Electrolyte disturbances: Pathology review

Last updated: November 01, 2022

Electrolyte disturbances: Pathology review

End of Rotation™ exam review

Cardiovascular

Anatomy clinical correlates: Heart
Anatomy clinical correlates: Mediastinum
Aortic dissections and aneurysms: Pathology review
Coronary artery disease: Pathology review
Endocarditis: Pathology review
Heart blocks: Pathology review
Hypertension: Pathology review
Peripheral artery disease: Pathology review
Shock: Pathology review
Supraventricular arrhythmias: Pathology review
Valvular heart disease: Pathology review
Ventricular arrhythmias: Pathology review
Abdominal aortic aneurysm: Clinical sciences
Acute coronary syndrome: Clinical sciences
Acute limb ischemia: Clinical sciences
Aortic dissection: Clinical sciences
Aortic stenosis: Clinical sciences
Approach to bradycardia: Clinical sciences
Approach to chest pain: Clinical sciences
Approach to dyspnea: Clinical sciences
Approach to hypertension: Clinical sciences
Approach to shock (pediatrics): Clinical sciences
Approach to shock: Clinical sciences
Approach to syncope: Clinical sciences
Approach to tachycardia: Clinical sciences
Approach to trauma (pediatrics): Clinical sciences
Atrial fibrillation and atrial flutter: Clinical sciences
Atrioventricular block: Clinical sciences
Cardiac tamponade: Clinical sciences
Congestive heart failure: Clinical sciences
Coronary artery disease: Clinical sciences
Deep vein thrombosis: Clinical sciences
Hypovolemic shock: Clinical sciences
Infectious endocarditis: Clinical sciences
Mitral stenosis: Clinical sciences
ACE inhibitors, ARBs and direct renin inhibitors
Adrenergic antagonists: Alpha blockers
Adrenergic antagonists: Beta blockers
Adrenergic antagonists: Presynaptic
Calcium channel blockers
Cholinomimetics: Direct agonists
Cholinomimetics: Indirect agonists (anticholinesterases)
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class III antiarrhythmics: Potassium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
Lipid-lowering medications: Fibrates
Lipid-lowering medications: Statins
Miscellaneous lipid-lowering medications
Muscarinic antagonists
Positive inotropic medications
Sympatholytics: Alpha-2 agonists
Sympathomimetics: Direct agonists
Thiazide and thiazide-like diuretics

ENOT and ophthalmology

Anatomy clinical correlates: Skull, face and scalp
Anatomy clinical correlates: Temporal regions, oral cavity and nose
Anatomy clinical correlates: Eye
Anatomy clinical correlates: Ear
Anatomy clinical correlates: Vessels, nerves and lymphatics of the neck
Anatomy clinical correlates: Viscera of the neck
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: Glossopharyngeal (CN IX), vagus (X), spinal accessory (CN XI) and hypoglossal (CN XII) nerves
Eye conditions: Inflammation, infections and trauma: Pathology review
Eye conditions: Refractive errors, lens disorders and glaucoma: Pathology review
Eye conditions: Retinal disorders: Pathology review
Nasal, oral and pharyngeal diseases: Pathology review
Vertigo: Pathology review
Allergic rhinitis: Clinical sciences
Approach to a red eye: Clinical sciences
Approach to acute vision loss: Clinical sciences
Approach to diplopia: Clinical sciences
Conjunctival disorders: Clinical sciences
Croup and epiglottitis: Clinical sciences
Eyelid disorders: Clinical sciences
Foreign body aspiration and ingestion (pediatrics): Clinical sciences
Glaucoma: Clinical sciences
Otitis media and externa (pediatrics): Clinical sciences
Periorbital and orbital cellulitis (pediatrics): Clinical sciences
Pharyngitis, peritonsillar abscess, and retropharyngeal abscess (pediatrics): Clinical sciences
Upper respiratory tract infections: Clinical sciences
Antihistamines for allergies

Gastrointestinal and nutritional

Anatomy clinical correlates: Anterior and posterior abdominal wall
Anatomy clinical correlates: Inguinal region
Anatomy clinical correlates: Peritoneum and diaphragm
Anatomy clinical correlates: Viscera of the gastrointestinal tract
Anatomy clinical correlates: Other abdominal organs
Appendicitis: Pathology review
Cirrhosis: Pathology review
Diverticular disease: Pathology review
Esophageal disorders: Pathology review
Gallbladder disorders: Pathology review
Gastrointestinal bleeding: Pathology review
GERD, peptic ulcers, gastritis, and stomach cancer: Pathology review
Inflammatory bowel disease: Pathology review
Jaundice: Pathology review
Malabsorption syndromes: Pathology review
Pancreatitis: Pathology review
Viral hepatitis: Pathology review
Adenovirus
Cytomegalovirus
Norovirus
Rotavirus
Bacillus cereus (Food poisoning)
Campylobacter jejuni
Clostridium difficile (Pseudomembranous colitis)
Clostridium perfringens
Escherichia coli
Salmonella (non-typhoidal)
Shigella
Staphylococcus aureus
Vibrio cholerae (Cholera)
Yersinia enterocolitica
Cryptosporidium
Entamoeba histolytica (Amebiasis)
Giardia lamblia
Acute mesenteric ischemia: Clinical sciences
Gastroesophageal reflux disease (pediatrics): Clinical sciences
Diverticulitis: Clinical sciences
Approach to medication exposure (pediatrics): Clinical sciences
Gastroesophageal varices: Clinical sciences
Dehydration (pediatrics): Clinical sciences
Approach to melena and hematemesis (pediatrics): Clinical sciences
Acute pancreatitis: Clinical sciences
Approach to melena and hematemesis: Clinical sciences
Hemorrhoids: Clinical sciences
Esophagitis: Clinical sciences
Approach to periumbilical and lower abdominal pain: Clinical sciences
Alcohol-induced hepatitis: Clinical sciences
Femoral hernias: Clinical sciences
Hepatitis A and E: Clinical sciences
Approach to pneumoperitoneum and peritonitis (perforated viscus): Clinical sciences
Anal fissure: Clinical sciences
Hepatitis B: Clinical sciences
Gastritis: Clinical sciences
Approach to postoperative abdominal pain: Clinical sciences
Gastroesophageal reflux disease: Clinical sciences
Hepatitis C: Clinical sciences
Appendicitis: Clinical sciences
Approach to abdominal wall and groin masses: Clinical sciences
Approach to the acute abdomen (pediatrics): Clinical sciences
Infectious gastroenteritis (acute) (pediatrics): Clinical sciences
Approach to upper abdominal pain: Clinical sciences
Approach to acute abdominal pain (pediatrics): Clinical sciences
Infectious gastroenteritis (subacute) (pediatrics): Clinical sciences
Approach to ascites: Clinical sciences
Infectious gastroenteritis: Clinical sciences
Approach to vomiting (acute): Clinical sciences
Approach to biliary colic: Clinical sciences
Inflammatory bowel disease (Crohn disease): Clinical sciences
Approach to vomiting (chronic): Clinical sciences
Approach to vomiting (pediatrics): Clinical sciences
Inflammatory bowel disease (ulcerative colitis): Clinical sciences
Approach to constipation (pediatrics): Clinical sciences
Cholecystitis: Clinical sciences
Inguinal hernias: Clinical sciences
Approach to constipation: Clinical sciences
Choledocholithiasis and cholangitis: Clinical sciences
Ischemic colitis: Clinical sciences
Approach to chronic abdominal pain (pediatrics): Clinical sciences
Chronic mesenteric ischemia: Clinical sciences
Large bowel obstruction: Clinical sciences
Approach to diarrhea (chronic): Clinical sciences
Cirrhosis: Clinical sciences
Mallory-Weiss syndrome: Clinical sciences
Approach to diarrhea (pediatrics): Clinical sciences
Peptic ulcer disease: Clinical sciences
Clostridioides difficile infection: Clinical sciences
Approach to hematochezia (pediatrics): Clinical sciences
Approach to hematochezia: Clinical sciences
Colonic volvulus: Clinical sciences
Peptic ulcers, gastritis, and duodenitis (pediatrics): Clinical sciences
Perianal abscess and fistula: Clinical sciences
Approach to household substance exposure (pediatrics): Clinical sciences
Small bowel obstruction: Clinical sciences
Approach to jaundice (conjugated hyperbilirubinemia): Clinical sciences
Spontaneous bacterial peritonitis: Clinical sciences
Approach to jaundice (newborn and infant): Clinical sciences
Approach to jaundice (unconjugated hyperbilirubinemia): Clinical sciences
Umbilical hernias: Clinical sciences
Ventral and incisional hernias: Clinical sciences
Acid reducing medications
Antidiarrheals
Laxatives and cathartics

Neurology

Anatomy clinical correlates: Cerebral hemispheres
Anatomy clinical correlates: Cerebellum and brainstem
Anatomy clinical correlates: Anterior blood supply to the brain
Anatomy clinical correlates: Posterior blood supply to the brain
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: Glossopharyngeal (CN IX), vagus (X), spinal accessory (CN XI) and hypoglossal (CN XII) nerves
Anatomy clinical correlates: Spinal cord pathways
Anatomy clinical correlates: Vertebral canal
Amnesia, dissociative disorders and delirium: Pathology review
Central nervous system infections: Pathology review
Cerebral vascular disease: Pathology review
Dementia: Pathology review
Demyelinating disorders: Pathology review
Headaches: Pathology review
Neuromuscular junction disorders: Pathology review
Seizures: Pathology review
Traumatic brain injury: Pathology review
Vertigo: Pathology review
Acute stroke (ischemic or hemorrhagic) or TIA: Clinical sciences
Approach to a first unprovoked seizure (pediatrics): Clinical sciences
Approach to altered mental status (pediatrics): Clinical sciences
Approach to altered mental status: Clinical sciences
Approach to blunt cerebrovascular injury: Clinical sciences
Approach to convulsive status epilepticus: Clinical sciences
Approach to differentiating lesions (motor neuron): Clinical sciences
Approach to differentiating lesions (nerve root, plexus, and peripheral nerve): Clinical sciences
Approach to dizziness and vertigo: Clinical sciences
Approach to encephalitis: Clinical sciences
Approach to encephalopathy (acute and subacute): Clinical sciences
Approach to epilepsy: Clinical sciences
Approach to facial palsy: Clinical sciences
Approach to headache or facial pain: Clinical sciences
Approach to household substance exposure (pediatrics): Clinical sciences
Approach to increased intracranial pressure: Clinical sciences
Approach to syncope: Clinical sciences
Approach to trauma (pediatrics): Clinical sciences
Approach to traumatic brain injury (pediatrics): Clinical sciences
Approach to traumatic brain injury: Clinical sciences
Approach to unsteadiness, gait disturbance, or falls: Clinical sciences
Approach to weakness (focal and generalized): Clinical sciences
Guillain-Barré syndrome: Clinical sciences
Meningitis and brain abscess: Clinical sciences
Meningitis (pediatrics): Clinical sciences
Multiple sclerosis: Clinical sciences
Primary headaches (tension, migraine, and cluster): Clinical sciences
Subarachnoid hemorrhage: Clinical sciences
Anticonvulsants and anxiolytics: Barbiturates
Anticonvulsants and anxiolytics: Benzodiazepines
Antiplatelet medications
General anesthetics
Local anesthetics
Migraine medications
Neuromuscular blockers
Nonbenzodiazepine anticonvulsants
Osmotic diuretics
Thrombolytics

Obstetrics and gynecology

Anatomy clinical correlates: Breast
Anatomy clinical correlates: Female pelvis and perineum
Amenorrhea: Pathology review
Benign breast conditions: Pathology review
Complications during pregnancy: Pathology review
Ovarian cysts and tumors: Pathology review
Sexually transmitted infections: Vaginitis and cervicitis: Pathology review
Sexually transmitted infections: Warts and ulcers: Pathology review
Uterine disorders: Pathology review
Vaginal and vulvar disorders: Pathology review
Adenomyosis: Clinical sciences
Adnexal torsion: Clinical sciences
Approach to abnormal uterine bleeding in reproductive-aged patients: Clinical sciences
Approach to acute pelvic pain (GYN): Clinical sciences
Approach to adnexal masses: Clinical sciences
Approach to breast pain (mastalgia): Clinical sciences
Approach to chronic pelvic pain (GYN): Clinical sciences
Approach to first trimester bleeding: Clinical sciences
Approach to postmenopausal bleeding: Clinical sciences
Approach to primary amenorrhea: Clinical sciences
Approach to secondary amenorrhea: Clinical sciences
Approach to third trimester bleeding: Clinical sciences
Approach to vaginal discharge: Clinical sciences
Bacterial vaginosis: Clinical sciences
Breast abscess: Clinical sciences
Chlamydia trachomatis infection: Clinical sciences
Early pregnancy loss: Clinical sciences
Ectopic pregnancy: Clinical sciences
Endometriosis: Clinical sciences
Mastitis: Clinical sciences
Neisseria gonorrhoeae infection: Clinical sciences
Pelvic inflammatory disease: Clinical sciences
Placenta previa and vasa previa: Clinical sciences
Placental abruption: Clinical sciences
Prelabor rupture of membranes: Clinical sciences
Preterm labor: Clinical sciences
Primary dysmenorrhea: Clinical sciences
Vaginal trichomoniasis: Clinical sciences
Vulvovaginal candidiasis: Clinical sciences
Aromatase inhibitors
Estrogens and antiestrogens
Progestins and antiprogestins
Uterine stimulants and relaxants

Psychiatry (behavioral medicine)

Amnesia, dissociative disorders and delirium: Pathology review
Anxiety disorders, phobias and stress-related disorders: Pathology Review
Dementia: Pathology review
Drug misuse, intoxication and withdrawal: Alcohol: Pathology review
Drug misuse, intoxication and withdrawal: Hallucinogens: Pathology review
Drug misuse, intoxication and withdrawal: Other depressants: Pathology review
Drug misuse, intoxication and withdrawal: Stimulants: Pathology review
Malingering, factitious disorders and somatoform disorders: Pathology review
Mood disorders: Pathology review
Psychiatric emergencies: Pathology review
Trauma- and stress-related disorders: Pathology review
Alcohol use disorder: Clinical sciences
Alcohol withdrawal: Clinical sciences
Approach to anxiety disorders: Clinical sciences
Approach to mood disorders: Clinical sciences
Approach to schizophrenia spectrum and other psychotic disorders: Clinical sciences
Delirium: Clinical sciences
Generalized anxiety disorder, agoraphobia, and panic disorder: Clinical sciences
Intimate partner violence and sexual assault: Clinical sciences
Non-accidental trauma and neglect (pediatrics): Clinical sciences
Opioid intoxication and overdose: Clinical sciences
Opioid use disorder: Clinical sciences
Opioid withdrawal syndrome: Clinical sciences
Perinatal depression and anxiety: Clinical sciences
Substance use disorder: Clinical sciences
Anticonvulsants and anxiolytics: Barbiturates
Anticonvulsants and anxiolytics: Benzodiazepines
Atypical antidepressants
Atypical antipsychotics
Lithium
Monoamine oxidase inhibitors
Nonbenzodiazepine anticonvulsants
Opioid agonists, mixed agonist-antagonists and partial agonists
Opioid antagonists
Psychomotor stimulants
Selective serotonin reuptake inhibitors
Serotonin and norepinephrine reuptake inhibitors
Tricyclic antidepressants
Typical antipsychotics

Pulmonology

Anatomy clinical correlates: Pleura and lungs
Anatomy clinical correlates: Thoracic wall
Deep vein thrombosis and pulmonary embolism: Pathology review
Lung cancer and mesothelioma: Pathology review
Obstructive lung diseases: Pathology review
Pleural effusion, pneumothorax, hemothorax and atelectasis: Pathology review
Pneumonia: Pathology review
Respiratory distress syndrome: Pathology review
Tuberculosis: Pathology review
Acute respiratory distress syndrome: Clinical sciences
Airway obstruction: Clinical sciences
Approach to a cough (acute): Clinical sciences
Approach to a cough (pediatrics): Clinical sciences
Approach to a cough (subacute and chronic): Clinical sciences
Approach to chest pain: Clinical sciences
Approach to dyspnea: Clinical sciences
Approach to household substance exposure (pediatrics): Clinical sciences
Approach to trauma (pediatrics): Clinical sciences
Aspiration pneumonia and pneumonitis: Clinical sciences
Asthma: Clinical sciences
Bronchiolitis: Clinical sciences
Community-acquired pneumonia: Clinical sciences
Croup and epiglottitis: Clinical sciences
Foreign body aspiration and ingestion (pediatrics): Clinical sciences
Hospital-acquired and ventilator-associated pneumonia: Clinical sciences
Influenza: Clinical sciences
Lung cancer: Clinical sciences
Pleural effusion: Clinical sciences
Pneumothorax: Clinical sciences
Pulmonary embolism: Clinical sciences
Respiratory failure (pediatrics): Clinical sciences
Tuberculosis (extrapulmonary and latent): Clinical sciences
Tuberculosis (pulmonary): Clinical sciences
Upper respiratory tract infections: Clinical sciences
Bronchodilators: Beta 2-agonists and muscarinic antagonists
Bronchodilators: Leukotriene antagonists and methylxanthines
Pulmonary corticosteroids and mast cell inhibitors

Urology and renal

Anatomy clinical correlates: Female pelvis and perineum
Anatomy clinical correlates: Male pelvis and perineum
Anatomy clinical correlates: Other abdominal organs
Acid-base disturbances: Pathology review
Electrolyte disturbances: Pathology review
Kidney stones: Pathology review
Nephritic syndromes: Pathology review
Nephrotic syndromes: Pathology review
Penile conditions: Pathology review
Prostate disorders and cancer: Pathology review
Renal and urinary tract masses: Pathology review
Renal failure: Pathology review
Testicular and scrotal conditions: Pathology review
Urinary incontinence: Pathology review
Urinary tract infections: Pathology review
Approach to acid-base disorders: Clinical sciences
Approach to dysuria: Clinical sciences
Approach to acute kidney injury: Clinical sciences
Approach to hematuria (pediatrics): Clinical sciences
Approach to hypercalcemia: Clinical sciences
Approach to hyperkalemia: Clinical sciences
Approach to hypernatremia (pediatrics): Clinical sciences
Approach to hypernatremia: Clinical sciences
Approach to hypocalcemia (pediatrics): Clinical sciences
Approach to hypocalcemia: Clinical sciences
Approach to hypokalemia: Clinical sciences
Approach to hyponatremia (pediatrics): Clinical sciences
Approach to hyponatremia: Clinical sciences
Approach to metabolic acidosis: Clinical sciences
Approach to metabolic alkalosis: Clinical sciences
Approach to periumbilical and lower abdominal pain: Clinical sciences
Approach to respiratory acidosis: Clinical sciences
Approach to respiratory alkalosis: Clinical sciences
Approach to trauma (pediatrics): Clinical sciences
Approach to urinary incontinence (GYN): Clinical sciences
Femoral hernias: Clinical sciences
Inguinal hernias: Clinical sciences
Intrinsic acute kidney injury (glomerular causes): Clinical sciences
Intrinsic acute kidney injury (non-glomerular causes): Clinical sciences
Lower urinary tract infection: Clinical sciences
Neisseria gonorrhoeae infection: Clinical sciences
Nephritic syndromes (pediatrics): Clinical sciences
Nephrolithiasis: Clinical sciences
Postrenal acute kidney injury: Clinical sciences
Prerenal acute kidney injury: Clinical sciences
Pyelonephritis: Clinical sciences
Testicular torsion (pediatrics): Clinical sciences
Urinary retention: Clinical sciences
ACE inhibitors, ARBs and direct renin inhibitors
Adrenergic antagonists: Alpha blockers
Androgens and antiandrogens
Carbonic anhydrase inhibitors
Loop diuretics
Osmotic diuretics
PDE5 inhibitors
Potassium sparing diuretics
Thiazide and thiazide-like diuretics

Transcript

Watch video only

Two people came to the Emergency Department during your shift. One of them is 75-year-old Karen who has palpitations and muscle weakness. Karen also has heart failure and one of the medications she’s currently on is digitalis. The other one is 25-year-old Carmen who has tetany. On the clinical examination, Carmen has a positive Chvostek sign. In both these individuals, an ECG was done and levels of electrolytes were taken. Karen’s ECG showed a wide QRS complex with peaked T waves and high levels of potassium, while Carmen’s ECG showed prolonged QT and low levels of calcium.

Okay, now let’s start talking about electrolytes and what happens when their levels are either too high or too low.

Let’s begin with potassium, which is a cation that’s mostly in the intracellular fluid, or ICF for short. It’s essential for the normal functioning of excitable tissues, such as nerves and muscles, including the cardiac muscle, and also maintains the resting membrane potential.

So, with hyperkalemia, there’s too much potassium in the extracellular fluid or ECF. And in order for there to be hyperkalemia, there are two possibilities. The first is an external balance shift, like when there’s decreased potassium excretion by the kidneys, leading to increased serum potassium. There’s also internal balance shift where potassium moves out of cells, and into the interstitium and blood. One potential cause is hyperosmolarity. Osmolarity reflects the number of solute particles per liter of solvent, and normally, the osmolarity of the ICF equals the osmolarity of the ECF, even though the exact composition of solutes differs. So when there’s hyperosmolarity, this means that there’s something in the ECF that creates an osmotic force capable of dragging water from inside the cells, like glucose, for example. As water leaves the cells, the intracellular potassium concentration increases and this creates a driving force for potassium to leave the cell, leading to a rise in extracellular potassium and hyperkalemia.

Next, acid-base disturbances also play a role in this. pH reflects the concentration of hydrogen ions and normal blood pH is about 7.4. To maintain pH balance, hydrogen moves in and out of the cells. In order for hydrogen to move across the cell membrane, it must be accompanied by an anion, meaning an ion with a negative charge, or it must be exchanged for another cation, like potassium. When there’s an increase in the hydrogen ion concentration in the blood, this is called metabolic acidosis. As a coping mechanism, hydrogen must enter the cells in exchange for potassium, which leaves the cells. And this leads to hyperkalemia.

Another important mechanism is the sodium-potassium ATPase, which normally transports sodium out of the cell and potassium in. Commonly tested medications like digitalis and beta blockers block the sodium-potassium ATPase, so more potassium is left outside the cell, leading to hyperkalemia.

Another medication that causes internal potassium balance shift is succinylcholine. Succinylcholine combines with nicotinic receptors to inhibit neuromuscular transmission and produce skeletal muscle depolarization, which leads to relaxation. With depolarization, some of the potassium gets out of the cell which in turn can cause hyperkalemia. Finally, there’s cell lysis or cell damage. When cells are destroyed, they release all their potassium into the ECF which naturally, leads to hyperkalemia. Some examples of cell lysis include crush injuries, like when a piano falls on someone’s legs, or tumor lysis syndrome, which occurs when cancer treatment causes lots of tumor cells to die all at once, or rhabdomyolysis, which is the rapid destruction of skeletal muscle cells.

Alright, on to external potassium balance shifts resulting in hyperkalemia, which has to do with potassium intake and excretion. That said, simply taking in too much potassium can lead to hyperkalemia, but this would typically arise from rapid, excessive infusion of potassium into the bloodstream, like in individuals receiving intravenous fluids.

Most other cases, have to do with the kidneys and their ability to regulate what stays in the blood and what gets excreted into the urine. Now, an important hormone that helps regulate potassium reabsorption or secretion in the kidneys is aldosterone. Aldosterone promotes potassium secretion by the principal cells of the distal tubule and collecting duct of the nephron. So, in situations where somebody’s unable to produce enough aldosterone, which is called hypoaldosteronism, there’s less potassium secretion by the principal cells, and therefore more potassium is retained, leading to hyperkalemia. Along the same lines, medications that reduce the effect of aldosterone can also cause hyperkalemia, and these include renin inhibitors, ACE inhibitors, angiotensin II receptor antagonists, selective aldosterone blockers, and potassium-sparing diuretics.

Acute and chronic kidney injury can also cause hyperkalemia because both can impair potassium excretion. Some associated clues include oliguria or anuria, which means decreased or no urine excretion, volume overload and in advanced stages, uremia, which refers to the accumulation of uremic toxins, including urea itself.

Moving on to causes of hypokalemia, which is when there’s too little potassium in the ECF, there are, similarly, two possibilities. The first is an external balance shift most often caused by an increase in potassium excretion in the kidneys, and the second is an internal balance shift where potassium moves into the cells, from the interstitium and blood.

One high-yield cause of internal potassium shift is hyposmolality, meaning there are too little osmotic substances, like when there’s hyponatremia, for example, then water goes back into the cells and can sometimes even drag potassium along with it, leading to hypokalemia. However, bear in mind that alternatively, in some cases of hyperosmolarity, like in hyperglycemic hyperosmolar state, or HHS, which is a complication of diabetes mellitus, osmolarity can get so high that it leads to osmotic diuresis. Osmotic diuresis can also drag that potassium into the urine. And this may lead to total body potassium loss and hypokalemia.

Now, with acid-base disturbances, when there’s a primary decrease in the hydrogen concentration in the blood, this is called metabolic alkalosis. As a coping mechanism, hydrogen must leave the cells in exchange for potassium. More potassium gets inside the cells and this leads to hypokalemia.

Next, there are things that affect the sodium-potassium ATPase. Specifically, beta agonists promote the activity of the sodium-potassium ATPase, leading to hypokalemia. Next, there’s insulin which normally stimulates the sodium-potassium ATPase. When there’s insulin deficiency, like with diabetes mellitus, there can also be hyperkalemia and when there’s too much insulin, there can be hypokalemia.

Moving on to external potassium balance shifts resulting in hypokalemia, these have to do with potassium intake or excretion. Low potassium intake is rare since potassium is abundant in most foods. So it typically happens in cases of anorexia, prolonged fasting, or specific types of diets. Excess potassium excretion from the kidneys is a lot more common. In situations where somebody produces too much aldosterone, like primary hyperaldosteronism, called Conn syndrome, there’s more potassium secretion by the principal cells, meaning more gets excreted in the urine. Other pathological conditions that cause increased aldosterone levels include compensated heart failure and cirrhosis. For your exams, it’s important to know that loop diuretics and thiazide diuretics also increase potassium excretion in the urine.

Alternatively, potassium can be lost through increased gastrointestinal secretions, typically due to vomiting and diarrhea, like from infections, inflammatory bowel diseases, as well as laxative abuse. Finally, a very small amount of potassium is also lost in sweat, which could come up in your test as an individual who exercises a lot in a hot climate.

Now, once a person has hypo- or hyperkalemia, the first thing to do is an ECG. That’s because the resting membrane potential of the cardiomyocytes depends on potassium balance. With hyperkalemia, the main changes are wide QRS complexes and peaked T waves which put a person at risk for heart arrhythmias. This happens because initially, the rise in potassium in the ECF makes the cell membrane less electronegative and this increases the membrane excitability, so the cardiac muscle contracts more easily, but it can’t repolarize effectively to allow another contraction. For your tests, remember that another symptom of hyperkalemia is muscle weakness. With hypokalemia, the main changes are flattened T waves and the appearance of U waves, which are thought to represent the repolarization of Purkinje fibers of the heart. This happens because hypokalemia increases both the resting membrane potential and the duration of the refractory period, but has a greater effect on the refractory period, meaning it takes longer for the heart to recharge. It also decreases conductivity, which can further lead to heart arrhythmias. Other symptoms of hypokalemia include muscle weakness, muscle cramps, or spasms.

Let’s move on and talk about sodium, which is a cation that’s mostly in the ECF and is essential for maintaining water balance, as well as a nerve impulse conduction and muscle contraction.

So with hypernatremia, there is too much sodium in the extracellular fluid. This can happen because a person has gained more sodium than water, or has lost more water than sodium. Either way this increases the sodium concentration in the extracellular fluid, draws water out of the cells.

Sodium gain happens most commonly when someone in the hospital is given too much sodium intravenously too quickly. The other possibility is salt poisoning, which is a rare scenario, but if it is seen, it’s typically in infants and young children who have been abused.

Water losses, on the other hand, is much more common, and can result in hypernatremia if the lost water is not replaced. There are 3 possible sources: skin, gastrointestinal, and urinary losses. Increased skin losses can occur in individuals with extensive burns, fever, exercise, and exposure to high temperatures. Then we have the gastrointestinal losses, like vomiting, or diarrhea. Finally, too much water can be lost through the kidneys because of osmotic diuresis. This occurs when the osmolarity of the fluid in the renal tubules are too high and it sucks more water into the tubules which is then lost as urine. A high yield example of this is diabetes mellitus where there’s too much glucose being filtered into the pre-urine. Other examples include acute kidney failure, when urea builds up; or during treatment with mannitol, which is an osmotic diuretic.

When there’s hypernatremia, water will move from the ICF to the ECF until both compartments become isotonic. This means that the cells will lose water and become dehydrated. When neurons are affected, it can lead to symptoms such as irritability, stupor, which is when a person becomes almost unconscious and even coma.

On the other hand, true hyponatremia or low concentration of sodium in the extracellular fluid, can be caused by either losing more sodium than water, or gaining more water than sodium. This shouldn’t be confused with false hyponatremia or pseudohyponatremia. This is where the body water and sodium levels are normal, but there’s an excessive amount of lipids, like in hypertriglyceridemia, or proteins, like in multiple myeloma. High levels of lipids and proteins affect the laboratory instruments that measure the sodium concentration, making the instruments say the sodium concentration is too low.

Broadly speaking, true hyponatremia can be divided into three categories based on water volume status. The first is hypervolemic hyponatremia, where there’s an enormous increase in total body water with a less significant increase in total body sodium. Typically, this is seen in conditions like congestive heart failure, cirrhosis, or nephrotic syndrome, which all present with edema, especially in the ankles.

The second category is hypovolemic hyponatremia where there’s a small decrease in total body water with a large decrease in total body sodium. This can occur in conditions like diarrhea or vomiting, or in response to certain medications like diuretics. Another more nuanced condition is cerebral salt wasting which is when an intracranial injury like meningitis disrupts the normal sympathetic nervous system stimulation of the kidneys leading to disproportionate loss of sodium and, along with it, water.

A third category is euvolemic hyponatremia, or normal volume hypovolemia, which is where there’s normal body sodium with an increase in total body water. Ηowever, we call it “euvolemic” because there’s no edema. Euvolemic hyponatremia can be split into cases with dilute urine and concentrated urine. Conditions that cause dilute urine include drinking too much water called polydipsia. The main condition that causes concentrated urine is the syndrome of inappropriate antidiuretic hormone secretion, or SIADH for short. Certain neurological disorder can increase the secretion of ADH and this includes strokes, hemorrhages or trauma, while certain medications like mood stabilizers and antiepileptics can also increase its secretion. It could also be excreted ectopically by tumors, and small cell lung carcinoma is the most commonly tested.

When there’s hyponatremia, water will move from the ECF in the ICF, so the cells will swell up. When neurons are affected, it causes symptoms like nausea, malaise, stupor, coma and even seizures.

Okay, moving to calcium, which is a cation that’s mostly located in the bones and is essential for muscle contraction, enzyme activity and blood coagulation. It also helps with releasing neurotransmitters from neurons, as well as releasing hormones from the endocrine glands. About 1 percent of calcium is in the ECF.

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. "Practical Renal Pathology, A Diagnostic Approach E-Book" Elsevier Health Sciences (2012)
  4. "Physiology E-Book" Elsevier Health Sciences (2017)
  5. "Rosen's Emergency Medicine" Elsiever (2017)
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