🇮🇳 PGIMER Entrance · flashcards
PGIMER Entrance Physiology Flashcards
61 question-and-answer cards covering Physiology as it is examined in PGIMER Entrance. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Physiology deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
Write the equation for glomerular filtration rate (GFR) in terms of clearance, and name the ideal marker.
GFR = Clearance of a substance = (Urine concentration × Urine flow rate) / Plasma concentration (Ux·V/Px). The ideal marker is inulin (freely filtered, not reabsorbed, secreted, or metabolized); creatinine clearance is the clinical approximation.
List the forces (Starling forces) governing glomerular filtration and the net direction of each.
Favoring filtration: glomerular capillary hydrostatic pressure (PGC). Opposing filtration: Bowman's capsule hydrostatic pressure (PBS) and glomerular capillary oncotic pressure (πGC). Net filtration pressure = PGC - PBS - πGC.
What is renal autoregulation and name its two mechanisms?
Renal autoregulation keeps GFR and renal blood flow relatively constant despite changes in arterial pressure (~80-180 mmHg). Mechanisms: 1) Myogenic mechanism (afferent arteriole constricts when stretched), 2) Tubuloglomerular feedback (macula densa senses NaCl and adjusts afferent tone via adenosine).
Where in the nephron is most glucose, sodium, and water reabsorbed, and what is the glucose transport maximum significance?
The proximal convoluted tubule reabsorbs ~65% of filtered Na+ and water and essentially all glucose (via SGLT). When plasma glucose exceeds the transport maximum (Tm, ~375 mg/min) and threshold (~180 mg/dL), glucose appears in urine (glucosuria).
How does the loop of Henle establish the medullary concentration gradient (countercurrent multiplier)?
The thick ascending limb actively pumps out NaCl (via NKCC2) but is impermeable to water, diluting tubular fluid and concentrating the interstitium. The descending limb is permeable to water, which leaves passively. This countercurrent arrangement multiplies the gradient up to ~1200 mOsm/L at the medulla.
Give the Henderson-Hasselbalch equation for the bicarbonate buffer system and normal arterial values.
pH = 6.1 + log10([HCO3-] / (0.03 × PCO2)). Normal arterial values: pH 7.35-7.45, HCO3- ~24 mEq/L, PCO2 ~40 mmHg.
Classify the four primary acid-base disorders by pH, PCO2, and HCO3- changes.
Metabolic acidosis: ↓pH, ↓HCO3-. Metabolic alkalosis: ↑pH, ↑HCO3-. Respiratory acidosis: ↓pH, ↑PCO2. Respiratory alkalosis: ↑pH, ↓PCO2. Respiratory disorders are primary PCO2 changes; metabolic are primary HCO3- changes.
How do the kidneys compensate for chronic respiratory acidosis?
The kidneys increase H+ secretion and generate/reabsorb more HCO3- (enhanced NH4+ excretion and titratable acid), raising plasma bicarbonate to buffer the elevated PCO2 and restore pH toward normal over days.
Match the major GI hormones to their main stimulus and action: gastrin, secretin, CCK.
Gastrin (G cells, antrum): stimulated by peptides/distension/vagus; increases gastric acid secretion and mucosal growth. Secretin (S cells, duodenum): stimulated by acid; increases pancreatic/biliary HCO3- and decreases gastric acid. CCK (I cells): stimulated by fat/protein; causes gallbladder contraction, pancreatic enzyme secretion, and slows gastric emptying.
Describe the cellular mechanism of gastric acid (HCl) secretion by parietal cells.
The H+/K+-ATPase (proton pump) on the apical membrane pumps H+ into the lumen in exchange for K+. H+ comes from H2CO3 (via carbonic anhydrase); the generated HCO3- exits the basolateral side in exchange for Cl- ('alkaline tide'), and Cl- enters the lumen to form HCl. Stimulated by ACh, gastrin, and histamine.
What are slow waves (basic electrical rhythm) in GI smooth muscle and what generates them?
Slow waves are spontaneous, rhythmic oscillations in the resting membrane potential that set the maximum frequency of contractions. They are generated by the interstitial cells of Cajal (pacemaker cells) and cause contraction only when they reach threshold and trigger spike potentials.
Compare the regulation of anterior versus posterior pituitary hormone release.
Anterior pituitary: glandular tissue regulated by hypothalamic releasing/inhibiting hormones delivered via the hypophyseal portal system. Posterior pituitary: neural tissue storing ADH and oxytocin synthesized in hypothalamic (supraoptic and paraventricular) neurons and released directly into blood upon neural stimulation.
Describe the hypothalamo-pituitary-thyroid axis and its negative feedback.
Hypothalamic TRH stimulates anterior pituitary TSH, which stimulates the thyroid to release T3/T4. Circulating T3/T4 exert negative feedback on both the pituitary (TSH) and hypothalamus (TRH) to maintain homeostasis.
Compare the dorsal column-medial lemniscus pathway with the anterolateral (spinothalamic) pathway.
Dorsal column-medial lemniscus carries fine touch, vibration, and proprioception; fibers ascend ipsilaterally and decussate in the medulla. Anterolateral/spinothalamic carries pain and temperature; fibers cross within 1-2 segments in the spinal cord and ascend contralaterally. Both relay in the thalamus (VPL).
Describe the corticospinal tract: origin, decussation, and function.
It originates from the motor cortex, descends through the internal capsule and brainstem; ~85-90% of fibers decussate at the medullary pyramids (lateral corticospinal tract) controlling distal limb voluntary movement, while the rest descend ipsilaterally (anterior corticospinal tract) for axial/proximal muscles.
Describe the components and pathway of the monosynaptic stretch (myotatic) reflex.
Stretch activates the muscle spindle (Ia afferent), which synapses directly on alpha motor neurons in the spinal cord, causing contraction of the same muscle, with reciprocal inhibition of antagonists. It is monosynaptic, ipsilateral (e.g., the knee-jerk reflex).
Contrast the roles of muscle spindles and Golgi tendon organs.
Muscle spindles lie in parallel with muscle fibers and detect muscle length and rate of change (stretch), driving the stretch reflex. Golgi tendon organs lie in series within tendons and detect muscle tension/force, mediating the inverse myotatic reflex (autogenic inhibition) to prevent excessive force.
Describe the phototransduction cascade in rod photoreceptors and the effect of light.
Light isomerizes 11-cis-retinal to all-trans, activating rhodopsin → transducin → phosphodiesterase, which breaks down cGMP. Falling cGMP closes cation (Na+) channels, hyperpolarizing the rod and decreasing glutamate release. Thus light hyperpolarizes photoreceptors (the opposite of most receptors).
Compare rods and cones.
Rods: high sensitivity, used in dim light (scotopic), no color vision, more numerous, concentrated in periphery, contain rhodopsin. Cones: lower sensitivity, function in bright light (photopic), provide color vision (3 types) and high acuity, concentrated in the fovea.
Explain how the cochlea performs frequency (pitch) discrimination.
Via tonotopic organization of the basilar membrane: the base (stiff, narrow) responds best to high frequencies, and the apex (wide, floppy) responds to low frequencies (place principle). Sound vibrations create a traveling wave peaking at a frequency-specific location, stimulating the corresponding hair cells.
How do the semicircular canals and otolith organs differ in what they detect?
Semicircular canals detect angular (rotational) acceleration of the head via endolymph movement bending the cupula. Otolith organs (utricle and saccule) detect linear acceleration and head position relative to gravity via otoliths displacing the otolithic membrane over hair cells.
Describe the EEG waveforms by frequency and associated states: alpha, beta, theta, delta.
Beta (>13 Hz): alert, active mental concentration. Alpha (8-13 Hz): awake, relaxed, eyes closed. Theta (4-7 Hz): drowsiness, light sleep, children. Delta (<4 Hz): deep (slow-wave) sleep, large amplitude.
Contrast NREM (slow-wave) sleep and REM sleep.
NREM: progressively slower EEG (delta in deep stages), decreased HR/BP/metabolism, little dreaming, 'restful' sleep. REM: low-voltage fast (desynchronized, beta-like) EEG resembling wakefulness, rapid eye movements, skeletal muscle atonia, vivid dreaming, irregular autonomic activity ('paradoxical sleep').
What is the role of the limbic system, and name its key structures (Papez circuit)?
The limbic system governs emotion, motivation, and memory formation. Key structures include the hippocampus (memory), amygdala (fear/emotion), hypothalamus, cingulate gyrus, fornix, and mammillary bodies. The Papez circuit links the hippocampus → fornix → mammillary bodies → anterior thalamus → cingulate → back to hippocampus.
What this deck covers
The Physiology deck follows the PGIMER Entrance Physiology syllabus — 4 chapters and 17 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 15.3 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 273 characters, which is long enough to carry the reasoning and short enough to say out loud.
A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.
Physiology flashcards FAQ
How many Physiology flashcards are in this PGIMER Entrance deck?
61 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these PGIMER Entrance flashcards free?
Yes. The preview here is free to read with no signup, and the full 61-card deck is free inside the Examius app.
What do the Physiology cards cover?
They follow the PGIMER Entrance Physiology syllabus — 4 chapters and 17 topics — so the questions track what is actually examinable.
How should I use these flashcards?
Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.