Hypercalcemia

Hypercalcemia

CAT 5

CAT 5

Approach to differentiating lesions (brainstem): Clinical sciences
Approach to differentiating lesions (cerebellum): Clinical sciences
Approach to differentiating lesions (cerebral cortical and subcortical structures): Clinical sciences
Approach to differentiating lesions (motor neuron): Clinical sciences
Approach to differentiating lesions (muscle): Clinical sciences
Approach to differentiating lesions (nerve root, plexus, and peripheral nerve): Clinical sciences
Approach to differentiating lesions (neuromuscular junction): Clinical sciences
Approach to differentiating lesions (spinal cord): Clinical sciences
Approach to diplopia: Clinical sciences
Idiopathic intracranial hypertension: Clinical sciences
Multiple sclerosis: Clinical sciences
Myasthenia gravis: Clinical sciences
Approach to dysarthria or dysphagia: Clinical sciences
Guillain-Barré syndrome: Clinical sciences
Approach to gradual cognitive decline: Clinical sciences
Alzheimer disease: Clinical sciences
Parkinson disease and dementia with Lewy bodies: Clinical sciences
Approach to headache or facial pain: Clinical sciences
Primary headaches (tension, migraine, and cluster): Clinical sciences
Subarachnoid hemorrhage: Clinical sciences
Temporal arteritis: Clinical sciences
Approach to involuntary movements: Clinical sciences
Approach to tremor: Clinical sciences
Approach to medication-induced movement disorders: Clinical sciences
Approach to urinary incontinence (GYN): Clinical sciences
Stress, urge, overflow, and mixed urinary incontinence (GYN): Clinical sciences
Urinary retention: Clinical sciences
Approach to weakness (focal and generalized): Clinical sciences
Acute stroke (ischemic or hemorrhagic) or TIA: Clinical sciences
Approach to altered mental status: Clinical sciences
Delirium: Clinical sciences
Approach to aphasia: Clinical sciences
Approach to dizziness and vertigo: Clinical sciences
Approach to back pain: Clinical sciences
Approach to unsteadiness, gait disturbance, or falls: Clinical sciences
Approach to acute vision loss: Clinical sciences
Approach to blunt cerebrovascular injury: Clinical sciences
Approach to convulsive status epilepticus: Clinical sciences
Approach to encephalitis: Clinical sciences
Approach to encephalopathy (acute and subacute): Clinical sciences
Approach to increased intracranial pressure: Clinical sciences
Approach to traumatic brain injury (pediatrics): Clinical sciences
Approach to traumatic brain injury: Clinical sciences
Brain death: Clinical sciences
Hepatic encephalopathy: Clinical sciences
Meningitis and brain abscess: Clinical sciences
Uremic encephalopathy: Clinical sciences
Approach to compressive mononeuropathies: Clinical sciences
Approach to epilepsy: Clinical sciences
Approach to facial palsy: Clinical sciences
Approach to polyneuropathy: Clinical sciences
Inflammatory myopathies: Clinical sciences
Anatomy clinical correlates: Glossopharyngeal (CN IX), vagus (X), spinal accessory (CN XI) and hypoglossal (CN XII) nerves
Anatomy clinical correlates: Anterior blood supply to the brain
Anatomy clinical correlates: Cerebral hemispheres
Anatomy clinical correlates: Cerebellum and brainstem
Anatomy clinical correlates: Posterior blood supply to the brain
Anatomy clinical correlates: Spinal cord pathways
Anatomy clinical correlates: Vertebral canal
Anatomy clinical correlates: Olfactory (CN I) and optic (CN II) nerves
Anatomy clinical correlates: Oculomotor (CN III), trochlear (CN IV) and abducens (CN VI) nerves
Anatomy clinical correlates: Trigeminal nerve (CN V)
Anatomy clinical correlates: Facial (CN VII) and vestibulocochlear (CN VIII) nerves
Anatomy clinical correlates: Hip, gluteal region and thigh
Anatomy clinical correlates: Median, ulnar and radial nerves
Anatomy clinical correlates: Wrist and hand
Cerebral vascular disease: Pathology review
Demyelinating disorders: Pathology review
Neuromuscular junction disorders: Pathology review
Autosomal trisomies: Pathology review
Congenital neurological disorders: Pathology review
Developmental and learning disorders: Pathology review
Miscellaneous genetic disorders: Pathology review
Vertigo: Pathology review
Movement disorders: Pathology review
Dementia: Pathology review
Central nervous system infections: Pathology review
Headaches: Pathology review
Traumatic brain injury: Pathology review
Vasculitis: Pathology review
Back pain: Pathology review
Apnea, hypoventilation and pulmonary hypertension: Pathology review
Psychological sleep disorders: Pathology review
Urinary incontinence: Pathology review
Myalgias and myositis: Pathology review
Eye conditions: Inflammation, infections and trauma: Pathology review
Eye conditions: Refractive errors, lens disorders and glaucoma: Pathology review
Eye conditions: Retinal disorders: Pathology review
Seizures: Pathology review
Muscular dystrophies and mitochondrial myopathies: Pathology review
Spinal cord disorders: Pathology review
Anatomy of the basal ganglia
Anatomy of the blood supply to the brain
Anatomy of the brainstem
Anatomy of the cerebellum
Anatomy of the cerebral cortex
Anatomy of the cranial base
Anatomy of the cranial meninges and dural venous sinuses
Anatomy of the diencephalon
Anatomy of the limbic system
Anatomy of the ventricular system
Anatomy of the white matter tracts
Bones of the cranium
Anatomy of the external and middle ear
Anatomy of the eye
Anatomy of the inner ear
Development of the face and palate
Development of the nervous system
Development of the eye
Development of the ear
Central nervous system histology
Peripheral nervous system histology
Eye and ear histology
Varicella zoster virus
Serotonin syndrome
Broca aphasia
Wernicke aphasia
Intracerebral hemorrhage
Subarachnoid hemorrhage
Epidural hematoma
Subdural hematoma
Ischemic stroke
Transient ischemic attack
Cerebral palsy
Spina bifida
Bell palsy
Charcot-Marie-Tooth disease
Guillain-Barre syndrome
Sciatica
Alzheimer disease
Multiple sclerosis
Cauda equina syndrome
Vitamin B12 deficiency
Delirium
Huntington disease
Parkinson disease
Fibromyalgia
Trigeminal neuralgia
Seizures and epilepsy
Cranial nerves
Ascending and descending spinal tracts
Anatomy of the abdominal viscera: Kidneys, ureters and suprarenal glands
Anatomy of the urinary organs of the pelvis
Anatomy of the perineum
Anatomy of the male urogenital triangle
Anatomy of the female urogenital triangle
Anatomy clinical correlates: Other abdominal organs
Anatomy clinical correlates: Female pelvis and perineum
Anatomy clinical correlates: Male pelvis and perineum
Development of the renal system
Kidney histology
Ureter, bladder and urethra histology
Chlamydia trachomatis
Neisseria gonorrhoeae
Bladder exstrophy
Horseshoe kidney
Hydronephrosis
Hypospadias and epispadias
Potter sequence
Renal agenesis
Hypercalcemia
Hyperkalemia
Hypermagnesemia
Hypernatremia
Hyperphosphatemia
Hypocalcemia
Hypokalemia
Hypomagnesemia
Hyponatremia
Hypophosphatemia
Acute pyelonephritis
Chronic pyelonephritis
Lower urinary tract infection
Lupus nephritis
Diabetic nephropathy
Chronic kidney disease
Kidney stones
Angiomyolipoma
Medullary cystic kidney disease
Non-urothelial bladder cancers
Nephroblastoma (Wilms tumor)
Renal cell carcinoma
Transitional cell carcinoma
Urinary incontinence
Renal artery stenosis
Acid-base disturbances: Pathology review
Electrolyte disturbances: Pathology review
Urinary tract infections: Pathology review
Renal failure: Pathology review
Renal tubular acidosis: Pathology review
Kidney stones: Pathology review
Renal tubular defects: Pathology review
Renal and urinary tract masses: Pathology review
ACE inhibitors, ARBs and direct renin inhibitors
Carbonic anhydrase inhibitors
Loop diuretics
Osmotic diuretics
Potassium sparing diuretics
Thiazide and thiazide-like diuretics
Acid-base map and compensatory mechanisms
Buffering and Henderson-Hasselbalch equation
Physiologic pH and buffers
The role of the kidney in acid-base balance
Metabolic acidosis
Plasma anion gap
Respiratory acidosis
Metabolic alkalosis
Respiratory alkalosis
Renal system anatomy and physiology
Glomerular filtration
Measuring renal plasma flow and renal blood flow
Regulation of renal blood flow
Renal clearance
TF/Px ratio and TF/Pinulin
Phosphate, calcium and magnesium homeostasis
Potassium homeostasis
Sodium homeostasis
Erythropoietin
Vitamin D
Antidiuretic hormone
Distal convoluted tubule
Loop of Henle
Proximal convoluted tubule
Urea recycling
Renin-angiotensin-aldosterone system
Polycystic kidney disease
Approach to cystic kidney disease: Clinical sciences
Chronic kidney disease: Clinical sciences
Lower urinary tract infection: Clinical sciences
Nephritic syndromes: Pathology review
Nephrotic syndromes: Pathology review
Rapidly progressive glomerulonephritis
IgA nephropathy (NORD)
Membranoproliferative glomerulonephritis
Poststreptococcal glomerulonephritis
Goodpasture syndrome
Prerenal acute kidney injury: Clinical sciences
Intrinsic acute kidney injury (glomerular causes): Clinical sciences
Approach to acute kidney injury: Clinical sciences

Transcript

Watch video only

With hypercalcemia, hyper -means over and -calc- refers to calcium, and -emia refers to the blood, so hypercalcemia means higher than normal calcium levels in the blood, generally over 10.5 mg/dL.

Now, calcium exists as an ion with a double positive charge - Ca2+ - and it’s the most abundant metal in the human body.

So I know what you’re thinking - yeah, we’re all pretty much cyborgs,- Cool, huh?

So about 99% of that calcium is in our bones in the form of calcium phosphate, also called hydroxyapatite.

The last 1% is split so that the majority, about 0.99% is extracellular - which means in the blood and in the interstitial space between cells, and 0.01% is intracellular or inside cells.

High levels of intracellular calcium causes cells to die.

In fact, that’s exactly what happens during apoptosis, also known as programmed cell death.

For that reason, cells end up spending a lot of energy just keeping their intracellular calcium levels low.

Now, calcium gets into the cell through two types of channels, or cell doors, within the cell membrane.

The first type are ligand-gated channels, which are what most cells use to let calcium in, and are primarily controlled by hormones or neurotransmitters.

The second type are voltage-gated channels, which are mostly found in muscle and nerve cells and are primarily controlled by changes in the electrical membrane potential.

So calcium flows in through these channels, and to prevent calcium levels from rising too high, cells kick excess calcium right back out with ATP-dependent calcium pumps as well as Na+-Ca2+ exchangers.

In addition, most of the intracellular calcium is stored within organelles like the mitochondria and smooth endoplasmic reticulum and is released selectively just when it's needed.

Now, the majority of the extracellular calcium is split almost equally between two groups - calcium that is diffusible and calcium that is not diffusible.

Diffusible calcium is separated into two subcategories: free-ionized calcium, which is involved in all sorts of cellular processes like neuronal action potentials, contraction of skeletal, smooth, and cardiac muscle, hormone secretion, and blood coagulation, all of which are tightly regulated by enzymes and hormones.

The other category is complexed calcium, which is where the positively charged calcium is ionically linked to tiny negatively charged molecules like oxalate, which is a small anions that’s normally found in our blood in small amounts.

The complexed calcium forms a molecule that’s electrically neutral and small enough to cross cell membranes, but, unlike free-ionized calcium is not useful for cellular processes.

Finally, though, there’s the non-diffusible calcium which is bound to negatively charged proteins like albumin and globulin, and the resulting protein-calcium complex is too large and charged to cross membranes, leaving this calcium also uninvolved in cellular processes.

When the body’s levels of extracellular calcium change, it’s detected by a surface receptor in parathyroid cells called the calcium-sensing receptor.

This affects the amount of parathyroid hormone that gets released by the parathyroid gland.

The parathyroid hormone gets the bones to release calcium, and gets the kidneys to reabsorb more calcium so it's not lost in the urine and synthesize calcitriol also known as active vitamin D.

Active vitamin D then goes on to increase calcium absorption in the gastrointestinal tract.

All together, these effects help to keep the extracellular levels of calcium within a very narrow range, between 8.5 to 10 mg/dl.

Sometimes, though, total calcium levels in the blood, which includes both diffusible and non-diffusible - blood can vary a bit, depending on the blood's pH and protein levels.

This happens because albumin has acidic amino acids, like glutamate and aspartate, which have some carboxyl groups that are in the form of COO- or COOH.

Overall the balance of COOi and COOH changes based on the pH of the blood.

Now, when there’s a low pH, or acidosis, there are plenty of protons or H+ ions floating around, and a lot of those COO- groups pick up a proton and become COOH.

More COOH groups make albumin more positively charged, and since calcium is positively charged, these two repel each other, and this decreases bound calcium and increases the proportion of free ionized calcium in blood.

So as more protons bind albumin, more free ionized calcium builds up in the blood, and so even though total levels calcium are the same, there’s less bound calcium and more ionized calcium, which remember is important for cellular processes and can lead to symptoms of hypercalcemia.

Sources

  1. "Robbins Basic Pathology" Elsevier (2017)
  2. "Harrison's Principles of Internal Medicine, Twentieth Edition (Vol.1 & Vol.2)" McGraw-Hill Education / Medical (2018)
  3. "Pathophysiology of Disease: An Introduction to Clinical Medicine 8E" McGraw-Hill Education / Medical (2018)
  4. "CURRENT Medical Diagnosis and Treatment 2020" McGraw-Hill Education / Medical (2019)
  5. "Calcium block of Na <sup>+</sup> channels and its effect on closing rate" Proceedings of the National Academy of Sciences (1999)
  6. "The diagnosis and management of hypercalcaemia" BMJ (2015)
  7. "Osborn waves in a hypothermic patient" Journal of Community Hospital Internal Medicine Perspectives (2012)