By the end of this chapter you'll be able to…

  • 1Identify which lung volumes and capacities cannot be measured by spirometry and state the alternative methods
  • 2Explain functional residual capacity as a balance of opposing recoil forces and predict how emphysema and fibrosis alter it
  • 3Explain how surfactant stabilises alveoli using Laplace's law, and why the effect is disproportionately greater in small alveoli
  • 4Distinguish obstructive from restrictive spirometry using the forced expiratory ratio and total lung capacity
  • 5Explain why the ventilation-perfusion ratio is highest at the apex despite greater basal ventilation, and apply this to tuberculosis
  • 6Use the response to 100% oxygen to separate shunt from ventilation-perfusion mismatch, and explain why the correction fails in shunt
  • 7Interpret oxyhaemoglobin curve shifts, recognise carbon monoxide poisoning despite normal oximetry, and separate the five causes of hypoxaemia using the A-a gradient
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Why this chapter matters in NEET PG
Respiratory questions arrive as a blood gas, a spirometry result, or a hypoxic patient, and a small number of tools answer all three. The alveolar-arterial gradient splits the causes of hypoxaemia into two groups, and the response to supplemental oxygen splits the second group again — two calculations replacing a list of five diagnoses. The recurring theme is that lung disease is either a problem of moving air or a problem of matching air to blood, and most questions are asking which.

Respiratory Physiology

1. What this chapter covers, and how NEET PG actually tests it

Respiratory questions usually arrive as a blood gas, a spirometry result, or a description of a patient who is hypoxic.

All three are answered by a small number of tools.

The alveolar-arterial gradient separates the causes of hypoxaemia into two groups, and the response to supplemental oxygen then splits the second group again. Two calculations therefore replace a list of five diagnoses.

Spirometry works the same way. The ratio of forced expiratory volume to forced vital capacity divides obstruction from restriction before any other value is considered.

The recurring theme is that lung disease is either a problem of getting air in and out, or a problem of matching air to blood — and almost every question is asking which.

This chapter covers mechanics and lung volumes, ventilation-perfusion matching, gas transport, and the control of breathing with the causes of hypoxaemia.

In scope hereDeliberately out of scope
Lung volumes, compliance, surfactant, spirometric patternsDetailed pulmonary function test protocols
Regional ventilation and perfusion, dead space, shuntVentilator management (see Anesthesia)
Oxygen and carbon dioxide carriage, curve shifts, carbon monoxideAsthma and COPD pharmacotherapy (see Pharmacology)
Chemoreceptors, altitude adaptation, hypoxaemia mechanismsRadiological interpretation (see Radiology)

2. Mechanics and lung volumes

2.1 The volumes, and which ones spirometry cannot measure

Four volumes combine into four capacities, and one distinction carries most of the exam weight.

QuantityCompositionApproximate value
Tidal volume500 mL
Residual volume1200 mL
Inspiratory capacityTidal + inspiratory reserve3500 mL
Functional residual capacityExpiratory reserve + residual2400 mL
Vital capacityInspiratory capacity + expiratory reserve4600 mL
Total lung capacityVital capacity + residual5800 mL

Spirometry measures airflow, so it cannot measure any volume that never leaves the lung.

Residual volume is therefore unmeasurable by spirometry, and so is any capacity containing it — functional residual capacity and total lung capacity.

Those require helium dilution or body plethysmography instead, and questions ask this directly.

2.2 Functional residual capacity is a balance point

At the end of a quiet expiration, the lung's inward elastic recoil is exactly balanced by the chest wall's outward recoil.

Functional residual capacity is that equilibrium volume, which is why it is altered by anything changing either recoil force.

Emphysema destroys elastic tissue, so inward recoil weakens and functional residual capacity rises.

Fibrosis stiffens the lung, so inward recoil strengthens and it falls.

2.3 Compliance and surfactant

Compliance is the change in volume per unit change in pressure, so a compliant lung is easy to inflate.

Compliance is increased in emphysema — a floppy lung inflates easily but recoils poorly — and decreased in fibrosis, pulmonary oedema and respiratory distress syndrome.

Most of the pressure needed to inflate a lung overcomes surface tension at the air-liquid interface, not tissue elasticity.

Surfactant, secreted by type II pneumocytes and consisting chiefly of dipalmitoylphosphatidylcholine, reduces that surface tension.

Its second function matters more and is more often tested. Laplace's law states that the collapsing pressure of a sphere is:

So for a given surface tension, a small alveolus generates a higher collapsing pressure than a large one and would empty into its neighbour.

Surfactant prevents this because its molecules are more concentrated in a small alveolus, so it lowers tension disproportionately where the radius is smallest.

Alveolar stability is therefore not a fixed property but an actively balanced one.

Surfactant production begins around 24 to 28 weeks and is usually adequate by about 35 weeks, and a lecithin to sphingomyelin ratio above 2 indicates maturity.

2.4 Obstructive versus restrictive patterns

The distinction is made on the ratio, not the absolute values.

Obstructive disease reduces the ratio of forced expiratory volume in one second to forced vital capacity, conventionally below 0.7, because airflow is limited disproportionately. Total lung capacity and residual volume rise from air trapping.

Restrictive disease reduces both volumes together, so the ratio is normal or even raised, while total lung capacity falls.

The ratio tells you which pattern; the total lung capacity confirms it.


3. Ventilation-perfusion matching

3.1 Why the apex and base behave differently

Gravity distributes both ventilation and perfusion unevenly, but not to the same degree.

Both ventilation and perfusion are greater at the base than at the apex, but perfusion varies far more.

The consequence is that the ratio is higher at the apex, around 3, and lower at the base, around 0.6, with a whole-lung average near 0.8.

A high ratio means relatively more air than blood, so the apex has a higher alveolar oxygen tension and a lower carbon dioxide tension.

This is why post-primary tuberculosis favours the apices — the organism is a strict aerobe and the apex is the most oxygen-rich region of the lung.

The base, being better perfused, is where an embolus and most consolidations preferentially land.

3.2 Dead space and shunt as the two extremes

The ratio has two limiting values, and each names a clinical entity.

Dead space is ventilation without perfusion, so the ratio is infinite. Alveolar gas resembles inspired air.

Shunt is perfusion without ventilation, so the ratio is zero. Blood leaves resembling mixed venous blood.

Anatomical dead space, the conducting airways, is roughly 150 mL. Physiological dead space adds any alveoli that are ventilated but not perfused, as in pulmonary embolism.

3.3 The oxygen test that separates them

Giving 100% oxygen distinguishes shunt from ventilation-perfusion mismatch, and this is the most useful single discriminator in the chapter.

In ventilation-perfusion mismatch, poorly ventilated units still receive some air, so raising the inspired oxygen concentration raises their alveolar oxygen tension and hypoxaemia improves.

In a true shunt, blood bypasses ventilated alveoli entirely. No amount of inspired oxygen reaches it, so hypoxaemia is refractory.

The reason the correction is incomplete rather than partial deserves a moment. Because the oxyhaemoglobin curve is flat at its top, blood from well-ventilated units cannot carry extra oxygen to compensate for the shunted blood, however high the inspired concentration.

Refractory hypoxaemia on high-flow oxygen therefore means shunt, as in consolidation, atelectasis or an intracardiac right-to-left shunt.


4. Gas transport

4.1 The oxyhaemoglobin dissociation curve

The curve is sigmoid because haemoglobin binds oxygen cooperatively — each molecule bound increases the affinity of the remaining sites.

The P50, the tension at which haemoglobin is half saturated, is normally about 27 mmHg.

The flat upper portion is a safety margin: arterial oxygen tension can fall considerably before saturation drops meaningfully, which is why saturation is an insensitive early warning.

The steep lower portion is the working range in tissues, where a small fall in tension releases a large amount of oxygen.

A right shift means reduced affinity and easier unloading, and its causes are all markers of metabolically active tissue: raised carbon dioxide, acidity, temperature and 2,3-bisphosphoglycerate.

The logic is that tissue which is working hard signals its own need, and the haemoglobin passing through responds by releasing more oxygen. The effect of acidity and carbon dioxide is the Bohr effect.

A left shift means tighter binding and reluctant unloading: fetal haemoglobin, carbon monoxide, methaemoglobin, hypothermia, alkalosis and stored blood depleted of 2,3-bisphosphoglycerate.

Fetal haemoglobin's left shift is functional rather than pathological, allowing it to extract oxygen from maternal blood across the placenta.

4.2 Carbon monoxide and methaemoglobin

Carbon monoxide binds haemoglobin with roughly 240 times the affinity of oxygen.

Two separate harms follow, and the second is often forgotten. It reduces the oxygen-carrying capacity, and it shifts the remaining curve to the left, so the oxygen that is carried is released less readily.

The critical clinical point is diagnostic. Dissolved oxygen is unaffected, so the arterial oxygen tension is normal, and standard pulse oximetry cannot distinguish carboxyhaemoglobin from oxyhaemoglobin.

A normal saturation reading therefore does not exclude carbon monoxide poisoning, and co-oximetry is required.

Methaemoglobin contains iron in the ferric state, which cannot bind oxygen at all. It produces chocolate-brown blood, a saturation reading that sits near 85% regardless of the true value, and responds to methylene blue.

4.3 Carbon dioxide carriage

Carbon dioxide is carried in three forms, and the proportions are examinable.

About 70% travels as bicarbonate, formed in the red cell by carbonic anhydrase and exported in exchange for chloride — the chloride shift.

About 23% is carried as carbamino compounds bound to haemoglobin, and about 7% is dissolved.

The Haldane effect is the counterpart of the Bohr effect: deoxygenated haemoglobin carries carbon dioxide more readily.

The two effects work together in a single circuit. In tissues, oxygen unloading improves carbon dioxide uptake; in the lung, oxygen loading drives carbon dioxide off.


5. Control of breathing and hypoxaemia

5.1 Two sets of chemoreceptors

Central chemoreceptors in the medulla respond to hydrogen ion concentration in the cerebrospinal fluid.

They do not sense carbon dioxide directly. Carbon dioxide crosses the blood-brain barrier, is hydrated to carbonic acid, and the resulting hydrogen ions are what the receptors detect.

Because hydrogen ions cross the barrier poorly, an acute metabolic acidosis stimulates them far less than an equivalent respiratory acidosis — a mechanistic point that questions use.

Central chemoreceptors provide the dominant minute-to-minute drive.

Peripheral chemoreceptors in the carotid and aortic bodies respond chiefly to a fall in arterial oxygen tension below about 60 mmHg, and also to acidity and carbon dioxide.

The carotid bodies signal through the glossopharyngeal nerve and the aortic bodies through the vagus.

Their oxygen threshold explains the shape of the response: ventilation barely changes until oxygen tension falls onto the steep part of the dissociation curve, then rises sharply.

5.2 The alveolar gas equation and the A-a gradient

Alveolar oxygen tension is calculated as:

The alveolar-arterial gradient is the difference between this calculated value and the measured arterial tension, normally about 5 to 15 mmHg and rising with age.

The gradient answers one question: is the problem inside the lung or outside it?

5.3 Five causes of hypoxaemia, separated by two tests

CauseA-a gradientCorrects with oxygen
HypoventilationNormalYes
Low inspired oxygen (altitude)NormalYes
Diffusion impairmentRaisedYes
Ventilation-perfusion mismatchRaisedYes
ShuntRaisedNo

A normal gradient means the lung is working correctly and the problem lies elsewhere — either too little air is moving, or the air itself contains too little oxygen.

A raised gradient localises the fault to gas exchange, and the oxygen response then isolates shunt from the rest.

Two tests therefore resolve all five causes, which is far faster than recalling the list.

5.4 Adaptation to altitude

Low inspired oxygen at altitude produces hypoxaemia with a normal gradient, since the lung itself is healthy.

The immediate response is hyperventilation driven by peripheral chemoreceptors, which produces a respiratory alkalosis.

That alkalosis is itself a brake, since it suppresses the central chemoreceptors and limits further hyperventilation.

Renal compensation over the following days excretes bicarbonate, correcting the pH and releasing the brake — which is why acclimatisation improves over about a week.

Longer-term changes include a rise in 2,3-bisphosphoglycerate, which right-shifts the curve to improve tissue unloading, and erythropoietin-driven polycythaemia.

Hypoxic pulmonary vasoconstriction, which normally diverts blood away from poorly ventilated regions, becomes global at altitude and can cause pulmonary hypertension.


Worked clinical vignettes

Question 1 of 3

Q1. A patient with dense consolidation remains hypoxic despite high-flow oxygen. What is the mechanism, and why does oxygen fail?

Pick an option to check your answer.

Show explanation

Solution. Consolidated lung is perfused but not ventilated, so the ratio is zero — a true shunt.

Inspired oxygen never reaches that blood. The remaining well-ventilated units are already near full saturation on the flat part of the curve, so they cannot compensate by carrying more.

Refractory hypoxaemia on high-flow oxygen is the signature of shunt. Answer: (b).

Question 2 of 3

Q2. A patient rescued from a house fire has a normal arterial oxygen tension and a pulse oximetry reading of 98%, but is confused and has a headache. What is the explanation?

Pick an option to check your answer.

Show explanation

Solution. Carbon monoxide binds haemoglobin with about 240 times the affinity of oxygen, reducing carrying capacity while leaving dissolved oxygen — and therefore the measured tension — normal.

Standard pulse oximetry reads carboxyhaemoglobin as though it were oxyhaemoglobin, producing a falsely reassuring value. Co-oximetry is required.

Carbon monoxide also left-shifts the remaining curve, worsening delivery further. Answer: (b).

Question 3 of 3

Q3. Why does post-primary tuberculosis preferentially affect the lung apices?

Pick an option to check your answer.

Show explanation

Solution. Both ventilation and perfusion are greater at the base, but perfusion varies far more with gravity, so the ratio is highest at the apex — around 3, versus about 0.6 at the base.

A high ratio means relatively more air than blood, giving the apex the highest alveolar oxygen tension.

Mycobacterium tuberculosis is a strict aerobe, so it thrives there. Answer: (b).


7. Common exam traps

  • Trying to measure residual volume by spirometry. Spirometry cannot measure any volume that never leaves the lung, so residual volume, functional residual capacity and total lung capacity all require dilution or plethysmography.
  • Assuming higher perfusion at the apex. Both ventilation and perfusion are greater at the base; it is the ratio that is higher at the apex.
  • Expecting shunt to correct with oxygen. It does not, and that is the defining test separating it from ventilation-perfusion mismatch.
  • Trusting pulse oximetry in carbon monoxide poisoning. It reads carboxyhaemoglobin as oxyhaemoglobin, so the saturation is falsely normal.
  • Forgetting carbon monoxide's second effect. It also left-shifts the curve, impairing release of the oxygen that is still carried.
  • Reversing the curve shifts. Raised carbon dioxide, acid, temperature and 2,3-bisphosphoglycerate all shift right and improve unloading.
  • Saying central chemoreceptors sense carbon dioxide. They sense hydrogen ions in cerebrospinal fluid, which is why acute metabolic acidosis stimulates them poorly.
  • Ignoring the A-a gradient in a hypoxic patient. A normal gradient means the lung is intact and the cause is hypoventilation or low inspired oxygen.

Summary

  • Spirometry cannot measure residual volume, and therefore cannot measure functional residual capacity or total lung capacity; these need helium dilution or plethysmography.
  • Functional residual capacity is the volume at which lung inward recoil balances chest wall outward recoil, so it rises in emphysema and falls in fibrosis.
  • Compliance rises in emphysema and falls in fibrosis, pulmonary oedema and respiratory distress syndrome.
  • Surfactant from type II pneumocytes reduces surface tension and, by Laplace's law, stabilises small alveoli by lowering tension disproportionately where the radius is smallest.
  • Obstruction lowers the forced expiratory ratio and raises total lung capacity; restriction preserves or raises the ratio while lowering total lung capacity.
  • Ventilation and perfusion are both greater at the base, but perfusion varies more, so the ratio is highest at the apex — which is why tuberculosis favours it.
  • Dead space is ventilation without perfusion and shunt is perfusion without ventilation, the two limiting values of the ratio.
  • Ventilation-perfusion mismatch corrects with supplemental oxygen while true shunt does not, because the flat top of the curve prevents compensation.
  • The oxyhaemoglobin curve is sigmoid from cooperative binding, with a P50 near 27 mmHg, a flat safety margin above and a steep working range below.
  • Right shifts from carbon dioxide, acid, temperature and 2,3-bisphosphoglycerate improve unloading where metabolism is active; the acid and carbon dioxide component is the Bohr effect.
  • Carbon monoxide reduces carrying capacity and left-shifts the curve while leaving oxygen tension and pulse oximetry falsely normal.
  • Carbon dioxide travels about 70% as bicarbonate with a chloride shift, 23% as carbamino compounds and 7% dissolved, and the Haldane effect lets deoxygenated haemoglobin carry more.
  • Central chemoreceptors respond to cerebrospinal fluid hydrogen ions rather than carbon dioxide directly, which is why metabolic acidosis stimulates them less.
  • Peripheral chemoreceptors respond mainly below an oxygen tension of about 60 mmHg, signalling through the glossopharyngeal and vagus nerves.
  • A normal alveolar-arterial gradient indicates hypoventilation or low inspired oxygen; a raised gradient indicates a gas exchange problem, and the oxygen response then isolates shunt.
  • Altitude causes hypoxaemia with a normal gradient, hyperventilation with respiratory alkalosis, renal bicarbonate excretion over days, and later a rise in 2,3-bisphosphoglycerate with polycythaemia.

Key formulas & results

Everything to memorise for the exam hall, in one card. Screenshot this for revision.

Volumes and capacities
Tidal volume ~500 mL; residual volume ~1200 mL. Inspiratory capacity = tidal + inspiratory reserve. FUNCTIONAL RESIDUAL CAPACITY = expiratory reserve + RESIDUAL. Vital capacity = inspiratory capacity + expiratory reserve. TOTAL LUNG CAPACITY = vital capacity + RESIDUAL.
Spirometry measures airflow, so it CANNOT measure residual volume or any capacity containing it (FRC, TLC). Those need helium dilution or body plethysmography.
Functional residual capacity as a balance point
FRC is the volume at which the lung's INWARD elastic recoil exactly balances the chest wall's OUTWARD recoil
Emphysema destroys elastic tissue, weakening inward recoil, so FRC RISES. Fibrosis stiffens the lung, so FRC FALLS.
Compliance
Compliance = change in volume / change in pressure
INCREASED in emphysema (floppy lung, inflates easily, recoils poorly). DECREASED in fibrosis, pulmonary oedema and respiratory distress syndrome.
Laplace's law and surfactant
Collapsing pressure P = 2T / r. For a given surface tension, a SMALL alveolus generates a HIGHER collapsing pressure and would empty into its neighbour.
Surfactant molecules are more concentrated in small alveoli, so tension is lowered DISPROPORTIONATELY where the radius is smallest — alveolar stability is actively balanced, not fixed.
Surfactant composition and timing
Secreted by TYPE II PNEUMOCYTES, chiefly dipalmitoylphosphatidylcholine. Production begins ~24-28 weeks, usually adequate by ~35 weeks.
A lecithin to sphingomyelin ratio above 2 indicates pulmonary maturity.
Obstructive versus restrictive spirometry
OBSTRUCTIVE: FEV1/FVC REDUCED (conventionally below 0.7), TLC and residual volume RAISED from air trapping. RESTRICTIVE: FEV1 and FVC fall together so the RATIO is normal or RAISED, while TLC FALLS.
The ratio tells you the pattern; total lung capacity confirms it.
Regional ventilation-perfusion
Both ventilation and perfusion are GREATER AT THE BASE, but perfusion varies FAR MORE with gravity. So the RATIO is ~3 at the apex and ~0.6 at the base, averaging ~0.8.
High apical ratio means relatively more air than blood, giving the highest alveolar oxygen tension — which is why post-primary tuberculosis, a strict aerobe, favours the apices.
Dead space and shunt
DEAD SPACE = ventilation without perfusion, ratio INFINITE, alveolar gas resembles inspired air. SHUNT = perfusion without ventilation, ratio ZERO, blood leaves resembling mixed venous blood.
Anatomical dead space ~150 mL (conducting airways); physiological dead space adds ventilated but unperfused alveoli, as in pulmonary embolism.
The 100% oxygen test
V/Q MISMATCH CORRECTS with supplemental oxygen (poorly ventilated units still receive some air). TRUE SHUNT does NOT correct, because that blood bypasses ventilated alveoli entirely.
Well-ventilated units cannot compensate because the oxyhaemoglobin curve is FLAT at the top — they are already nearly saturated. Refractory hypoxaemia on high-flow oxygen therefore means shunt.
Oxyhaemoglobin dissociation curve
SIGMOID because binding is COOPERATIVE. P50 ~27 mmHg. FLAT upper portion = safety margin (saturation is an insensitive early warning). STEEP lower portion = tissue working range.
The flat top is also why shunted blood cannot be compensated for by raising inspired oxygen.
Curve shifts
RIGHT SHIFT (reduced affinity, easier unloading): raised CO2, ACID, TEMPERATURE, 2,3-BPG — all markers of active tissue. The CO2 and acid component is the BOHR EFFECT. LEFT SHIFT (tighter binding): fetal haemoglobin, carbon monoxide, methaemoglobin, hypothermia, alkalosis, stored blood depleted of 2,3-BPG.
Fetal haemoglobin's left shift is functional, allowing extraction of oxygen from maternal blood across the placenta.
Carbon monoxide poisoning
Binds haemoglobin with ~240x the affinity of oxygen. TWO harms: reduced carrying capacity AND a LEFT SHIFT of the remaining curve. Dissolved oxygen is unaffected, so PaO2 is NORMAL and standard pulse oximetry reads carboxyhaemoglobin as oxyhaemoglobin.
A normal saturation does NOT exclude carbon monoxide poisoning — co-oximetry is required.
Methaemoglobinaemia
Iron in the FERRIC state cannot bind oxygen; chocolate-brown blood; pulse oximetry reads near 85% regardless of true saturation; treated with methylene blue
The fixed ~85% reading is the classic exam clue.
Carbon dioxide carriage
~70% as BICARBONATE (formed by carbonic anhydrase in the red cell, exported in exchange for chloride — the CHLORIDE SHIFT), ~23% as CARBAMINO compounds on haemoglobin, ~7% DISSOLVED
The HALDANE EFFECT is the counterpart of the Bohr effect: deoxygenated haemoglobin carries more CO2. The two work together in one circuit.
Chemoreceptors
CENTRAL (medulla): respond to HYDROGEN IONS in cerebrospinal fluid, not to CO2 directly — CO2 crosses the barrier and is hydrated. Dominant minute-to-minute drive. PERIPHERAL (carotid and aortic bodies): respond chiefly to PaO2 BELOW ~60 mmHg, also to acid and CO2. Carotid via CN IX, aortic via CN X.
Because hydrogen ions cross the blood-brain barrier poorly, acute METABOLIC acidosis stimulates central chemoreceptors far less than an equivalent respiratory acidosis.
Alveolar gas equation and A-a gradient
PAO2 = FiO2 x (Patm - 47) - PaCO2/0.8. A-a gradient = PAO2 (calculated) - PaO2 (measured), normally about 5-15 mmHg and rising with age.
The gradient answers one question: is the problem INSIDE the lung or outside it?
Five causes of hypoxaemia
NORMAL A-a gradient: hypoventilation; low inspired oxygen (altitude). RAISED A-a gradient: diffusion impairment; V/Q mismatch (corrects with oxygen); SHUNT (does NOT correct).
Two tests — the gradient, then the oxygen response — resolve all five, which is faster than recalling the list.
Altitude adaptation sequence
Low inspired oxygen → hypoxaemia with a NORMAL A-a gradient → peripheral chemoreceptor-driven hyperventilation → RESPIRATORY ALKALOSIS (which itself brakes further hyperventilation by suppressing central chemoreceptors) → renal bicarbonate excretion over days releases the brake → later, raised 2,3-BPG and erythropoietin-driven polycythaemia
Global hypoxic pulmonary vasoconstriction can cause pulmonary hypertension at altitude.
⚠️

Traps NEET PG sets — and how to dodge them

These are the exact option-traps and misreads that cost marks under negative marking.

WATCH OUT
Attempting to derive residual volume from spirometry
Spirometry measures only air that moves, so any volume remaining in the lung after maximal expiration is invisible to it. Residual volume, functional residual capacity and total lung capacity all require helium dilution or body plethysmography.
WATCH OUT
Assuming perfusion is greatest at the apex because the ratio is highest there
Both ventilation and perfusion are greater at the BASE. Perfusion simply varies more steeply with gravity, so the ratio ends up higher at the apex despite lower absolute ventilation there.
WATCH OUT
Expecting supplemental oxygen to correct a shunt
Shunted blood never contacts ventilated alveoli, and the well-ventilated units cannot carry extra oxygen because they sit on the flat top of the dissociation curve. Refractory hypoxaemia on high-flow oxygen is therefore the defining feature of shunt.
WATCH OUT
Trusting pulse oximetry in suspected carbon monoxide poisoning
Standard oximetry cannot distinguish carboxyhaemoglobin from oxyhaemoglobin, and dissolved oxygen is unaffected so the arterial oxygen tension is normal too. Both readings are falsely reassuring, and co-oximetry is needed.
WATCH OUT
Forgetting carbon monoxide's second mechanism
Beyond occupying binding sites, carbon monoxide shifts the remaining curve LEFT, so the oxygen still carried is released less readily to tissues. The two harms compound each other.
WATCH OUT
Reversing the direction of curve shifts
Raised carbon dioxide, acidity, temperature and 2,3-BPG all shift the curve RIGHT, reducing affinity and improving unloading. Anchor this on the logic that actively metabolising tissue generates all four and thereby signals its own need for oxygen.
WATCH OUT
Saying central chemoreceptors sense carbon dioxide directly
They sense hydrogen ions in cerebrospinal fluid. Carbon dioxide crosses the blood-brain barrier and is hydrated to generate them, which is why an acute metabolic acidosis — where hydrogen ions cross poorly — is a much weaker central stimulus.
WATCH OUT
Skipping the A-a gradient when assessing a hypoxic patient
The gradient immediately separates lung disease from non-lung causes. A normal gradient means the lung is exchanging correctly, so the problem is hypoventilation or low inspired oxygen, and no further pulmonary workup is needed for the hypoxaemia itself.
WATCH OUT
Treating restrictive disease as simply a reduced FEV1
Both FEV1 and FVC fall in restriction, so the RATIO is preserved or even raised. Only obstruction lowers the ratio. Diagnosing on the FEV1 alone confuses the two patterns.

Exam-pattern practice

PYQ-style questions with full solutions. Work through them as a readiness check — mark yourself honestly and get your gap report at the end.

Readiness check

Are you exam-ready for Respiratory Physiology?

9 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

9 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Spirometry cannot measure residual volume, and therefore not FRC or TLC; use helium dilution or plethysmography.
  • FRC is where lung inward recoil balances chest wall outward recoil — raised in emphysema, lowered in fibrosis.
  • Compliance rises in emphysema and falls in fibrosis, pulmonary oedema and respiratory distress syndrome.
  • Surfactant from type II pneumocytes lowers surface tension disproportionately in small alveoli, stabilising them against Laplace's law.
  • Obstruction lowers FEV1/FVC below 0.7 with raised TLC; restriction preserves the ratio with reduced TLC.
  • Ventilation and perfusion are both greater at the base, but perfusion varies more, so the V/Q ratio is highest at the apex — hence apical tuberculosis.
  • Dead space is ventilation without perfusion (ratio infinite); shunt is perfusion without ventilation (ratio zero).
  • V/Q mismatch corrects with oxygen; true shunt does not, because the flat top of the curve prevents compensation.
  • The curve is sigmoid from cooperative binding, P50 ~27 mmHg, flat above as a safety margin and steep below as the working range.
  • Right shift from CO2, acid, temperature and 2,3-BPG improves unloading; left shift from fetal haemoglobin, CO, methaemoglobin, hypothermia and alkalosis impairs it.
  • Carbon monoxide reduces carrying capacity, left-shifts the curve, and leaves PaO2 and pulse oximetry falsely normal.
  • Methaemoglobin fixes the oximetry reading near 85% and produces chocolate-brown blood; treat with methylene blue.
  • CO2 travels ~70% as bicarbonate with a chloride shift, ~23% carbamino, ~7% dissolved; the Haldane effect lets deoxygenated haemoglobin carry more.
  • Central chemoreceptors sense CSF hydrogen ions, not CO2 directly, so metabolic acidosis is a weaker central stimulus.
  • Peripheral chemoreceptors act mainly below PaO2 60 mmHg, via CN IX from carotid bodies and CN X from aortic bodies.
  • A normal A-a gradient means hypoventilation or low inspired oxygen; a raised gradient means gas exchange failure, and the oxygen response then isolates shunt.
  • Altitude gives hypoxaemia with a normal gradient, respiratory alkalosis, renal bicarbonate excretion over days, then raised 2,3-BPG and polycythaemia.

NEET PG question blueprint

How this topic is asked, tier by tier — so you can prep to the pattern.

Typical weightage: Each NEET PG question is worth +4/-1; respiratory physiology typically contributes 2-4 questions per attempt, and more counting Medicine and Anesthesia overlap

Question styleMarks eachTypical countWhat it tests
Mechanics4~1Lung volumes and measurement methods, compliance, surfactant and Laplace's law, spirometric patterns
Ventilation-perfusion4~1Regional ratios, dead space and shunt, the oxygen test, altitude physiology
Gas transport4~1Dissociation curve and shifts, carbon monoxide and methaemoglobin, carbon dioxide carriage
Control of breathing4~1Central and peripheral chemoreceptors, alveolar gas equation, A-a gradient, causes of hypoxaemia
Prep strategy
  • First pass: learn the two-test framework for hypoxaemia (A-a gradient, then oxygen response), since it converts the largest topic in the chapter into a two-step algorithm.
  • Second pass: drill the direction-sensitive facts (curve shifts, apical versus basal ratio, compliance in emphysema versus fibrosis), because each reversed turns a known answer into a wrong one.
  • Final pass: practise blood gas and spirometry vignettes under time, calculating rather than pattern-matching, so the arithmetic is automatic in the exam.

Exam-hall strategy

Battle-tested tips from mentors and toppers for this topic under the sectional clock.

  1. Start every hypoxaemia stem with the A-a gradient — normal or raised settles half the differential before any clinical reasoning.
  2. Treat any mention of the oxygen response as the discriminator between shunt and mismatch; it is given for that reason.
  3. In spirometry questions, read the ratio before the absolute values, then confirm with total lung capacity.
  4. For curve shift questions, ask whether the described condition represents active metabolism. If it does, the shift is to the right.
  5. When a stem gives a normal or reassuring oximetry reading in a poisoned or smoke-exposed patient, the normality is the clue rather than a reason to exclude respiratory disease.
  6. For regional lung questions, distinguish absolute ventilation and perfusion from their ratio — the distractors are usually built on that confusion.
  7. With NEET PG's +4/-1 marking, eliminate using the two-test framework rather than recalling disease lists; it removes several options at once and is faster.
  8. Under the 5-group, 42-minute time-bound format, volume definitions and curve shifts are quick recall marks — secure them early in a group so the gas-exchange calculations get the remaining time, since a closed group cannot be reopened.

Beyond the exam

Where this skill shows up in the job you're competing for — and in life.

Arterial blood gas interpretation

The A-a gradient and the oxygen response are used at every bedside to classify hypoxaemia and decide whether the lung, the drive to breathe or the inspired gas is the problem.

Neonatal respiratory care

Antenatal steroid administration, the lecithin to sphingomyelin ratio and exogenous surfactant therapy all rest on the surfactant physiology described here.

Recognising occult poisoning

Knowing that pulse oximetry is falsely reassuring in carbon monoxide poisoning and fixed near 85% in methaemoglobinaemia prevents two dangerous missed diagnoses in emergency practice.

High-altitude and aviation medicine

Acclimatisation protocols, the timing of ascent, and the rationale for acetazolamide prophylaxis all follow from the alkalotic brake and its renal correction.

Where else this topic is tested

Prepare once, score in every exam that asks it.

USMLE Step 1Very high overlap — A-a gradient, shunt physiology, dissociation curve shifts and surfactant are core Step 1 content
FMGE / NExTVery high overlap, with the same blood gas interpretation emphasis
MD Anaesthesia and Pulmonary Medicine entranceFoundational — oxygenation failure mechanisms and lung mechanics underpin both specialties

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Calculate or infer the A-a gradient first. If it is normal, the lung is exchanging properly and only two causes remain — hypoventilation or a low inspired oxygen fraction — and the carbon dioxide level usually distinguishes them. If the gradient is raised, ask what happens on supplemental oxygen: correction points to ventilation-perfusion mismatch or diffusion impairment, and failure to correct means shunt. Two decisions resolve all five causes.

Because haemoglobin in the well-ventilated units is already nearly saturated, and the top of the dissociation curve is flat. Raising the alveolar oxygen tension there adds only a small amount of dissolved oxygen, which is negligible compared with the deficit created by shunted blood arriving at mixed venous saturation. The physiology of the curve, not the amount of oxygen delivered, is what makes shunt refractory.

It is genuinely physiological and follows from a measurable gradient. Gravity affects perfusion far more than ventilation, so although the apex receives less of both in absolute terms, it receives proportionately much less blood — giving a ventilation-perfusion ratio around 3 versus about 0.6 at the base. That translates into the highest alveolar oxygen tension in the lung, and Mycobacterium tuberculosis is a strict aerobe.

The order matters more than the detail, because questions test the timing. Hypoxaemia comes first, with a normal A-a gradient since the lung is healthy. Hyperventilation follows, producing a respiratory alkalosis that paradoxically limits further hyperventilation by suppressing the central chemoreceptors. Renal bicarbonate excretion over the next few days removes that brake, which is why acclimatisation takes about a week. Raised 2,3-BPG and polycythaemia are later additions.
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