relevant in Hong Kong where TB prevalence is higher than Western countries), fungal infections, berylliosis.
- Mechanism: Activated macrophages within granulomas express 1α-hydroxylase → autonomous production of 1,25(OH)₂D → ↑ calcium absorption from gut and ↑ bone resorption.
- This is vitamin D–mediated and responds to glucocorticoids (which suppress macrophage 1α-hydroxylase activity).
| Drug | Mechanism |
|---|---|
| Thiazide diuretics | ↑ Calcium reabsorption at DCT (enhance Na⁺/Ca²⁺ exchange) [6]. NB: Don't answer loop diuretics as treatment for hypercalcemia since the calciuric effect is not that marked [6] |
| Vitamin D / Calcium supplements (over-supplementation) | Direct increase in calcium absorption |
| Vitamin A toxicity | Stimulates osteoclast activity |
| Milk-alkali syndrome (excessive antacids + milk) | ↑ Calcium intake + ↑ renal calcium reabsorption due to alkalosis |
- Thyrotoxicosis: Thyroid hormones stimulate osteoclast activity → ↑ bone turnover → mild hypercalcemia (usually < 3.0).
- Adrenal insufficiency (Addison's disease): Cortisol normally inhibits intestinal calcium absorption and promotes renal calcium excretion; in deficiency, calcium rises. Also haemoconcentration from volume depletion.
- Phaeochromocytoma: Can co-occur with PHPT in MEN 2A.
- Acromegaly: GH/IGF-1 stimulate renal 1α-hydroxylase.
- Prolonged bed rest (especially in Paget's disease, young patients with fractures) → osteoclastic resorption exceeds formation → calcium release from bone.
- Mechanism: Mechanical loading normally stimulates osteoblasts; in its absence, osteoclastic activity predominates.
In Hong Kong, key aetiologies to keep in mind:
- PHPT — most common cause overall, often incidental finding on health screening (very common in HK where annual check-ups are routine).
- Malignancy — lung cancer (high prevalence in HK due to smoking and environmental factors), hepatocellular carcinoma (HBV-related), nasopharyngeal carcinoma (endemic in Southern China), multiple myeloma.
- Granulomatous disease — TB is still prevalent in HK.
- Drug-related — thiazides (commonly prescribed for hypertension), lithium (psychiatric patients), calcium/vitamin D over-supplementation (osteoporosis treatment in ageing population).
5. Classification
Three stages of hypercalcemia severity [4]:
| Severity | Serum Calcium | Clinical Implication |
|---|---|---|
| Asymptomatic / Mildly Symptomatic | < 3.0 mmol/L | Most patients present at this stage (incidental finding) |
| Moderate | 3.0–3.5 mmol/L | Symptomatic; requires active management |
| Severe | > 3.5 mmol/L | Hypercalcemic crisis — medical emergency, risk of cardiac arrhythmias, coma, death |
| Category | PTH Level | Key Causes |
|---|---|---|
| PTH-mediated | High / inappropriately normal | PHPT, tertiary HPT, lithium, FHH |
| Non-PTH-mediated | Suppressed (low) | Malignancy (PTHrP, osteolytic), granulomatous disease, vitamin D excess, drugs, immobilization, thyrotoxicosis |
- Acute hypercalcemia → typically malignancy, usually severe, rapid onset.
- Chronic hypercalcemia → typically PHPT, often mild, long-standing.
The final common pathways leading to hypercalcemia are:
- ↑ Bone resorption (most common mechanism) — PTH, PTHrP, osteolytic metastases, immobilization, thyrotoxicosis.
- ↑ Intestinal calcium absorption — Vitamin D excess, granulomatous disease (ectopic 1,25(OH)₂D).
- ↓ Renal calcium excretion — Thiazides, FHH, dehydration (reduced GFR → less calcium filtered).
- ↑ Calcium intake — Milk-alkali syndrome, excessive supplementation (rarely sufficient alone without impaired excretion).
In most cases, a vicious cycle ensues:
- Hypercalcemia → polyuria (nephrogenic diabetes insipidus mechanism: calcium deposits in renal medulla and antagonizes ADH at the collecting duct) → dehydration.
- Dehydration → ↓ GFR → ↓ renal calcium excretion → worsening hypercalcemia.
- Worsening hypercalcemia → more confusion, nausea, vomiting → further dehydration.
This is why the lecture title is "Confused and dehydrated: hypercalcemia" [1][13] — confusion and dehydration are the hallmark presentation of significant hypercalcemia.
7. Clinical Features
This mnemonic covers the major organ systems affected. While originally described for primary hyperparathyroidism, it applies to hypercalcemia from any cause. These classical features are rare now because treatments are getting better and patients are not presenting as late [4].
7.1 Symptoms (with Pathophysiological Basis)
| Symptom | Pathophysiology |
|---|---|
| Bone pain | ↑ Osteoclast activity → bone resorption → subperiosteal erosions, microfractures |
| Fractures (pathological) | Weakened bone structure from excessive resorption (osteoporosis/osteopenia) |
| Joint pain | Calcification of cartilage → chondrocalcinosis / pseudogout (CPPD deposition) [4] |
| Symptom | Pathophysiology |
|---|---|
| Renal colic / kidney stones | Hypercalciuria → calcium oxalate/phosphate stone formation in renal collecting system |
| Nephrocalcinosis | Diffuse calcium deposition within renal parenchyma |
| Polyuria and polydipsia | Calcium interferes with ADH action at the collecting duct (acquired nephrogenic DI) + also activates CaSR in the thick ascending limb → inhibits Na-K-2Cl cotransporter (NKCC2) → impaired concentrating ability |
| Renal failure | Nephrocalcinosis → tubulointerstitial damage; also prerenal from dehydration |
| Symptom | Pathophysiology |
|---|---|
| Anorexia, nausea, vomiting | Calcium stimulates gastrin secretion → ↑ gastric acid; also direct effect on CTZ and GI smooth muscle |
| Constipation | Hypercalcemia → ↓ smooth muscle contractility in the GI tract (calcium stabilizes cell membranes → ↓ excitability, paradoxically reducing peristalsis despite intracellular calcium's role in contraction — the effect here is on the extracellular side of the membrane) |
| Epigastric pain / dyspepsia | ↑ Gastrin secretion → peptic ulcer disease |
| Pancreatitis (acute) | Calcium activates trypsinogen → trypsin within the pancreatic duct → autodigestion. Also, calcium deposits in the pancreatic duct |
| Ileus | Reduced GI motility from smooth muscle hypotonia |
| Thirst, dry mouth | Dehydration from polyuria and vomiting |
| Symptom | Pathophysiology |
|---|---|
| Fatigue / tiredness | Neuromuscular effects of hypercalcemia (↓ neuromuscular excitability) |
| Weakness (proximal myopathy) | Calcium stabilizes membranes → ↓ excitability of muscle fibres → weakness |
| Depressed mood | Central neurological effect of calcium on neurotransmitter release |
| Mental confusion and drowsiness | High calcium → ↓ neuronal excitability → altered consciousness |
| Psychosis | Severe hypercalcemia can cause frank psychotic symptoms |
| Coma (in severe cases) | Extreme membrane stabilization → diffuse neuronal depression |
"Hypercalcemia most alarming → confused, dehydrated, risk of cardiac arrhythmias" [8]
| Symptom | Pathophysiology |
|---|---|
| Hypertension | Calcium → vasoconstriction of vascular smooth muscle; also volume contraction from dehydration activates RAAS |
| Palpitations / arrhythmias | Shortened QT interval → risk of ventricular arrhythmias; also ↑ sensitivity to digoxin |
- Memory impairment (cognitive decline) [7]
- Band keratopathy (calcium deposition in the cornea — visible on slit-lamp examination)
| Sign | Pathophysiology / Significance |
|---|---|
| Dehydration (dry mucous membranes, reduced skin turgor, tachycardia, postural hypotension) | Polyuria + vomiting + poor oral intake → volume depletion |
| Confusion / altered mental state | CNS depression from hypercalcemia |
| Proximal muscle weakness | Membrane stabilization → ↓ neuromuscular excitability |
| Hyporeflexia | Same mechanism as weakness — ↓ neuronal excitability |
| Abdominal distension / reduced bowel sounds | Ileus from smooth muscle hypotonia |
| Short QT interval on ECG | ↑ Extracellular calcium → faster phase 2 repolarization (calcium accelerates the plateau phase of the cardiac action potential) → shortened ST segment → shortened QT |
| Band keratopathy | Metastatic calcification in cornea (chronic hypercalcemia) |
| Neck mass (if parathyroid adenoma is large enough — rare) | Direct palpation of adenoma |
| "Salt-and-pepper" degranulation of skull | Subperiosteal bone resorption on skull X-ray (severe hyperparathyroidism) [7] |
| Brown tumours (osteitis fibrosa cystica) | Collections of osteoclasts, fibrous tissue, and haemosiderin in bone (severe long-standing PHPT) |
ECG findings (contrast with hypocalcemia which causes prolonged QT):
- Shortened QT interval (most characteristic finding)
- Shortened ST segment (the ST segment may be virtually absent)
- Widened T wave
- In severe cases: Osborn (J) waves, bradycardia, heart block, and ultimately cardiac arrest
- ↑ Sensitivity to digitalis → risk of digoxin toxicity → avoid digoxin in hypercalcemia
Calcium and the QT Interval — Memory Aid
Think of calcium as a "membrane stabilizer" — it shortens the action potential plateau (phase 2). So:
- Hypercalcemia → short QT
- Hypocalcemia → long QT (more time for calcium to enter → prolonged plateau)
This is the opposite of potassium's effect on the QRS/T wave morphology, so keep them distinct.
It is important to also look for features of the cause:
| Aetiology | Clinical Clues |
|---|---|
| PHPT | Postmenopausal woman, renal stones, osteoporosis, family history (MEN) |
| Malignancy | Weight loss, lymphadenopathy, hepatomegaly, bone pain, smoking history, known cancer |
| Multiple myeloma | CRAB: Calcium elevation, Renal failure, Anaemia, Bone lesions (lytic) [8]; Bence Jones proteinuria, high globulin, rouleaux formation |
| Sarcoidosis | Bilateral hilar lymphadenopathy on CXR, erythema nodosum, uveitis, skin lesions |
| Thyrotoxicosis | Tremor, weight loss, tachycardia, exophthalmos, goitre |
| Drug history | Thiazides, lithium, vitamin D/calcium supplements, vitamin A |
| FHH | Family history of mild hypercalcemia, asymptomatic, no renal stones |
High Yield Summary
Definition: Corrected Ca²⁺ > 2.55 mmol/L. Always correct for albumin: Corrected Ca = Total Ca + 0.02 × (40 − albumin g/L). Correction fails when albumin < 20 or paraproteinaemia → measure ionized Ca directly.
90% rule: PHPT + Malignancy account for ~90% of all hypercalcemia.
PHPT: #1 cause overall; 85% solitary adenoma; peaks 6th–7th decade; F > M (postmenopausal).
Malignancy: #1 cause in inpatients; PTHrP (SCC lung), osteolytic (myeloma, breast), ectopic 1,25(OH)₂D (lymphoma). In myeloma, ALP is characteristically NORMAL despite lytic lesions.
FHH: Must exclude before referring for parathyroidectomy — use 24h urine Ca and Ca:Cr clearance ratio < 0.01.
Severity: Mild < 3.0; Moderate 3.0–3.5; Severe > 3.5 mmol/L.
Clinical features: "Bones, Stones, Abdominal Groans, Psychiatric Overtones" — now rare due to earlier detection.
ECG: Short QT (calcium shortens action potential plateau). Contrast with hypocalcemia → prolonged QT.
Vicious cycle: Hypercalcemia → polyuria → dehydration → ↓ GFR → ↓ Ca excretion → worse hypercalcemia.
Key drugs: Thiazides (↑ Ca reabsorption, unlike loops). Lithium (shifts CaSR set point). Don't use loop diuretics as primary treatment for hypercalcemia — effect is not that marked.
Calcium homeostasis: PTH (4 min half-life, chief cells) vs Calcitonin (60 min, C cells). PTH raises Ca; calcitonin lowers it. Vitamin D needs liver (25-hydroxylase) and kidney (1α-hydroxylase) for activation.
Active Recall - Hypercalcemia (Definition to Clinical Features)
[1] Lecture slides: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Hypercalcemia section [2] Senior notes: Chemical Pathology Data interpretation.pdf [3] Senior notes: Endocrine Interactive Tutorial.pdf [4] Senior notes: Block A - Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [5] Senior notes: Block A - Drugs and the Kidney.pdf — Lithium section [6] Senior notes: Block A - Clinical Pharmacology of anti-HT and anti-HF medications.pdf — Thiazide diuretics [7] Senior notes: Maksim Surgery Notes.pdf — Parathyroid section [8] Senior notes: Block A - An old man with bone pain and anaemia: multiple myeloma; monoclonal gammopathy.pdf [9] Lecture slides: Clinical manifestation of lung cancer (1).pdf [10] Lecture slides: Paraneoplastic Syndrome_rev1 (1).pdf [11] Senior notes: Block A - Upper abdominal pain: peptic ulcer; pancreatitis and gallstone.pdf [12] Senior notes: Ryan Ho Rheumatology.pdf — CPPD section [13] Lecture slides: GC 039. Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf
Differential Diagnosis of Hypercalcemia
When you find a corrected calcium > 2.55 mmol/L, the very first question you need to answer is: "Is the PTH appropriately suppressed, or is it elevated/inappropriately normal?" This single branch point divides the entire differential into two clean categories and dictates every subsequent investigation.
Hypercalcemia, most common (90%) is Malignancy + Primary hyperparathyroidism [2]. So when you encounter hypercalcemia, these two diagnoses must sit at the top of your differential list at all times.
The logic is simple from first principles:
- Calcium is high → the parathyroid gland should sense this via the calcium-sensing receptor (CaSR) → PTH should be suppressed.
- If PTH is high or inappropriately normal despite hypercalcemia, something is wrong with the parathyroid axis itself (autonomous PTH secretion, abnormal CaSR set point, or drug interference).
- If PTH is appropriately suppressed (low), the calcium is coming from somewhere else — the cancer is making PTHrP, bone is being destroyed directly, vitamin D is in excess, or there is excess intake.
3. Detailed Differential Diagnosis Table
| Diagnosis | Key Features | Distinguishing Investigations | Pathophysiology |
|---|---|---|---|
| Primary Hyperparathyroidism (PHPT) | Most common cause of hypercalcemia overall; peaks 6th–7th decade; F > M; often asymptomatic/incidental [4]; bones/stones/abdominal groans/psychiatric overtones | ↑ PTH, ↑ Ca, ↓ PO₄, ↑ urinary Ca (Ca:Cr clearance ratio > 0.02); ALP may be normal or elevated (elevated if significant osteitis fibrosa cystica); imaging: sestamibi scan, neck US | Solitary adenoma (85%), hyperplasia (10–15%), double adenoma (1–2%), carcinoma (~1%) [4]; autonomous PTH secretion → ↑ bone resorption, ↑ renal Ca reabsorption, ↑ 1α-hydroxylase → ↑ gut absorption |
| Tertiary Hyperparathyroidism | History of CKD (usually on dialysis); very high PTH; calcium and phosphate both often high | ↑↑ PTH (much higher than PHPT), ↑ Ca, ↑ PO₄ (unlike PHPT where PO₄ is low); renal osteodystrophy on imaging | Prolonged secondary hyperparathyroidism → parathyroid gland hyperplasia becomes autonomous and no longer responds to calcium/calcitriol feedback [14] |
| Lithium-induced | Psychiatric history; on lithium for bipolar disorder | ↑ PTH (or inappropriately normal), ↑ Ca, often normal PO₄; resolves on cessation (sometimes) | Lithium shifts the CaSR set point rightward → PTH secreted at higher Ca concentrations; can also cause parathyroid hyperplasia [5] |
| Familial Hypocalciuric Hypercalcemia (FHH) | Family history of mild asymptomatic hypercalcemia; no renal stones; benign lifelong condition | Ca:Cr clearance ratio < 0.01; 24-hour urine calcium is LOW (< 100 mg/day); PTH normal or mildly elevated; genetic testing for CaSR mutation | AD loss-of-function mutation of CaSR → parathyroid "thinks" calcium is low → PTH not appropriately suppressed; kidneys also reabsorb more calcium (CaSR also on renal tubules) |
PHPT vs FHH — The Critical Distinction
Remember to exclude FHH for hypercalcemia → not due to parathyroid, so don't unnecessarily refer these patients to surgery [2]. Both have elevated/normal PTH with hypercalcemia. The differentiator is the 24-hour urine calcium and calcium:creatinine clearance ratio:
- PHPT: High urinary calcium (ratio > 0.02) — the kidneys are filtering excess calcium
- FHH: Low urinary calcium (ratio < 0.01) — the kidneys avidly reabsorb calcium due to CaSR defect
FHH is benign and requires no intervention. Sending a patient with FHH for parathyroidectomy is both unnecessary and unlikely to cure the hypercalcemia (because the problem is systemic CaSR dysfunction, not the parathyroid glands per se). Have to do 24-hour urine, exclude FHH [2].
Phosphate is a key discriminator: in PHPT, phosphate should be LOW (PTH causes renal phosphate wasting). If phosphate is normal in a patient you suspect has PHPT, you must question the diagnosis and exclude FHH [2].
| Diagnosis | Key Features | Distinguishing Investigations | Pathophysiology |
|---|---|---|---|
| Humoral Hypercalcemia of Malignancy (HHM) | Weight loss, constitutional symptoms; Lung SCC, renal cell CA, breast, bladder, ovarian [1] | ↑ PTHrP; ↓ PTH; ↓ PO₄ (PTHrP mimics PTH phosphaturic effect); hypercalcemia often severe (> 3.5) | Tumour secretes PTHrP → acts on same PTH/PTHrP receptor on bone and kidney → ↑ bone resorption, ↑ renal Ca reabsorption. Accounts for ~80% of malignant hypercalcemia |
| Osteolytic Metastases | Known primary malignancy (breast, lung); Multiple Myeloma (CRAB: Calcium, Renal failure, Anaemia, Bone lesions) [8] | Imaging: lytic lesions on skeletal survey/CT; myeloma: normal ALP [8], ↑ globulin, paraprotein on SPEP/UPEP, Bence Jones protein; breast mets: ↑ ALP (mixed lytic/blastic) | Direct bone destruction releases calcium locally; myeloma cells produce RANKL, MIP-1α, DKK1 → osteoclast activation + osteoblast suppression |
| Ectopic 1,25(OH)₂D production | Lymphoma (Hodgkin's/NHL); granulomatous diseases (see below) | ↑ 1,25(OH)₂D; ↓ PTH; ↓ PTHrP; ↑ urinary Ca | Tumour/granuloma macrophages express 1α-hydroxylase autonomously (not regulated by PTH or Ca) → excess calcitriol → ↑ gut Ca absorption |
| Ectopic PTH secretion | Extremely rare; lung, ovarian, pancreatic, thyroid papillary, neuroectodermal, rhabdomyosarcoma [1] | ↑ intact PTH from tumour (confirmed by tumour tissue PTH immunohistochemistry); PTHrP negative | Tumour produces biologically active PTH — distinguished from PTHrP by specific assays |
| Granulomatous Disease (Sarcoidosis, TB, fungal) | Sarcoidosis: bilateral hilar LAD, erythema nodosum, uveitis; TB: endemic in Hong Kong | ↑ 1,25(OH)₂D; ↑ ACE level (sarcoidosis); ↓ PTH; may have ↑ urinary Ca | Macrophages in granulomas express 1α-hydroxylase → autonomous calcitriol production (unregulated by negative feedback). Responds to glucocorticoids which suppress macrophage 1α-hydroxylase |
| Thyrotoxicosis | Tremor, weight loss, tachycardia, heat intolerance, goitre; occurs in 15–20% of thyrotoxic patients [1] | Suppressed TSH, ↑ FT4/FT3; ↓ PTH; usually mild hypercalcemia (< 3.0) | Thyroid hormones directly stimulate osteoclast activity → ↑ bone turnover/resorption. Calcium usually only mildly elevated |
| Vitamin D Toxicity | History of excessive supplementation (> 50,000 IU/day) or calcitriol use | ↑ 25(OH)D (if cholecalciferol excess) or ↑ 1,25(OH)₂D (if calcitriol excess); ↓ PTH | Excess calcitriol → ↑↑ intestinal calcium absorption; ↑ bone resorption |
| Vitamin A Excess | History of supplement abuse, retinoid therapy (e.g. all-trans retinoic acid for APL) [1] | ↑ Serum vitamin A level; ↓ PTH | Hypervitaminosis A (> 50,000 IU/day) → ↑ IL-6 concentration → stimulates osteoclast-mediated bone resorption [1] |
| Thiazide Diuretics | Drug history; usually only mild hypercalcemia | Drug history; ↓ urinary Ca; ↓ PTH (or normal) | Thiazides increase calcium reabsorption at the DCT — enhance the basolateral Na⁺/Ca²⁺ exchanger by depleting intracellular sodium via NCC blockade. Different to loop diuretics which cause calciuresis [6] |
| Immobilization | Prolonged bed rest; young patients with fractures; patients with high bone turnover (Paget's, malignancy) | ↓ PTH; ↑ urinary Ca; ↑ bone resorption markers | Absence of mechanical loading → osteoclastic resorption predominates over formation → net calcium release from bone |
| Adrenal Insufficiency | Hypotension, hyperpigmentation (Addison's), hyponatraemia, hyperkalaemia | ↓ Morning cortisol; ↓ ACTH (secondary) or ↑ ACTH (primary); short Synacthen test | Cortisol normally suppresses intestinal Ca absorption and promotes renal Ca excretion; loss of cortisol → ↑ absorption + ↓ excretion. Also haemoconcentration from volume depletion |
| Milk-Alkali Syndrome | History of excessive antacid/calcium ingestion; triad of hypercalcemia + metabolic alkalosis + renal impairment | ↓ PTH; metabolic alkalosis on ABG; ↑ creatinine | Excess oral calcium intake + alkalosis → ↑ renal calcium reabsorption (alkalosis favours Ca binding to albumin in tubular fluid, reducing free Ca for excretion) |
Understanding the clinical context drastically narrows the differential:
| Setting | Most Likely Cause | Reasoning |
|---|---|---|
| Asymptomatic outpatient (incidental finding on health screening) | Primary hyperparathyroidism | "Since it comes with their insurance packages, incidental finding during the health check" [4]; mild, chronic, often < 3.0 mmol/L |
| Hospitalized / acutely unwell patient | Malignancy-associated hypercalcemia | Often severe (> 3.5), rapid onset, associated with weight loss and constitutional symptoms |
| CKD patient on dialysis | Tertiary hyperparathyroidism | Autonomous PTH after prolonged secondary HPT stimulation [14] |
| Psychiatric patient on lithium | Lithium-induced hyperparathyroidism | Lithium causes hyperparathyroidism / hypercalcemia [5] |
| Patient on thiazide diuretics for hypertension | Thiazide-related hypercalcemia | Hypercalcemia due to increased reabsorption [6]; often unmasks underlying mild PHPT |
| Young patient with lymphadenopathy, bilateral hilar LAD | Sarcoidosis or lymphoma | Ectopic 1,25(OH)₂D production |
| Post-thyroidectomy / parathyroidectomy | Hungry bone syndrome (actually causes hypocalcemia — important DDx exclusion) | Rapid bone uptake of calcium post-parathyroidectomy when chronically elevated PTH is suddenly removed |
5. Distinguishing Key Mimics and Pitfalls
Before launching into an extensive workup, always rule out laboratory error and artefact:
- Prolonged tourniquet application during phlebotomy → haemoconcentration → falsely elevated total calcium.
- Dehydration → haemoconcentration → elevated total calcium (but ionized calcium may be normal).
- Hyperalbuminaemia (rare, e.g. severe dehydration) → ↑ total calcium but ionized calcium is normal.
- In multiple myeloma / dysglobulinaemia: paraproteins can bind calcium unpredictably → total calcium unreliable → measure ionized calcium directly [1].
- EDTA contamination has to be excluded (EDTA chelates calcium → artefactually LOW calcium; relevant for the hypocalcemia DDx but important to know about lab interference in general) [2].
| Feature | Primary Hyperparathyroidism | Malignancy |
|---|---|---|
| Onset | Chronic, insidious | Acute, rapid |
| Severity | Usually mild (< 3.0) | Often moderate–severe (> 3.0, frequently > 3.5) |
| PTH | ↑ or inappropriately normal | ↓ (suppressed) |
| PTHrP | Negative | Often positive (HHM) |
| Phosphate | ↓ (PTH causes phosphaturia) | ↓ (if PTHrP-mediated) or normal/↑ (osteolytic) |
| ALP | Normal or mildly ↑ | Often ↑ (bone mets) or normal in myeloma [8] |
| 1,25(OH)₂D | ↑ (PTH activates 1α-hydroxylase) | Usually ↓ or normal (↑ only in lymphoma) |
| Chloride | Mild ↑ (PTH causes ↑ HCO₃⁻ excretion → hyperchloraemic acidosis) | Normal |
| Constitutional symptoms | Absent | Present (weight loss, fatigue, anorexia) |
| Urinary calcium | ↑ (need to r/o FHH if < 0.01) | ↑ |
| Duration | Often years | Weeks to months |
So incidental finding of hyperparathyroidism → have to exclude malignancy [2]. Even when PTH is elevated and you think you have PHPT, you should still screen for occult malignancy (age-appropriate cancer screening, basic bloods including SPEP, CXR) because: (a) PHPT and cancer can coexist, and (b) some cancers produce ectopic PTH (rare but possible).
| Feature | Multiple Myeloma | Carcinoma Bone Metastases |
|---|---|---|
| ALP | Normal (purely lytic, no osteoblastic response) [8] | Usually ↑ (osteoblastic/mixed response) |
| Bone scan (scintigraphy) | May be NEGATIVE (bone scan detects osteoblastic activity; myeloma has none) | Positive (hot spots) |
| Globulin | ↑ (paraprotein) | Normal |
| Best imaging | Skeletal survey (X-ray) or low-dose whole-body CT or PET-CT | Bone scan + CT/MRI |
Why is bone scan negative in myeloma?
Bone scan (Tc-99m MDP) works by detecting osteoblastic activity — the radiotracer is adsorbed onto bone surfaces where new bone is being formed [15]. In myeloma, the disease is purely lytic with no compensatory osteoblastic response, so the bone scan may be falsely negative despite extensive skeletal disease. This is why skeletal survey or PET-CT is preferred for myeloma staging, not bone scintigraphy.
Since hypercalcemia presents with non-specific symptoms (confusion, dehydration, constipation, bone pain), consider other metabolic causes of the same clinical picture:
| Symptom Complex | Differential Besides Hypercalcemia |
|---|---|
| Confusion + dehydration | Hypernatraemia, hyponatraemia, uraemia, hepatic encephalopathy, sepsis, drug intoxication, delirium workup (Ix: CBC, L/RFT, electrolytes including Ca/PO₄, urinalysis, blood glucose, CXR, ECG) [16] |
| Polyuria + polydipsia | Diabetes mellitus, diabetes insipidus (central or nephrogenic), primary polydipsia |
| Constipation | Hypothyroidism, hypokalaemia, CCB use, cord compression, bowel obstruction [17] |
| Bone pain in elderly | Osteoporotic fracture, metastatic bone disease, myeloma, Paget's disease, osteomalacia |
| Psychiatric symptoms + low mood | Thyroid disease, Cushing's/Addison's, parathyroid disease are important metabolic causes of mood disturbance that must be excluded [18] |
| Renal stones | Distal RTA (type 1 — hypercalciuria from acidosis causing ↑ Ca resorption from bone and ↓ tubular Ca/PO₄ reabsorption) [19]; hyperuricosuria (gout); cystinuria; hyperoxaluria |
RFT, Ca, and Glc are included in the NICE minimum investigations for dementia workup specifically to exclude hypercalcemia, Cushing's, or Addison's disease as reversible causes of cognitive decline [16][18].
| Consideration | Relevance |
|---|---|
| Tuberculosis | TB is still prevalent in HK; granulomatous TB can cause hypercalcemia via ectopic 1,25(OH)₂D production. Always consider in patients with CXR abnormalities + hypercalcemia |
| Nasopharyngeal carcinoma (NPC) | Endemic in Southern Chinese; can cause hypercalcemia via bone metastases |
| Hepatocellular carcinoma (HCC) | High prevalence due to HBV; can cause hypercalcemia (PTHrP secretion or bone mets) |
| Lung cancer | High smoking prevalence; Squamous cell carcinoma is the classic PTHrP-secreting tumour [9][10] |
| Routine health screening | Extremely common in HK; PHPT is frequently discovered as an incidental finding |
A systematic step-by-step approach when you confirm hypercalcemia:
- Confirm genuine hypercalcemia: Correct for albumin; if in doubt, measure ionized calcium.
- Check intact PTH: The single most important discriminating test.
- PTH high/normal → PHPT, FHH, lithium, tertiary HPT
- PTH low → malignancy, granulomatous disease, vitamin D excess, drugs, thyrotoxicosis, immobilization
- If PTH is high: Do 24-hour urine calcium and Ca:Cr clearance ratio to exclude FHH [2].
- If PTH is low: Check PTHrP (for HHM), 1,25(OH)₂D (for granulomatous/lymphoma), 25(OH)D (for vitamin D toxicity), SPEP/UPEP (for myeloma), TFTs (for thyrotoxicosis), and drug history (thiazides, vitamin D/A, lithium).
- Targeted imaging: Based on clinical suspicion — sestamibi scan/neck US (PHPT), CXR/CT (malignancy/sarcoidosis), skeletal survey (myeloma), bone scan (metastatic carcinoma but NOT myeloma).
Key Exam Discriminators at a Glance
| Test | PHPT | FHH | Malignancy (HHM) | Myeloma | Sarcoidosis |
|---|---|---|---|---|---|
| PTH | ↑ | Normal/↑ | ↓ | ↓ | ↓ |
| PO₄ | ↓ | Normal | ↓ | Normal/↑ | Normal |
| ALP | Normal/↑ | Normal | ↑ | Normal | Normal/↑ |
| 24h urine Ca | ↑ | ↓ | ↑ | ↑ | ↑ |
| Ca:Cr ratio | > 0.02 | < 0.01 | N/A | N/A | N/A |
| PTHrP | Negative | Negative | Positive | Negative | Negative |
| 1,25(OH)₂D | ↑ | Normal | Normal/↓ | Normal | ↑ |
| Globulin | Normal | Normal | Normal | ↑ | Normal |
High Yield Summary — Differential Diagnosis of Hypercalcemia
-
90% rule: PHPT + Malignancy = ~90% of all hypercalcemia. PHPT dominates outpatient, malignancy dominates inpatient.
-
PTH is the pivotal first test: High/normal PTH → PTH-mediated (PHPT, FHH, lithium, tertiary HPT). Low PTH → Non-PTH-mediated (malignancy, granulomatous, vitamin D, drugs, thyrotoxicosis, immobilization).
-
Always exclude FHH before parathyroidectomy referral — 24h urine calcium, Ca:Cr clearance ratio < 0.01 = FHH (benign, no surgery).
-
Phosphate is low in PHPT (PTH causes phosphaturia). If phosphate is normal, question the diagnosis.
-
ALP is normal in myeloma despite extensive lytic bone disease (no osteoblastic response). Bone scan may be falsely negative in myeloma.
-
Malignancy mechanisms: PTHrP (~80%, SCC lung), osteolytic mets (myeloma, breast), ectopic 1,25(OH)₂D (lymphoma), ectopic PTH (rare).
-
Granulomatous disease (sarcoidosis, TB): Ectopic 1α-hydroxylase in macrophages → ↑ 1,25(OH)₂D → responds to glucocorticoids. TB is highly relevant in Hong Kong.
-
Drug causes: Thiazides (↑ DCT Ca reabsorption), lithium (shifts CaSR set point), vitamin D/A excess.
-
Thiazides cause hypercalcemia (↑ reabsorption), loop diuretics cause hypocalcemia (calciuric). Don't confuse the two.
-
For delirium/dementia workup: Always check Ca as part of minimum investigations to exclude reversible metabolic causes.
Active Recall - Differential Diagnosis of Hypercalcemia
References
[1] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Hypercalcemia section [2] Senior notes: Chemical Pathology Data interpretation.pdf [4] Senior notes: Block A - Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [5] Senior notes: Block A - Drugs and the Kidney.pdf — Lithium section [6] Senior notes: Block A - Clinical Pharmacology of anti-HT and anti-HF medications.pdf — Thiazide diuretics [8] Senior notes: Block A - An old man with bone pain and anaemia: multiple myeloma; monoclonal gammopathy.pdf [9] Lecture slides: Clinical manifestation of lung cancer (1).pdf [10] Lecture slides: Paraneoplastic Syndrome_rev1 (1).pdf [14] Senior notes: Block A - Chronic Kidney Disease and its Complications.pdf [15] Senior notes: Ryan Ho Diagnostic Radiology.pdf — Bone scan section [16] Senior notes: Ryan Ho Psychiatry.pdf — Delirium workup [17] Senior notes: Maksim Surgery Notes.pdf — Constipation DDx [18] Senior notes: Ryan Ho Psychiatry.pdf — Approach to low mood / dementia Ix [19] Senior notes: Block A - Electrolyte and Acid-Base Disorders.pdf — Distal RTA
Diagnostic Criteria, Diagnostic Algorithm, and Investigations for Hypercalcemia
Before launching into any algorithmic workup, you must confirm the calcium is truly elevated. This is a non-negotiable first step.
"Cannot use serum calcium only, can be falsely low [or high] sometimes → 50% of serum calcium bound to albumin" [3].
Step 1: Correct for albumin
- Corrected Ca²⁺ (mmol/L) = Total Ca + [0.02 × (40 − albumin in g/L)] [1][3]
- Why? 40% of total calcium is albumin-bound. If albumin is low (e.g. nephrotic syndrome, liver failure, malnutrition), total calcium appears low — but the patient's ionized (physiologically active) calcium may be perfectly normal. Conversely, dehydration may concentrate albumin and falsely elevate total calcium.
Step 2: When correction is unreliable, measure ionized calcium directly
- Correction formula does not apply when albumin < 20 g/L [1]
- Presence of multiple myeloma or dysglobulinaemia → paraproteins bind calcium unpredictably → total albumin and serum calcium relationship falls apart at the extremes [2] → request ionized calcium
- Big IgM molecule can cause interference in the assays [2]
Step 3: Rule out artefact
- Prolonged tourniquet → haemoconcentration → spuriously elevated total calcium
- EDTA contamination (relevant for hypocalcemia but important to know as a cause of lab error) [2]
- Repeat the sample if in doubt
High-Yield GC Exam Point
The GC lecture learning objectives explicitly state: "Interpretation of biochemical results" [13]. Any exam question giving you a calcium level MUST be interpreted alongside albumin. Always calculate corrected calcium or state you would check ionized calcium. This is the single most common error students make — interpreting uncorrected calcium.
Once you confirm genuine hypercalcemia, classify severity — this determines whether you manage urgently or can investigate electively:
| Severity | Corrected Ca²⁺ | Clinical Significance | Associated Cause |
|---|---|---|---|
| Mild | 2.55–3.0 mmol/L | Often asymptomatic/incidental; can investigate outpatient | Associated with primary hyperparathyroidism [1] |
| Moderate | 3.0–3.5 mmol/L | Symptomatic; needs active treatment | Either PHPT or malignancy |
| Severe / Dangerous | > 3.5 mmol/L | Seizure, coma, death; hypercalcemic crisis — medical emergency | Associated with malignancy [1] |
"Hypercalcemia most alarming → confused, dehydrated, risk of cardiac arrhythmias" [8]
The approach to hypercalcemia follows the endocrine investigation principle:
"Sequence of investigations: (1) History and PE → (2) Baseline blood tests → (3) Screening biochemistry → (4) Confirmatory tests → (5) Imaging → (6) Invasive tests. General principle of less invasive before more invasive. Endocrine is unique in that you need biochemistry before imaging" [20].
This last point is critical — in endocrine, biochemistry comes BEFORE imaging. The reason is that modern imaging is so sensitive it picks up incidental lesions (incidentalomas) that may have nothing to do with the patient's condition. You need biochemical confirmation of the hormonal axis abnormality first, then image to localize.
3.1 Step-by-Step Algorithm
4. Investigation Modalities — Detailed Breakdown
These are the "baseline blood tests" and "screening biochemistry" you order for every patient:
| Investigation | What You're Looking For | Interpretation |
|---|---|---|
| Calcium, Phosphate, ALP [4][21] | The "calcium triad" | ↑ Ca, ↓ PO₄ = PTH-mediated (PHPT); ↑ Ca, normal/↑ PO₄ = non-PTH-mediated or tertiary HPT; Normal ALP in myeloma despite lytic lesions [8] |
| Intact PTH [4][21] | The single most discriminating test | High/inappropriate → PHPT, FHH, lithium, tertiary HPT; Low/suppressed → malignancy, vitamin D, granulomatous, drugs |
| Albumin | For calcium correction | Needed to calculate corrected calcium |
| Urea, Creatinine, eGFR [4] | Renal function | Hypercalcemia can CAUSE renal impairment (dehydration, nephrocalcinosis) AND renal failure can CAUSE hypercalcemia (tertiary HPT). GFR must be known before prescribing bisphosphonates |
| 25(OH) Vitamin D [4] | Vitamin D status | Deficiency is common even in PHPT [4]; excess suggests toxicity; helps guide replacement |
| CBC [21] | Anaemia, abnormal WBC | Anaemia → myeloma, malignancy; leukocytosis → haematological malignancy |
| LFT | Liver function, albumin | ALP component; albumin for correction |
| ECG | Cardiac effects of hypercalcemia | Short QT interval; check for arrhythmias; assess digoxin toxicity risk |
GC Lecture High-Yield: Evaluation Panel for Asymptomatic PHPT
The GC lecture explicitly lists the evaluation panel for asymptomatic primary hyperparathyroidism [4][13]:
- Calcium, Phosphate, ALP
- Urea, Creatinine, eGFR
- 25-OH Vitamin D → deficiency is common
- PTH by second or third-generation immunoassay
- 3-site DEXA for BMD (lumbar spine / hip / distal one-third radius)
- Vertebral spine assessment (X-ray or Vertebral Fracture Assessment by DXA)
4.2 Second-Line Investigations (Guided by PTH Result)
| Investigation | Rationale | Key Findings |
|---|---|---|
| 24-hour urine calcium | To differentiate PHPT from FHH | PHPT: urinary Ca > 10 mmol/24h (typically high); FHH: urinary Ca < 2.5 mmol/24h (low) |
| Calcium:Creatinine Clearance Ratio (CCCR) | Gold standard to distinguish PHPT vs FHH | CCCR = (Urine Ca × Serum Cr) / (Serum Ca × Urine Cr); > 0.02 favours PHPT; < 0.01 favours FHH [2]; Indeterminate 0.01–0.02 → consider genetic testing |
| Sestamibi scan (⁹⁹ᵐTc-sestamibi) | Localize parathyroid adenoma pre-operatively | Focal uptake in abnormal parathyroid gland with delayed washout. Sensitivity ~80–90% for single adenoma; less reliable for hyperplasia or double adenoma |
| Neck ultrasound | Complementary localization | Hypoechoic, well-defined, oval mass posterior to thyroid. Combined with sestamibi increases sensitivity to > 95% |
| 4D-CT parathyroid | When sestamibi + US are inconclusive | Provides perfusion characteristics of parathyroid lesions (contrast enhancement and washout patterns) |
| 3-site DEXA [4] | Assess bone mineral density | Lumbar spine, hip, and distal one-third radius — the distal radius is specifically included because cortical bone is preferentially lost in hyperparathyroidism (PTH preferentially resorbs cortical > trabecular bone) |
| Renal ultrasound | Screen for nephrolithiasis / nephrocalcinosis | Renal stones, medullary nephrocalcinosis |
| Vertebral fracture assessment [4] | Detect occult vertebral compression fractures | By DXA or lateral spine X-ray |
| Drug history review | Lithium | Lithium causes hyperparathyroidism / hypercalcemia [5] — must be identified as a cause before considering surgery |
| Genetic testing | If FHH suspected or young age/family history | CaSR gene mutation for FHH; MEN1/RET mutations if MEN suspected |
"If phosphate is normal in this patient, when it should be low if you are suspecting primary hyperparathyroidism → have to do 24-hour urine, exclude FHH" [2]. This is a critical clinical pearl — PHPT should cause low phosphate (PTH promotes renal phosphate wasting). Normal phosphate with high PTH is a red flag for FHH.
| Investigation | Rationale | Key Findings |
|---|---|---|
| PTHrP (Parathyroid Hormone-Related Peptide) | Detect humoral hypercalcemia of malignancy | Elevated → HHM (SCC lung, RCC, breast, bladder); helps distinguish from ectopic PTH (which has elevated intact PTH, not PTHrP) |
| 1,25(OH)₂D (Calcitriol) | Detect ectopic calcitriol production | Elevated → Lymphoma or granulomatous disease (sarcoidosis, TB); macrophage 1α-hydroxylase activity |
| 25(OH)D (Calcidiol) | Detect exogenous vitamin D toxicity | Markedly elevated (> 375 nmol/L) → vitamin D toxicity from supplementation |
| SPEP and UPEP | Screen for paraprotein (M protein) | Monoclonal band in γ-region → myeloma or lymphoproliferative disease. ~50% of light chain MM is negative on SPEP → must do UPEP [22] |
| Serum Free Light Chains (FLC) | More sensitive than UPEP for monoclonal FLC | Abnormal κ:λ ratio (normal 0.26–1.65) → plasma cell dyscrasia. Involved:uninvolved FLC ratio > 100 is a myeloma-defining event [8][22] |
| Immunofixation | Characterize type of M protein | Follows positive SPEP/UPEP → identifies heavy chain class (IgG, IgA, IgM) and light chain type (κ or λ) [22] |
| β₂-microglobulin | Myeloma staging (ISS) | Reflects tumour burden; < 3.5 = Stage I, ≥ 5.5 = Stage III [22] |
| TFTs (TSH, FT4) | Exclude thyrotoxicosis | Suppressed TSH, ↑ FT4 → thyrotoxicosis (causes mild hypercalcemia in 15–20% via ↑ bone turnover) |
| ACE level | Sarcoidosis screen | Elevated in ~60% of active sarcoidosis (produced by granuloma epithelioid cells) |
| CXR / CT Thorax | Screen for malignancy, sarcoidosis, TB | Lung mass (SCC), bilateral hilar lymphadenopathy (sarcoidosis), upper lobe cavitation (TB) |
| Drug history | Thiazides, vitamin D/A supplements, lithium | Thiazides: hypercalcemia due to increased reabsorption [6]; vitamin A > 50,000 IU/day causes ↑ bone resorption [1] |
| Investigation | When to Order | Key Findings |
|---|---|---|
| Skeletal survey (X-ray) | Suspected myeloma | Punched-out lytic lesions (60%), diffuse osteopenia, pathological fractures (20%). Includes PA chest, AP/lateral C/T/L-spine, AP/lateral femur/humerus, AP/lateral skull, AP pelvis [22] |
| Whole-body low-dose CT or PET-CT | Myeloma (now preferred over skeletal survey) | Higher sensitivity than skeletal survey; PET-CT can detect active disease and monitor treatment response [22] |
| Bone scan (⁹⁹ᵐTc-MDP) | Suspected carcinoma bone metastases (NOT myeloma) | Detects osteoblastic activity — hot spots at metastatic sites. May be falsely NEGATIVE in myeloma (no osteoblastic response) [15]. Superscan pattern (diffuse intense uptake + absent renal uptake) seen in widespread metastases or metabolic bone disease [15] |
| Bone marrow biopsy | Suspected myeloma or haematological malignancy | Clonal BM plasma cells ≥ 10% needed for MM diagnosis [8]; immunophenotyping and cytogenetics for prognostic stratification |
| CT thorax/abdomen/pelvis | Localize occult malignancy when PTHrP is elevated | Search for primary tumour |
| Intraoperative PTH assay | During parathyroidectomy | PTH should drop by ≥ 50% from pre-operative baseline within 10 minutes of adenoma removal — confirms successful excision (Miami criterion) |
This table is the most high-yield for data interpretation exams. Master it.
| Parameter | PHPT | FHH | Malignancy (HHM/PTHrP) | Myeloma | Sarcoidosis / Granulomatous | Vitamin D Toxicity | Thyrotoxicosis |
|---|---|---|---|---|---|---|---|
| Ca²⁺ | ↑ (mild) | ↑ (mild) | ↑↑ (often severe) | ↑ | ↑ | ↑ | ↑ (mild) |
| PTH | ↑ or inappropriately normal | Normal or mildly ↑ | ↓ (suppressed) | ↓ | ↓ | ↓ | ↓ |
| PO₄ | ↓ (PTH causes phosphaturia) | Normal | ↓ (PTHrP mimics PTH) | Normal or ↑ | Normal | Normal or ↑ | Normal |
| ALP | Normal or ↑ | Normal | Often ↑ (bone mets) | Normal [8] | Normal or ↑ | Normal | ↑ (bone turnover) |
| 25(OH)D | Variable (often low) | Normal | Normal | Normal | Normal | ↑↑↑ | Normal |
| 1,25(OH)₂D | ↑ (PTH activates 1α-hydroxylase) | Normal | Normal or ↓ | Normal | ↑↑ | ↑ or normal | Normal |
| PTHrP | Negative | Negative | Positive | Negative | Negative | Negative | Negative |
| 24h urine Ca | ↑ | ↓ | ↑ | ↑ | ↑ | ↑ | ↑ |
| CCCR | > 0.02 | < 0.01 | N/A | N/A | N/A | N/A | N/A |
| Chloride | ↑ (mild hyperchloraemic) | Normal | Normal | Normal | Normal | Normal | Normal |
| Globulin | Normal | Normal | Normal | ↑↑ | Normal/↑ | Normal | Normal |
Data Interpretation Exam Approach
When presented with a calcium data interpretation question:
- Calculate corrected calcium (always — even if not asked).
- Look at PTH — this splits the differential immediately.
- Look at phosphate — low in PTH-mediated (except FHH); normal/high in non-PTH (except PTHrP-mediated).
- Look at ALP — normal in myeloma; elevated in bone mets, Paget's, osteomalacia.
- Look at globulin/albumin ratio — reversed A:G ratio → think myeloma.
- If PTH is high and phosphate is normal → suspect FHH, do 24h urine [2].
6. Specific Diagnostic Criteria
Not all PHPT patients need surgery. The 2022 5th International Workshop guidelines for asymptomatic PHPT recommend surgery if ANY ONE of the following is present:
| Criterion | Threshold |
|---|---|
| Serum calcium | > 0.25 mmol/L (1 mg/dL) above the upper limit of normal |
| Skeletal involvement | T-score ≤ −2.5 at any site (lumbar spine, total hip, femoral neck, distal one-third radius [4]); vertebral fracture on imaging |
| Renal involvement | eGFR < 60 mL/min; 24h urine calcium > 10 mmol/day (> 400 mg/day) AND ↑ stone risk by biochemical stone risk analysis; nephrolithiasis or nephrocalcinosis on imaging |
| Age | < 50 years old |
If none of the above criteria are met, the patient can be monitored conservatively with annual serum calcium, creatinine, and periodic DEXA.
Hypercalcemia is one of the CRAB criteria that define myeloma as an end-organ damaging event [8]:
"HyperCalcaemia: Serum calcium level > 0.25 mmol/L (> 1 mg/dL) higher than the upper limit of normal or > 2.75 mmol/L (> 11 mg/dL)" [8]
Full IMWG 2014 criteria for MM:
- Clonal bone marrow plasma cells ≥ 10% or biopsy-proven bony/extramedullary plasmacytoma, AND
- One or more myeloma-defining events:
- CRAB: Calcium ↑, Renal insufficiency (Cr > 177 μmol/L or CrCl < 40), Anaemia (Hb < 10 g/dL or > 2 g/dL below LLN), Bone lesions (≥ 1 lytic lesion on imaging)
- OR biomarkers of malignancy: BM plasma cells ≥ 60%, involved:uninvolved FLC ratio > 100, ≥ 1 focal lesion (≥ 5mm) on MRI [8]
- Clinical suspicion: Mild, chronic, asymptomatic hypercalcemia with normal or mildly elevated PTH, no kidney stones, family history of similar
- Confirmed by: CCCR < 0.01 on 24-hour urine collection
- Definitive: CaSR gene mutation analysis (if available)
| Imaging Modality | Indication | What to Look For | Pitfalls |
|---|---|---|---|
| CXR | All patients with hypercalcemia of unknown cause | Lung mass (SCC, mets), hilar LAD (sarcoidosis, lymphoma), effusion, TB features | May miss small lesions |
| Neck US | Suspected PHPT — localization | Hypoechoic parathyroid adenoma posterior to thyroid | Cannot detect ectopic parathyroid tissue (mediastinal) |
| Sestamibi scan | Suspected PHPT — localization | Focal delayed washout in abnormal gland | Sensitivity lower for hyperplasia, double adenoma, small adenoma; false positive with thyroid nodules |
| CT thorax/abdomen/pelvis | Suspected malignancy | Primary tumour, lymphadenopathy, liver mets | Contrast may worsen renal function in hypercalcemic patients who are already dehydrated — rehydrate first |
| Skeletal survey | Suspected myeloma | Punched-out lytic lesions, osteopenia, pathological fractures [22] | Less sensitive than CT; being replaced by whole-body low-dose CT |
| Bone scan (⁹⁹ᵐTc-MDP) | Suspected carcinoma bone mets | Hot spots at metastatic sites | Falsely negative in myeloma (purely lytic, no osteoblastic activity) [15] |
| DEXA scan | PHPT — assess bone density | T-score at 3 sites including distal one-third radius [4] | Does not distinguish osteoporosis from other metabolic bone diseases |
| Renal US | PHPT or any cause with renal symptoms | Kidney stones, nephrocalcinosis, kidney size | Cannot reliably detect ureteric stones |
| PET-CT | Myeloma staging, occult malignancy | Metabolic activity in lytic lesions, lymph nodes | Expensive; radiation exposure |
Remember: Biochemistry BEFORE Imaging in Endocrine
"Endocrine is unique in that you need biochemistry before imaging → Resolution is too high with our imaging nowadays → so we might find benign lesions, which are not related to the condition" [20]. Do NOT order a sestamibi scan or neck US before confirming biochemically that the patient has PTH-mediated hypercalcemia. An incidental thyroid nodule on US does not help — it confuses.
- Confirm: Calculate corrected calcium (or ionized Ca if albumin < 20 / paraprotein)
- Classify severity: Mild / Moderate / Severe → determines urgency
- First-line bloods: Ca, PO₄, ALP, PTH, albumin, RFT, 25(OH)D, CBC, LFT, ECG
- Branch on PTH:
- PTH high/normal → 24h urine Ca + CCCR → PHPT (> 0.02) vs FHH (< 0.01) → if PHPT: localization imaging (sestamibi + US) + DEXA + renal US + vertebral fracture assessment
- PTH low → PTHrP, 1,25(OH)₂D, 25(OH)D, TFTs, SPEP/UPEP/FLC, drug history, CXR → targeted imaging based on results
- Treat cause: Surgery (PHPT), chemotherapy (malignancy), steroids (granulomatous), stop offending drug
High Yield Summary — Diagnosis and Investigations
- Always correct calcium for albumin before interpretation. Use ionized Ca if albumin < 20 or paraproteinaemia.
- PTH is the pivotal first branch-point — divides all hypercalcemia into PTH-mediated vs non-PTH-mediated.
- PHPT evaluation panel: Ca, PO₄, ALP, Cr/eGFR, 25(OH)D, PTH, 3-site DEXA, vertebral fracture assessment, 24h urine Ca.
- FHH exclusion: CCCR < 0.01 = FHH (benign, no surgery). If phosphate is normal with high PTH → must exclude FHH.
- Myeloma clue: Normal ALP + lytic bone lesions + elevated globulin + anaemia. Bone scan may be falsely negative. Use skeletal survey or PET-CT.
- Non-PTH pathway investigations: PTHrP (HHM), 1,25(OH)₂D (granulomatous/lymphoma), 25(OH)D (toxicity), SPEP/UPEP/FLC (myeloma), TFTs (thyrotoxicosis).
- Biochemistry BEFORE imaging in endocrine — don't order sestamibi before confirming PTH-mediated disease.
- Surgical indications in PHPT: Ca > 0.25 above ULN, T-score ≤ −2.5, eGFR < 60, nephrolithiasis/nephrocalcinosis, age < 50.
Active Recall - Diagnosis and Investigations of Hypercalcemia
References
[1] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Hypercalcemia section [2] Senior notes: Chemical Pathology Data interpretation.pdf [3] Senior notes: Endocrine Interactive Tutorial.pdf [4] Senior notes: Block A - Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [5] Senior notes: Block A - Drugs and the Kidney.pdf — Lithium section [6] Senior notes: Block A - Clinical Pharmacology of anti-HT and anti-HF medications.pdf — Thiazide diuretics [8] Senior notes: Block A - An old man with bone pain and anaemia: multiple myeloma; monoclonal gammopathy.pdf [13] Lecture slides: GC 039. Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [15] Senior notes: Ryan Ho Diagnostic Radiology.pdf — Bone scan section [20] Senior notes: Block A - Introduction to Endocrine investigations.pdf [21] Lecture slides: GC 031. Back pain in an elderly woman: osteoporosis and related fractures.pdf — Lab investigations [22] Senior notes: Ryan Ho Haematology.pdf — Multiple Myeloma section
Management of Hypercalcemia
Management of hypercalcemia rests on two pillars that must run in parallel:
- Rapid control of calcium levels — resuscitate the patient, break the vicious cycle, prevent cardiac and neurological catastrophe.
- Early diagnosis and treatment of the underlying cause [4] — because no amount of IV fluid or bisphosphonate will fix the calcium long-term if you haven't dealt with the parathyroid adenoma or the cancer.
The urgency and aggressiveness of treatment is determined by severity and symptom status, not by the calcium number alone.
Three principles correspond to three severity tiers [4]:
| Severity | Corrected Ca²⁺ | Management Approach |
|---|---|---|
| Mild / Asymptomatic (< 3.0 mmol/L) | < 3.0 | Avoid factors that aggravate hypercalcemia; maintain adequate hydration; avoid high calcium diet (> 1000 mg/day) [4] — investigate electively |
| Moderate (3.0–3.5 mmol/L) | 3.0–3.5 | Rapid control of calcium: fluid replacement, IV bisphosphonates, calcitonin, glucocorticoids, denosumab, dialysis, surgery, calcimimetics [4] |
| Severe / Dangerous (> 3.5 mmol/L) | > 3.5 | Medical emergency — same as moderate but with greater urgency; ICU monitoring; dialysis if refractory |
4. Detailed Treatment Modalities
"Volume expansion by means of normal saline — excretion of calcium is achieved by the inhibition of sodium reabsorption in the proximal tubule and loop of Henle. Calcium reabsorption follows sodium" [4].
This is the single most important first-line intervention. Here is why from first principles:
- Hypercalcemia causes polyuria (nephrogenic DI) and vomiting → dehydration → ↓ GFR → ↓ renal calcium excretion → worsening hypercalcemia. Rehydration breaks this vicious cycle.
- In the proximal tubule and thick ascending limb of Henle, calcium reabsorption is passively linked to sodium reabsorption. When you give normal saline, you expand the intravascular volume → suppress proximal tubular Na⁺ (and Ca²⁺) reabsorption → calciuresis (calcium is excreted with sodium).
| Parameter | Detail |
|---|---|
| Fluid | Normal saline (0.9% NaCl) — NOT dextrose (provides free water, not NaCl) |
| Rate | 200–500 mL/h (aim 4–6 L/day) [23] |
| Target urine output | 100–150 mL/h [23] |
| Monitoring | Electrolytes and fluid balance — watch for hypokalaemia and hypomagnesaemia (dilution + calciuresis can cause K⁺/Mg²⁺ loss); cardiac monitoring for fluid overload [4] |
| Caution | Rate dependent on age and comorbid conditions (heart failure, CKD) — rapid infusion may push these patients into fluid overload [4] |
Loop Diuretics — A Common Misconception
"Loop diuretics (furosemide) can be used only if the patients develop edema" [4]. "Don't answer loop diuretics as a treatment for hypercalcemia, since the effect is not that marked" [6].
The old teaching was to give "saline and furosemide" routinely. This is wrong. Furosemide is only indicated when the patient develops fluid overload or has pre-existing heart failure/renal insufficiency during saline rehydration [1][24]. Giving furosemide to a dehydrated patient will worsen volume depletion, reduce GFR further, and paradoxically worsen hypercalcemia. "Since these patients are already dehydrated, why dry them out even more" [4].
Loop diuretics should be used in patients with heart failure or renal insufficiency to prevent fluid overload [1][24] — this is the ONLY legitimate indication in the acute setting.
"Adsorb to the surface of bone hydroxyapatite and interfere with osteoclast-mediated bone resorption" [4] — "inhibit osteoclastic activity and reduce Ca release from bone" [7].
The name "bisphosphonate" tells you the mechanism: "bis" = two, "phosphonate" = phosphate-like groups. These molecules mimic pyrophosphate (which naturally coats bone surfaces) → they attach to hydroxyapatite → get internalized by osteoclasts during bone resorption → disrupt the mevalonate pathway inside the osteoclast → osteoclast apoptosis.
| Parameter | Detail |
|---|---|
| Agents | Pamidronate or Zoledronic acid (Zometa) [4] |
| Dose (Pamidronate) | 30–90 mg in 500 mL NS over 4–6 hours [23] |
| Dose (Zoledronic acid) | 4 mg in 100 mL NS over 15 minutes (more convenient) |
| Onset | Serum calcium begins to fall in 1–2 days; maximum effect in 2–4 days [4] |
| Repeat dosing | Do not repeat before 7 days — must wait for full effect [4] |
| Indications | Moderate to severe hypercalcemia; patients still hypercalcemic despite adequate rehydration [4] |
| Contraindication | eGFR < 30–35 mL/min/1.73m² [4][23]. "Be careful of pseudo-low eGFR in dehydrated patients → sometimes after you rehydrate them the eGFR goes back up, which then allows you to use these bisphosphonates" [4] |
Side effects of IV bisphosphonates [4]:
- Flu-like symptoms (acute phase reaction — IL-6 release from monocytes)
- Renal impairment (tubular toxicity, collapsing FSGS with high-dose IV) [5]
- Osteonecrosis of the jaw (prolonged use — impaired bone healing after dental procedures)
- Atypical fractures (with prolonged use for osteoporosis — related to over-suppression of bone turnover; less relevant in acute hypercalcemia treatment)
"Relatively weak agent but works rapidly within hours" [4]. Calcitonin is used as a bridge — it brings calcium down quickly while you wait for bisphosphonates to take effect (which take 1–2 days).
- Mechanism: Increases renal calcium excretion + reduces bone resorption (directly inhibits osteoclasts) [4]
- Dose: Salmon calcitonin 4 IU/kg SC every 12 hours [4][23]
- Onset: 2–3 hours [23]
- Key limitation: Tachyphylaxis → waning effect after 2–3 days [4][23] — the receptors downregulate. So calcitonin is a short-term measure, NOT a long-term solution.
- Side effects: Nausea, flushing, hypersensitivity reaction (rare) [4]
- Route: Subcutaneous injection. Nasal sprays are not efficacious for the treatment of hypercalcemia (nasal calcitonin is only for pain control in osteoporosis) [4]
- Indication: Not first-line. For those contraindicated for IV bisphosphonates (e.g. severe renal impairment) or as a bridge while waiting for bisphosphonate onset [4]
Think of it this way: calcitonin is a "fast but weak" drug, bisphosphonates are "slow but strong." You use calcitonin to buy time.
"Reduce calcitriol production by activated mononuclear cells" [4] — "inhibit Vit D conversion to calcitriol" [23].
Glucocorticoids suppress the 1α-hydroxylase enzyme in activated macrophages within granulomas or lymphoma tissue. This makes them specifically useful when hypercalcemia is driven by excess calcitriol (1,25(OH)₂D) production.
| Parameter | Detail |
|---|---|
| Agent | Prednisolone 20–40 mg/day [4] or IV hydrocortisone if acutely unwell [23] |
| Indications | Excessive administration or ingestion of vitamin D [4]; Endogenous overproduction of calcitriol (chronic granulomatous disease — sarcoidosis, TB; lymphoma) [4]; Haematologic malignancy [23] |
| Mechanism | Suppresses macrophage 1α-hydroxylase → ↓ calcitriol → ↓ intestinal Ca absorption + ↓ bone resorption [4] |
| Onset | Days |
| Limitations | NOT effective in PHPT or PTHrP-mediated malignancy (these are not calcitriol-driven); chronic use has all the standard steroid side effects |
When Are Glucocorticoids Indicated for Hypercalcemia?
Only when the hypercalcemia is vitamin D–mediated:
- Granulomatous disease (sarcoidosis, TB) — macrophages making excess 1,25(OH)₂D
- Lymphoma — tumour cells making excess 1,25(OH)₂D
- Vitamin D toxicity (exogenous)
- Haematological malignancy (myeloma — also part of chemotherapy regimen)
If the cause is PHPT or solid tumour PTHrP, glucocorticoids will NOT help.
"Denosumab" → "deno" + "su" + "mab" → fully human monoclonal antibody. It targets RANKL (Receptor Activator of Nuclear Factor κB Ligand).
"RANKL causes increased formation, function and survival of osteoclasts → causes more bone resorption and increased calcium. So inhibit this, less osteoclasts → less bone resorption, calcium levels fall" [4].
| Parameter | Detail |
|---|---|
| Agent | Denosumab 120 mg SC [23] |
| Onset | 2–4 days for serum calcium to fall [4] |
| Key advantage | Not excreted through kidneys — can be given to CKD patients [4]. This is its major advantage over bisphosphonates |
| Indications [4] | 1) Refractory hypercalcemia despite IV bisphosphonates; 2) Contraindicated for IV bisphosphonates due to severe renal impairment (eGFR < 30); 3) Hypercalcemia of malignancy with persistent hypercalcemia |
| Precautions | Must ensure vitamin D is replenished before starting → or else may cause hypocalcemia [4]; risk of rebound hypercalcemia if stopped abruptly (RANKL rebounds) |
Denosumab is not first-line — it is reserved for bisphosphonate failure or renal impairment [4].
"Calci-mimetic" → "mimics calcium." Cinacalcet is an allosteric activator of the calcium-sensing receptor (CaSR).
"Act on CaR to switch off PTH synthesis" [14]. By making the CaSR more sensitive to ambient calcium, the parathyroid gland "thinks" calcium is higher than it really is → suppresses PTH secretion.
| Parameter | Detail |
|---|---|
| Agent | Cinacalcet (oral) |
| Mechanism | Allosteric activation of CaSR → ↓ PTH secretion |
| Indications | Secondary/tertiary hyperparathyroidism in CKD [14]; Parathyroid carcinoma; Severe hypercalcemic patients in whom parathyroidectomy is indicated but clinically not a good surgical candidate [1][24] |
| Not used for | Mild PHPT (surgery is preferred); non-PTH-mediated hypercalcemia (pointless — PTH is already suppressed) |
"Reserved for very severe forms of hypercalcemia → serum Ca > 4.5 mmol/L. Usually in patients with refractory severe hypercalcemia, complicated by renal failure → renders other forms of therapy ineffective or contraindicated" [4].
| Parameter | Detail |
|---|---|
| Modality | Haemodialysis with low-calcium dialysate [7][23] |
| Mechanism | Mechanically removes plasma calcium across the dialysis membrane down its concentration gradient [7] |
| Indication | Refractory severe hypercalcemia (> 4.5 mmol/L); concurrent acute kidney injury or established CKD making other therapies ineffective |
| Setting | ICU — "when all else fails, consult ICU" [4] |
5. Treatment of the Underlying Cause
Acute calcium-lowering measures are a bridge. Definitive management requires treating the cause [4].
5.1 Primary Hyperparathyroidism — Surgery
Parathyroidectomy is the only curative treatment for PHPT.
| Category | Criteria |
|---|---|
| ALL symptomatic patients | Any patient with symptoms attributable to hypercalcemia |
| Asymptomatic patients — surgery if ANY ONE of: | |
| Age | < 50 years |
| Serum calcium | > 0.25 mmol/L (1 mg/dL) above upper limit of normal |
| Renal | CrCl reduced ≥ 30% (eGFR < 60 mL/min), or 24h urinary Ca > 400 mg/day (10 mmol/day) with ↑ stone risk, or nephrolithiasis/nephrocalcinosis on imaging |
| Bone | Osteoporosis: DEXA T-score ≤ −2.5 at any site, or vertebral fracture |
| Other indications | Persistent or recurrent PHPT; Familial PHPT; Parathyroid carcinoma; Parathyroid crisis [1][24] |
| Contraindication | Rationale |
|---|---|
| Known recurrent laryngeal nerve (RLN) injury | Bilateral RLN injury can be life-threatening (bilateral vocal cord paralysis → airway obstruction) |
| Symptomatic cervical disc disease | Positioning for surgery may exacerbate |
| Familial Hypocalciuric Hypercalcemia (FHH) | Patient does not have PHPT; surgical intervention does not result in cure [1][24] — the problem is a systemic CaSR defect, not an adenoma |
| Procedure | Indication | Details |
|---|---|---|
| Focused (minimally invasive) parathyroidectomy | Adenoma identified on pre-operative localization (sestamibi + US) | Small incision (< 3 cm); remove single adenoma; intraoperative PTH measurement (Miami criteria): PTH drop to normal range + < 50% of max value at 10 min post-resection [7]. If criteria not met → suspect multigland disease → convert to bilateral neck exploration |
| Bilateral neck exploration (BCE) | MEN1/2A; multigland disease; uncertain imaging | Kocher incision; subtotal parathyroidectomy ("3.5 resection") — 3 glands resected, half of 4th gland left in situ marked with non-absorbable sutures [7] |
| Total parathyroidectomy with autotransplantation | Rarely needed; tertiary HPT | Autotransplant to brachioradialis (forearm) or SCM (neck) [7] |
| ± Cervical thymectomy | MEN1 — to resect supernumerary glands in thymus [7] |
| Complication | Mechanism / Details |
|---|---|
| Hypocalcemia (most important to monitor) | Routinely check Ca level on post-op Day 1 [7] |
| Hungry bone syndrome | Rapid, profound hypocalcemia due to sudden drop in PTH, causing rapid deposition of Ca into demineralized bone [7]; more common after prolonged severe PHPT. Treatment: IV then oral calcium + vitamin D |
| Transient hypoparathyroidism | After focused parathyroidectomy — transient suppression of normal glands by adenoma [7]; usually recovers in days to weeks |
| Permanent hypoparathyroidism | Requiring Ca/Vit D supplement 1 year post-op [7] |
| RLN injury | Hoarseness; risk higher in re-operative surgery |
| Reactionary haemorrhage | Neck haematoma → airway compromise → emergency |
| Persistent HPT (< 6 months post-op) | Due to missed pathology → management: BCE [7] |
| Recurrent HPT (> 6 months post-op) | Due to missed pathology or parathyromatosis (disseminated parathyroid tissue from rupture during surgery) → management: MIBI scan, BCE [7] |
Indications: Surgically unfit patients
| Agent | Mechanism |
|---|---|
| Bisphosphonates | ↓ Bone resorption → may stabilize BMD, modest effect on calcium |
| Calcimimetics (Cinacalcet) | ↓ PTH secretion via CaSR activation → lowers calcium |
| SERM (Raloxifene) | Bone-protective (anti-resorptive); modest effect |
"Persistent autonomous hypercalcaemic hyperparathyroidism after renal replacement therapy" [7].
- Medical: Calcimimetics (cinacalcet); dietary phosphate restriction; phosphate binders; vitamin D analogues [14]
- Surgical indications: Persistent severe hypercalcemia; impaired graft function; progressive symptoms (e.g. osteoporotic fracture) [7]
- Procedures: Total parathyroidectomy with autotransplantation at forearm (brachioradialis) or neck (SCM); or subtotal parathyroidectomy (3.5 resection) [7]
- Definitive treatment: Treat the underlying malignancy (chemotherapy, radiotherapy, surgery depending on tumour type and stage)
- Supportive: Bisphosphonates (zoledronic acid preferred in malignancy) or denosumab for ongoing bone protection
- Glucocorticoids: For lymphoma (both anti-tumour and anti-calcitriol effect) and myeloma (dexamethasone is part of chemotherapy)
- Prognosis: Malignant hypercalcemia is a poor prognostic sign (median survival ~30 days if untreated); treatment of hypercalcemia improves quality of life but may not extend survival significantly
- Glucocorticoids are first-line — suppress macrophage 1α-hydroxylase
- Treat underlying disease (anti-TB therapy for TB, immunosuppression for sarcoidosis)
- Stop the offending drug:
- Thiazides → switch to alternative antihypertensive (loop diuretic, CCB, ACEi)
- Lithium → "Treatment is to stop the drug immediately" [25] — discuss with psychiatry about alternatives (valproate, carbamazepine)
- Vitamin D/calcium supplements → withhold
- Vitamin A → stop supplement
"Management (SAQ!)" [23] — this is frequently tested. Know this cold.
Step-by-step acute management of moderate-to-severe hypercalcemia [23][4][7]:
- Monitor: I/O chart, electrolytes, RFT, cardiac monitoring (ECG)
- Withhold offending agents: Stop Ca and Vit D supplements; stop thiazide diuretics
- Rehydrate: IV NS infusion 200–500 mL/h (4–6 L/day); aim urine output 100–150 mL/h
- Loop diuretics: IV furosemide 20–40 mg ONLY AFTER adequate rehydration — only if volume overloaded or HF
- IV Bisphosphonates (if eGFR > 30): Pamidronate 30–90 mg in 500 mL NS over 4–6h; onset 24–72h; do NOT repeat before 7 days
- Calcitonin (bridge / if renal impairment): SC salmon calcitonin 4 IU/kg Q12h; onset 2–3h; risk of tachyphylaxis after 2–3 days
- Glucocorticoids: Only if vitamin D–mediated cause (granulomatous disease, lymphoma, vitamin D toxicity)
- Denosumab: If bisphosphonate-refractory or eGFR < 30
- Calcimimetics (Cinacalcet): For secondary/tertiary HPT
- Dialysis with low-Ca dialysate: Last resort for refractory severe hypercalcemia (Ca > 4.5) with renal failure
- Treat underlying cause
| Agent | Onset | Duration | Mechanism | Key Indication | Key Limitation |
|---|---|---|---|---|---|
| IV NS | Immediate | While infusing | ↑ GFR + ↓ proximal Na/Ca reabsorption | ALL hypercalcemia | Fluid overload in HF/CKD |
| Furosemide | Minutes | Hours | Blocks NKCC2 → ↓ Ca reabsorption in TAL | ONLY if volume overloaded | Not a primary treatment for hypercalcemia [6] |
| Pamidronate / Zoledronic acid | 1–2 days | Weeks | ↓ Osteoclast-mediated bone resorption | Moderate-severe, excessive bone resorption | eGFR < 30 [4]; wait 7 days before repeat |
| Calcitonin | 2–3 hours | 48–72h | ↑ Renal Ca excretion + ↓ osteoclast activity | Bridge; renal impairment | Tachyphylaxis after 48–72h [4] |
| Prednisolone | Days | While on treatment | ↓ Macrophage 1α-hydroxylase → ↓ calcitriol | Granulomatous, lymphoma, Vit D excess | Ineffective in PHPT/PTHrP |
| Denosumab | 2–4 days | Weeks–months | Anti-RANKL → ↓ osteoclast formation | Bisphosphonate failure; eGFR < 30 | Replenish Vit D first [4]; rebound hypercalcemia on cessation |
| Cinacalcet | Hours–days | While on treatment | CaSR activation → ↓ PTH | Secondary/tertiary HPT; parathyroid CA | Ineffective in non-PTH causes |
| Dialysis | Immediate | During session | Mechanical Ca removal | Ca > 4.5; refractory + renal failure | Invasive; ICU setting |
High Yield Summary — Management of Hypercalcemia
Acute management (SAQ): Monitor ECG and I/O → Stop Ca/Vit D supplements and thiazides → IV NS 200–500 mL/h → Furosemide ONLY if volume overloaded → IV bisphosphonate (onset 1–2 days, eGFR must be > 30) → Calcitonin as bridge (onset 2–3h, tachyphylaxis after 48–72h) → Glucocorticoids ONLY for vitamin D–mediated causes → Denosumab if bisphosphonate fails or eGFR < 30 → Dialysis as last resort (Ca > 4.5 with renal failure).
Furosemide misconception: NOT a primary treatment for hypercalcemia. Only for volume overload during rehydration.
Bisphosphonate caution: Contraindicated in eGFR < 30; beware pseudo-low eGFR from dehydration — rehydrate first, reassess eGFR, then decide.
Surgery for PHPT: Indications — all symptomatic patients; asymptomatic if age < 50, Ca > 0.25 above ULN, eGFR < 60, nephrolithiasis/nephrocalcinosis, T-score ≤ −2.5. Contraindicated in FHH (no cure from surgery), bilateral RLN injury.
Post-parathyroidectomy: Watch for hungry bone syndrome (profound hypocalcemia from calcium rushing into demineralized bone).
Tertiary HPT: Cinacalcet first-line medical; surgery if persistent severe hypercalcemia or progressive symptoms.
Treat the cause: All acute measures are bridges. Definitive management = parathyroidectomy (PHPT), chemotherapy (malignancy), steroids + anti-TB (granulomatous), stop drug (drug-induced).
Active Recall - Management of Hypercalcemia
References
[1] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Hypercalcemia Treatment section [2] Senior notes: Chemical Pathology Data interpretation.pdf [4] Senior notes: Block A - Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [5] Senior notes: Block A - Drugs and the Kidney.pdf — Bisphosphonates section [6] Senior notes: Block A - Clinical Pharmacology of anti-HT and anti-HF medications.pdf — Thiazide diuretics [7] Senior notes: Maksim Surgery Notes.pdf — Parathyroid section [8] Senior notes: Block A - An old man with bone pain and anaemia: multiple myeloma; monoclonal gammopathy.pdf [13] Lecture slides: GC 039. Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [14] Senior notes: Block A - Chronic Kidney Disease and its Complications.pdf — CKD-MBD treatment [23] Senior notes: Maksim Medicine Notes.pdf — Hypercalcemia management [24] Senior notes: MBBS Final MB (Surgery) (Felix PY Lai).pdf — Parathyroid surgery section [25] Senior notes: Block A - Two cases of polyuria and polydipsia.pdf — Lithium section
Complications of Hypercalcemia
Complications of hypercalcemia can be divided into two conceptual groups: (A) complications of the hypercalcemia itself — the direct damage that elevated calcium inflicts on organ systems, and (B) complications of the treatment — iatrogenic problems arising from the therapies we use to bring calcium down. Both are important for exams.
1. Complications of Hypercalcemia Itself (Organ-System Approach)
The overarching principle is that calcium is a membrane stabilizer. At normal levels it fine-tunes excitability; at excess levels it reduces neuronal, muscular, and cardiac excitability (paradoxically — because extracellular calcium raises the threshold potential, making it harder for cells to depolarize). Simultaneously, intraluminal calcium precipitates in kidneys and soft tissues, and the hypercalciuria-dehydration vicious cycle causes progressive multi-organ damage.
| Complication | Pathophysiology |
|---|---|
| Nephrolithiasis (renal stones) [13][26] | Hypercalciuria → supersaturation of calcium oxalate/phosphate in tubular fluid → stone nucleation and growth. Renal stone is the most common (MC) complication [7] |
| Nephrocalcinosis [13][26] | Diffuse calcium phosphate deposition within renal parenchyma (medullary > cortical). Unlike stones (which are in the collecting system), nephrocalcinosis is within the tissue itself → progressive tubulointerstitial damage |
| Nephrogenic diabetes insipidus (polyuria/polydipsia) | Calcium interferes with ADH (vasopressin) action at the collecting duct — it activates the CaSR on the thick ascending limb, inhibiting NKCC2 and disrupting the medullary concentration gradient. Also, calcium deposits damage medullary interstitium → impaired urinary concentrating ability → polyuria → dehydration |
| Acute kidney injury (pre-renal) | Dehydration from polyuria + vomiting → ↓ renal perfusion → ↓ GFR. "With patient's history, also have to be immediately alerted to possibility of renal failure" [8] |
| Chronic kidney disease | Long-standing nephrocalcinosis → chronic tubulointerstitial nephropathy → progressive irreversible renal scarring. Also, chronic PHPT itself is associated with CKD progression |
| Renal tubular dysfunction [26] | Calcium deposits in tubular cells → impaired tubular reabsorption/secretion → type 1 (distal) RTA-like picture, concentrating defect |
"Renal complications: renal stone and nephrocalcinosis, hypertension, renal failure" [13]
The Vicious Cycle — From Complication Back to Cause
Renal complications of hypercalcemia feed back into the problem: nephrocalcinosis damages the kidney → ↓ GFR → ↓ renal calcium excretion → worsening hypercalcemia. Dehydration from nephrogenic DI does the same. This is why patients can present in hypercalcemic crisis — the cycle accelerates until the patient becomes acutely confused, profoundly dehydrated, and at risk of cardiac arrest.
| Complication | Pathophysiology |
|---|---|
| Shortened QT interval | ↑ Extracellular Ca²⁺ accelerates phase 2 repolarization (plateau phase) of the cardiac action potential → shortened ST segment → shortened QT. This is the earliest and most characteristic ECG change |
| Cardiac arrhythmias | "Risk of cardiac arrhythmias" [8]. Shortened refractory period → re-entrant circuits → ventricular tachycardia, ventricular fibrillation. Also, hypercalcemia enhances automaticity of ectopic pacemakers |
| Bradycardia and heart block | In severe hypercalcemia (> 4.0), calcium can slow AV conduction → first-degree AV block → complete heart block |
| Cardiac arrest | Extreme hypercalcemia (> 4.5–5.0) → pulseless electrical activity or asystole |
| Digitalis sensitivity | Hypercalcemia potentiates the effect of digoxin (both increase intracellular calcium via Na⁺/K⁺ ATPase inhibition) → ↑ risk of digoxin toxicity (arrhythmias, heart block) at therapeutic digoxin levels. Clinical pearl: check calcium in any patient on digoxin who develops toxicity |
| Hypertension [13][26] | Calcium → vasoconstriction of vascular smooth muscle; also, chronic volume contraction activates RAAS. "Hypertension" is listed as a renal/cardiovascular complication of PHPT [13] |
| Left ventricular hypertrophy (LVH) [26] | Secondary to chronic hypertension and direct effects of PTH/calcium on myocardium |
| Intimal/vascular calcification [26] | "Intimal calcification" — metastatic calcification in arterial walls when calcium-phosphate product is elevated (especially in renal failure with tertiary HPT) |
| Complication | Pathophysiology |
|---|---|
| Osteoporosis / osteopenia [13][26] | Chronic ↑ PTH or ↑ bone resorption → net bone loss. "Continuously ↑ PTH → cortical > trabecular bone resorption → demineralization with weakening and fracture" [26]. In PHPT, cortical bone (distal radius, hip) is preferentially affected; trabecular bone (spine) may be relatively preserved |
| Pathological fractures [13][26] | Weakened bone → fracture with minimal trauma. "2–3× risk of vertebral, distal forearm, pelvic fractures" [26] |
| Osteitis fibrosa cystica [26] | Classical bone lesion of severe PHPT (now uncommon with early detection). Includes: brown tumours (aggregations of osteoclasts + fibrous tissue + haemosiderin in jaw, long bones, ribs); subperiosteal bone resorption (thinning of cortex, especially radial aspect of middle phalanges); bone cysts (central medullary portions); "salt-and-pepper" skull (trabecular resorption in skull vault); tapering of distal clavicles [26] |
| Chondrocalcinosis / pseudogout (CPPD) | Calcium pyrophosphate crystals deposit in articular cartilage → joint pain, calcification of cartilage [13]; can cause acute inflammatory arthritis (pseudogout) |
| Complication | Pathophysiology |
|---|---|
| Peptic ulcer disease | Hypercalcemia stimulates gastrin secretion → ↑ gastric acid → mucosal damage. "Abdominal groans: due to ileus, PUD (gastrin secretion), pancreatitis" [7] |
| Acute pancreatitis | Calcium activates trypsinogen to trypsin within pancreatic ducts → autodigestion. Also, calcium precipitates in pancreatic ducts. Chronic hypercalcemia is a recognized cause of both acute and chronic pancreatitis |
| Constipation and ileus | Hypercalcemia → ↓ smooth muscle contractility → hypomotility → constipation → paralytic ileus in severe cases |
| Nausea, vomiting, anorexia | Central (CTZ stimulation) and peripheral (gastrin-mediated acid secretion, smooth muscle dysfunction) effects. These contribute to dehydration and worsen the vicious cycle |
| Complication | Pathophysiology |
|---|---|
| Confusion and cognitive impairment | "Confused and dehydrated" [13] — elevated extracellular calcium raises the neuronal depolarization threshold → ↓ neuronal excitability → altered consciousness. Mild hypercalcemia causes subtle cognitive dysfunction; severe causes frank delirium |
| Depression and mood disturbance | Central neurotransmitter effects of calcium; documented association between PHPT and depressive symptoms (often improve after parathyroidectomy) |
| Psychosis | Severe hypercalcemia can cause hallucinations, paranoia, disordered thinking |
| Lethargy, fatigue, proximal myopathy | Membrane stabilization → ↓ neuromuscular excitability → subjective weakness and objective proximal muscle weakness |
| Coma and death [1] | Extreme hypercalcemia (> 4.5–5.0) → diffuse neuronal depression → obtundation → coma. "Seizure, coma, death" associated with severe/dangerous hypercalcemia [1] |
| Complication | Pathophysiology |
|---|---|
| Band keratopathy | Calcium phosphate deposition in the interpalpebral corneal epithelium (where pH is slightly higher due to CO₂ evaporation → less soluble calcium phosphate precipitates). Visible as a horizontal white band on slit-lamp examination. Occurs in chronic hypercalcemia |
| Soft tissue calcification | When the calcium × phosphate product is elevated (especially > 4.4 mmol²/L² or > 55 mg²/dL²), metastatic calcification occurs in kidneys, blood vessels, lungs, heart, skin, and joints |
| Conjunctival calcification | Red eye from calcium deposition in conjunctiva |
2. Complications of Hypercalcemia Treatment
| Complication | Mechanism | Prevention |
|---|---|---|
| Fluid overload / pulmonary oedema | Aggressive saline infusion in patients with impaired cardiac or renal reserve → volume overload | Rate dependent on age and comorbid conditions (heart failure, CKD) [4]; monitor I/O, JVP, lung auscultation; use furosemide ONLY if volume overloaded |
| Hypokalaemia | Volume expansion + calciuresis → increased distal Na⁺ delivery → K⁺/Na⁺ exchange → potassium wasting | Monitor electrolytes; replace K⁺ as needed |
| Hypomagnesaemia | Similar mechanism to hypokalaemia; increased urinary magnesium losses with volume expansion | Monitor Mg²⁺; replace if low |
| Complication | Mechanism | Clinical Relevance |
|---|---|---|
| Renal impairment / nephrotoxicity | Tubular toxicity in patients with reduced renal function may occur with IV high-dose [5]; also risk of collapsing FSGS associated with IV high-dose [5] | Contraindicated when eGFR < 30–35 [4]; longer infusion duration (2–24h) may reduce risk [26] |
| Acute phase reaction (flu-like symptoms) | IL-6 and TNF-α release from monocytes upon first bisphosphonate exposure | Usually self-limiting; more common with first dose; paracetamol for symptom relief |
| Osteonecrosis of the jaw (ONJ) | Suppression of bone remodelling in the jaw (which has high turnover) → avascular necrosis after dental procedures | Exceedingly rare complication [27]; risk higher with prolonged IV use (oncology doses); dental assessment before starting |
| Atypical femoral fractures | Over-suppression of bone turnover → accumulation of microdamage → stress fracture in subtrochanteric femur | More relevant to prolonged oral bisphosphonate use for osteoporosis than acute hypercalcemia treatment [27] |
| Hypocalcaemia [27] | Effective suppression of osteoclast-mediated calcium release from bone → overshoot | Monitor calcium post-treatment; ensure vitamin D is replenished |
| Complication | Mechanism |
|---|---|
| Tachyphylaxis | Receptor downregulation after 48–72h → waning effect → calcium begins to rise again. This is the key limitation — calcitonin is a bridge, not a sustained treatment [4] |
| Nausea | Direct GI side effect |
| Hypersensitivity reaction | Rare; salmon calcitonin is a foreign protein |
| Complication | Mechanism |
|---|---|
| Hypocalcaemia | Very effective osteoclast suppression → may cause overshoot hypocalcemia, especially if vitamin D is deficient. "Have to ensure vitamin D is replenished before starting → or else, may cause hypocalcemia" [4] |
| Rebound hypercalcemia | On cessation, RANKL rebounds → sudden surge of osteoclast activity → rapid bone resorption → severe rebound hypercalcemia. Requires gradual transition to bisphosphonate if stopping |
| ONJ and atypical fractures | Same mechanism as bisphosphonates (suppression of bone turnover) but risk profile may differ |
This is especially high-yield for surgery and endocrine exams.
| Complication | Mechanism / Detail |
|---|---|
| Hypocalcaemia (most important) | Routinely check Ca level on post-op Day 1 [7]. Three mechanisms: |
| — Hungry bone syndrome | "Rapid, profound hypocalcaemia due to sudden drop in PTH, causing a rapid deposition of Ca into demineralised bone" [7][26]. The chronically PTH-stimulated skeleton suddenly starts avidly taking up calcium and phosphate when PTH drops. More severe when pre-operative PTH was very high (osteitis fibrosa cystica). Management: Ca + Vit D [7] |
| — Transient suppression of normal glands | "After focused parathyroidectomy: transient suppression of normal glands by adenoma" [7]. The remaining normal parathyroid glands have been chronically suppressed by the adenoma's autonomous PTH output → they take days to weeks to "wake up" |
| — Permanent hypoparathyroidism | "Requiring Ca / Vit D supplement 1 year post-op" [7]. Due to inadvertent removal or devascularization of remaining glands |
| Recurrent laryngeal nerve (RLN) injury [7][26] | Unilateral: hoarseness (vocal cord paralysis). Bilateral: dyspnoea, stridor upon extubation → require immediate re-intubation ± tracheostomy [26]. Can be transient (traction) or permanent (transection) |
| Reactionary haemorrhage | Neck haematoma → venous obstruction → acute laryngeal oedema → airway compromise. Management: cut subcuticular stitches and strap muscle stitches to evacuate blood → call seniors for intubation [26] |
| Persistent hyperparathyroidism (< 6 months post-op) | "Due to missed pathology → management: bilateral neck exploration (BCE)" [7] |
| Recurrent hyperparathyroidism (> 6 months post-op) | "Due to missed pathology, parathyromatosis (disseminated parathyroid tissue from rupture of parathyroid gland during operation) → management: MIBI scan, BCE" [7] |
Hungry Bone Syndrome — The Post-Op Trap
This is a must-know complication. After years of PTH-driven bone resorption, the skeleton is demineralized and "hungry" for calcium. When the adenoma is removed and PTH drops suddenly, the skeleton rapidly takes up calcium and phosphate from the blood → profound hypocalcemia (sometimes severe enough to cause tetany, seizures, or cardiac arrhythmias). Risk factors include: high pre-operative PTH, large adenoma, radiographic bone disease, vitamin D deficiency. Prevention: ensure vitamin D is replenished pre-operatively; monitor calcium closely post-operatively; have IV calcium gluconate readily available.
Since thyroidectomy can inadvertently damage or remove parathyroid glands, iatrogenic hypoparathyroidism is a key complication:
- "Risk: 1–4% permanent (esp in cancer surgery as extensive dissection is required), 10–20% transient (esp in ischaemia)" [26]
- "Reason: often due to compromise of inferior thyroid artery" [26] — this artery supplies ALL four parathyroid glands
- Signs: CATS GO NUMB — Convulsion, Arrhythmia, Tetany, LaryngoSpasm, NUMBNESS (perioral, distal) [26]
High Yield Summary — Complications of Hypercalcemia
Renal (most common organ affected):
- Nephrolithiasis (MC complication), nephrocalcinosis, nephrogenic DI → polyuria/dehydration, AKI (pre-renal), CKD (chronic tubulointerstitial damage).
- Vicious cycle: polyuria → dehydration → ↓ GFR → ↓ Ca excretion → worsening hypercalcemia.
Cardiac:
- Short QT (earliest ECG change), arrhythmias (VT/VF), heart block, cardiac arrest (Ca > 4.5).
- Digitalis sensitivity — always check calcium in digoxin toxicity.
- Hypertension, LVH, vascular calcification (chronic).
Skeletal (PHPT-specific):
- Osteoporosis (cortical > trabecular), pathological fractures (2–3× risk), osteitis fibrosa cystica (brown tumours, subperiosteal resorption, salt-and-pepper skull), chondrocalcinosis/pseudogout.
GI: PUD (↑ gastrin), pancreatitis, constipation/ileus, nausea/vomiting.
Neuropsychiatric: Confusion ("confused and dehydrated"), depression, psychosis, proximal myopathy, coma, seizures, death.
Treatment complications:
- IV saline → fluid overload, hypokalaemia, hypomagnesaemia.
- Bisphosphonates → nephrotoxicity (eGFR < 30 contraindication), ONJ, atypical fractures, acute phase reaction.
- Calcitonin → tachyphylaxis after 48–72h.
- Denosumab → hypocalcaemia (replenish Vit D first), rebound hypercalcaemia on cessation.
- Parathyroidectomy → hungry bone syndrome (profound hypocalcemia), RLN injury, haemorrhage, persistent/recurrent HPT.
Active Recall - Complications of Hypercalcemia
References
[1] Senior notes: MBBS Final MB (Medicine) (Felix PY Lai).pdf — Hypercalcemia section [4] Senior notes: Block A - Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [5] Senior notes: Block A - Drugs and the Kidney.pdf — Bisphosphonates section [6] Senior notes: Block A - Clinical Pharmacology of anti-HT and anti-HF medications.pdf — Thiazide diuretics [7] Senior notes: Maksim Surgery Notes.pdf — Parathyroid complications section [8] Senior notes: Block A - An old man with bone pain and anaemia: multiple myeloma; monoclonal gammopathy.pdf [13] Lecture slides: GC 039. Confused and dehydrated: hypercalcaemia; hypocalcaemia.pdf [26] Senior notes: Ryan Ho Endocrine.pdf — Hyperparathyroidism and thyroidectomy complications sections [27] Senior notes: Block A - Back pain in an elderly woman: osteoporosis and related fractures.pdf — ONJ and AFF
High Yield Summary
Definition: Corrected Ca²⁺ > 2.55 mmol/L. Always correct for albumin: Corrected Ca = Total Ca + 0.02 × (40 − albumin g/L). Correction fails when albumin < 20 or paraproteinaemia → measure ionized Ca directly.
90% rule: PHPT + Malignancy account for ~90% of all hypercalcemia.
PHPT: #1 cause overall; 85% solitary adenoma; peaks 6th–7th decade; F > M (postmenopausal).
Malignancy: #1 cause in inpatients; PTHrP (SCC lung), osteolytic (myeloma, breast), ectopic 1,25(OH)₂D (lymphoma). In myeloma, ALP is characteristically NORMAL despite lytic lesions.
FHH: Must exclude before referring for parathyroidectomy — use 24h urine Ca and Ca:Cr clearance ratio < 0.01.
Severity: Mild < 3.0; Moderate 3.0–3.5; Severe > 3.5 mmol/L.
Clinical features: "Bones, Stones, Abdominal Groans, Psychiatric Overtones" — now rare due to earlier detection.
ECG: Short QT (calcium shortens action potential plateau). Contrast with hypocalcemia → prolonged QT.
Vicious cycle: Hypercalcemia → polyuria → dehydration → ↓ GFR → ↓ Ca excretion → worse hypercalcemia.
Key drugs: Thiazides (↑ Ca reabsorption, unlike loops). Lithium (shifts CaSR set point). Don't use loop diuretics as primary treatment for hypercalcemia — effect is not that marked.
Calcium homeostasis: PTH (4 min half-life, chief cells) vs Calcitonin (60 min, C cells). PTH raises Ca; calcitonin lowers it. Vitamin D needs liver (25-hydroxylase) and kidney (1α-hydroxylase) for activation.
High Yield Summary — Differential Diagnosis of Hypercalcemia
-
90% rule: PHPT + Malignancy = ~90% of all hypercalcemia. PHPT dominates outpatient, malignancy dominates inpatient.
-
PTH is the pivotal first test: High/normal PTH → PTH-mediated (PHPT, FHH, lithium, tertiary HPT). Low PTH → Non-PTH-mediated (malignancy, granulomatous, vitamin D, drugs, thyrotoxicosis, immobilization).
-
Always exclude FHH before parathyroidectomy referral — 24h urine calcium, Ca:Cr clearance ratio < 0.01 = FHH (benign, no surgery).
-
Phosphate is low in PHPT (PTH causes phosphaturia). If phosphate is normal, question the diagnosis.
-
ALP is normal in myeloma despite extensive lytic bone disease (no osteoblastic response). Bone scan may be falsely negative in myeloma.
-
Malignancy mechanisms: PTHrP (~80%, SCC lung), osteolytic mets (myeloma, breast), ectopic 1,25(OH)₂D (lymphoma), ectopic PTH (rare).
-
Granulomatous disease (sarcoidosis, TB): Ectopic 1α-hydroxylase in macrophages → ↑ 1,25(OH)₂D → responds to glucocorticoids. TB is highly relevant in Hong Kong.
-
Drug causes: Thiazides (↑ DCT Ca reabsorption), lithium (shifts CaSR set point), vitamin D/A excess.
-
Thiazides cause hypercalcemia (↑ reabsorption), loop diuretics cause hypocalcemia (calciuric). Don't confuse the two.
-
For delirium/dementia workup: Always check Ca as part of minimum investigations to exclude reversible metabolic causes.
High Yield Summary — Diagnosis and Investigations
- Always correct calcium for albumin before interpretation. Use ionized Ca if albumin < 20 or paraproteinaemia.
- PTH is the pivotal first branch-point — divides all hypercalcemia into PTH-mediated vs non-PTH-mediated.
- PHPT evaluation panel: Ca, PO₄, ALP, Cr/eGFR, 25(OH)D, PTH, 3-site DEXA, vertebral fracture assessment, 24h urine Ca.
- FHH exclusion: CCCR < 0.01 = FHH (benign, no surgery). If phosphate is normal with high PTH → must exclude FHH.
- Myeloma clue: Normal ALP + lytic bone lesions + elevated globulin + anaemia. Bone scan may be falsely negative. Use skeletal survey or PET-CT.
- Non-PTH pathway investigations: PTHrP (HHM), 1,25(OH)₂D (granulomatous/lymphoma), 25(OH)D (toxicity), SPEP/UPEP/FLC (myeloma), TFTs (thyrotoxicosis).
- Biochemistry BEFORE imaging in endocrine — don't order sestamibi before confirming PTH-mediated disease.
- Surgical indications in PHPT: Ca > 0.25 above ULN, T-score ≤ −2.5, eGFR < 60, nephrolithiasis/nephrocalcinosis, age < 50.
High Yield Summary — Management of Hypercalcemia
Acute management (SAQ): Monitor ECG and I/O → Stop Ca/Vit D supplements and thiazides → IV NS 200–500 mL/h → Furosemide ONLY if volume overloaded → IV bisphosphonate (onset 1–2 days, eGFR must be > 30) → Calcitonin as bridge (onset 2–3h, tachyphylaxis after 48–72h) → Glucocorticoids ONLY for vitamin D–mediated causes → Denosumab if bisphosphonate fails or eGFR < 30 → Dialysis as last resort (Ca > 4.5 with renal failure).
Furosemide misconception: NOT a primary treatment for hypercalcemia. Only for volume overload during rehydration.
Bisphosphonate caution: Contraindicated in eGFR < 30; beware pseudo-low eGFR from dehydration — rehydrate first, reassess eGFR, then decide.
Surgery for PHPT: Indications — all symptomatic patients; asymptomatic if age < 50, Ca > 0.25 above ULN, eGFR < 60, nephrolithiasis/nephrocalcinosis, T-score ≤ −2.5. Contraindicated in FHH (no cure from surgery), bilateral RLN injury.
Post-parathyroidectomy: Watch for hungry bone syndrome (profound hypocalcemia from calcium rushing into demineralized bone).
Tertiary HPT: Cinacalcet first-line medical; surgery if persistent severe hypercalcemia or progressive symptoms.
Treat the cause: All acute measures are bridges. Definitive management = parathyroidectomy (PHPT), chemotherapy (malignancy), steroids + anti-TB (granulomatous), stop drug (drug-induced).
High Yield Summary — Complications of Hypercalcemia
Renal (most common organ affected):
- Nephrolithiasis (MC complication), nephrocalcinosis, nephrogenic DI → polyuria/dehydration, AKI (pre-renal), CKD (chronic tubulointerstitial damage).
- Vicious cycle: polyuria → dehydration → ↓ GFR → ↓ Ca excretion → worsening hypercalcemia.
Cardiac:
- Short QT (earliest ECG change), arrhythmias (VT/VF), heart block, cardiac arrest (Ca > 4.5).
- Digitalis sensitivity — always check calcium in digoxin toxicity.
- Hypertension, LVH, vascular calcification (chronic).
Skeletal (PHPT-specific):
- Osteoporosis (cortical > trabecular), pathological fractures (2–3× risk), osteitis fibrosa cystica (brown tumours, subperiosteal resorption, salt-and-pepper skull), chondrocalcinosis/pseudogout.
GI: PUD (↑ gastrin), pancreatitis, constipation/ileus, nausea/vomiting.
Neuropsychiatric: Confusion ("confused and dehydrated"), depression, psychosis, proximal myopathy, coma, seizures, death.
Treatment complications:
- IV saline → fluid overload, hypokalaemia, hypomagnesaemia.
- Bisphosphonates → nephrotoxicity (eGFR < 30 contraindication), ONJ, atypical fractures, acute phase reaction.
- Calcitonin → tachyphylaxis after 48–72h.
- Denosumab → hypocalcaemia (replenish Vit D first), rebound hypercalcaemia on cessation.
- Parathyroidectomy → hungry bone syndrome (profound hypocalcemia), RLN injury, haemorrhage, persistent/recurrent HPT.
Hypocalcemia
Hypocalcemia is a metabolic condition defined by a serum calcium level below 8.5 mg/dL (or ionized calcium below 4.5 mg/dL), which can lead to neuromuscular irritability, tetany, and cardiac arrhythmias.
Minimal Change Disease
Minimal change disease is a glomerular disorder characterized by podocyte foot process effacement on electron microscopy with no visible changes on light microscopy, presenting as nephrotic syndrome most commonly in children.