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

  • 1Match each kinetic parameter to the clinical question it answers and the dosing decision it governs
  • 2Explain why loading dose is unchanged in organ impairment while maintenance dose must be reduced
  • 3Distinguish first-order from zero-order kinetics and predict overdose behaviour from the difference
  • 4Separate potency from efficacy and explain why only efficacy determines whether a drug works when another has failed
  • 5Predict onset speed from receptor family, from ion channels through to nuclear receptors
  • 6Identify enzyme induction versus inhibition from the time course of an interaction
  • 7Explain why phase II metabolism is preserved better than phase I, and apply this to benzodiazepine choice
  • 8Classify adverse drug reactions as type A or type B and choose dose reduction or withdrawal accordingly
  • 9Match teratogens, organ toxicities and antidotes to their drugs, and state the mechanism of the major antidotes
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Why this chapter matters in NEET PG
Pharmacokinetics is usually learned as a set of formulas, which is why it feels arbitrary. Each parameter exists to answer exactly one clinical question: volume of distribution asks how much drug is needed to fill the body and therefore sets the loading dose, clearance asks how fast drug is removed and therefore sets the maintenance dose, and half-life asks how long it persists and therefore sets the dosing interval and time to steady state. Knowing which question each parameter answers turns the formulas into tools.

Pharmacokinetics & Adverse Drug Reactions

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

Pharmacokinetics is usually learned as a set of formulas, which is why it feels arbitrary.

Each parameter exists to answer exactly one clinical question, and knowing which question makes the formula obvious.

Volume of distribution answers how much drug is needed to fill the body, so it sets the loading dose.

Clearance answers how fast drug is removed, so it sets the maintenance dose.

Half-life answers how long the drug persists, so it sets the dosing interval and the time to reach steady state.

ParameterQuestion it answersClinical use
BioavailabilityHow much reaches the circulationRoute and dose conversion
Volume of distributionHow much fills the bodyLoading dose
ClearanceHow fast is it removedMaintenance dose
Half-lifeHow long does it persistDosing interval, steady state
Order of kineticsDoes rate depend on concentrationToxicity prediction

2. Absorption and bioavailability

2.1 What limits absorption

Only unionised, lipid-soluble drug crosses membranes readily, so the pH of the compartment determines how much is available to cross.

Weak acids are unionised in acid and are therefore absorbed in the stomach; weak bases are unionised in alkali and are absorbed in the small intestine.

Despite that rule, most oral absorption occurs in the small intestine regardless of the drug, because its surface area is so much greater that it overwhelms the pH effect.

Ion trapping is the same principle applied to elimination: alkalinising the urine ionises a weak acid such as aspirin and traps it in the tubule, which is why urinary alkalinisation is used in salicylate poisoning.

2.2 Bioavailability and first pass

Bioavailability is the fraction of an administered dose reaching the systemic circulation unchanged, and it is 100 per cent for an intravenous dose by definition.

First-pass metabolism is why some oral doses must be far larger than the intravenous equivalent, and it occurs in gut wall and liver before the drug ever reaches the systemic circulation.

Sublingual, rectal to a partial extent, transdermal and inhalational routes bypass it.

Glyceryl trinitrate is given sublingually for precisely this reason, since oral administration would leave almost nothing active.

3. Distribution, clearance and half-life

3.1 Volume of distribution

Volume of distribution is an apparent volume, not a real one, and it can far exceed total body water.

A very large volume of distribution means the drug has left the plasma and concentrated in tissue, which is why such drugs cannot be removed by dialysis.

Digoxin, with a volume of distribution of several hundred litres, is the standard example, and this is why digoxin toxicity is treated with antibody fragments rather than dialysis.

Drugs confined to plasma by high protein binding, such as warfarin, have small volumes of distribution.

3.2 Clearance and steady state

The loading dose depends only on volume of distribution, so it does not change in renal or hepatic impairment.

The maintenance dose depends on clearance, so it must be reduced when clearance falls.

That single distinction is the most clinically useful thing in this chapter, and it is examined repeatedly.

Steady state is reached after approximately four to five half-lives, regardless of dose or dosing interval.

The same four to five half-lives are needed for a drug to be effectively eliminated after stopping it.

3.3 Orders of kinetics

First-order kinetics means a constant fraction is eliminated per unit time, so the rate rises with concentration and the half-life stays constant. Most drugs behave this way.

Zero-order kinetics means a constant amount is eliminated per unit time, because the eliminating enzyme is saturated, so small dose increases produce large concentration rises.

Phenytoin, ethanol, aspirin at high dose, warfarin and theophylline follow zero-order kinetics, and each is correspondingly dangerous in overdose.

Phenytoin is the clearest example: moving from a therapeutic to a toxic level can follow a modest dose increase, which is why levels are monitored.

3.4 Pharmacodynamics: potency, efficacy and the curve

Pharmacokinetics is what the body does to the drug; pharmacodynamics is what the drug does to the body.

Potency is the dose required to produce an effect, and it shifts the dose-response curve left or right. Efficacy is the maximum effect achievable, and it raises or lowers the ceiling of the curve.

A more potent drug is not a better drug, since a lower dose achieving the same maximum offers no clinical advantage. Greater efficacy does matter, because it means a higher ceiling.

Furosemide has greater efficacy than a thiazide, which is why it works when a thiazide has failed; that is a ceiling difference, not a potency difference.

A full agonist produces the maximal response; a partial agonist cannot, however high the dose.

A partial agonist therefore acts as an antagonist in the presence of a full agonist, because it occupies receptors while producing less effect, which is why buprenorphine can precipitate withdrawal in someone on heroin.

An inverse agonist produces the opposite effect to the agonist, which requires the receptor to have constitutive activity.

3.5 Receptor families and onset speed

Which receptor family a drug acts on predicts how quickly it works, which is a useful first filter in an unfamiliar stem.

Ligand-gated ion channels act in milliseconds, because the effect is the ion flux itself; nicotinic receptors and GABA-A are the examples.

G protein-coupled receptors act in seconds, since a second messenger cascade must be generated; muscarinic, adrenergic and opioid receptors belong here.

Enzyme-linked receptors act over minutes to hours, as with insulin and growth factor receptors.

Nuclear receptors act over hours to days, because the effect requires gene transcription and new protein synthesis.

That last point explains why corticosteroids have no immediate action in acute asthma, and why a bronchodilator is still needed alongside them.

3.6 Antagonism and the therapeutic window

A competitive antagonist is surmountable, shifting the curve rightward with the maximum preserved.

A non-competitive or irreversible antagonist is insurmountable, lowering the maximum.

Phenoxybenzamine is the standard irreversible antagonist, which is why its alpha blockade in phaeochromocytoma cannot be overcome by surging catecholamines during tumour handling.

A narrow therapeutic index is what mandates drug level monitoring, and the drugs requiring it are a short and examinable list: digoxin, lithium, phenytoin, theophylline, warfarin, aminoglycosides, ciclosporin.

Tolerance develops gradually with repeated dosing; tachyphylaxis develops rapidly, over hours, and is typical of drugs acting through neurotransmitter depletion.

4. Metabolism and drug interactions

4.1 The two phases

Phase I reactions are oxidation, reduction and hydrolysis, performed largely by cytochrome P450, and they generally produce a more polar metabolite.

Phase II reactions are conjugation, principally glucuronidation, and they produce a water-soluble product for excretion.

Phase II reactions are preserved in the elderly and in liver disease better than phase I, which is why lorazepam, oxazepam and temazepam are preferred benzodiazepines in those groups.

Those three undergo glucuronidation only, so they have no active metabolites accumulating.

4.2 Enzyme induction and inhibition

InducersInhibitors
RifampicinErythromycin, clarithromycin
Carbamazepine, phenytoin, phenobarbitoneKetoconazole and azoles
Chronic alcoholAcute alcohol
GriseofulvinCiprofloxacin
SmokingRitonavir, cimetidine
St John's wortGrapefruit juice, valproate, isoniazid, metronidazole

Induction requires new protein synthesis and therefore takes days to weeks; inhibition is competitive and happens within hours.

That difference in timing is the practical key: an interaction appearing the day a drug is started is inhibition, while one appearing a fortnight later is induction.

Rifampicin induction of oral contraceptive metabolism causing contraceptive failure is the classic examined consequence.

4.3 Genetic variation

Slow acetylators accumulate isoniazid, hydralazine and procainamide, and are prone to drug-induced lupus and isoniazid neuropathy.

Pseudocholinesterase deficiency prolongs suxamethonium apnoea.

G6PD deficiency causes haemolysis with primaquine, sulphonamides, nitrofurantoin and dapsone.

4.4 Excretion and special populations

Renal excretion is the sum of glomerular filtration, active tubular secretion and passive reabsorption.

Only unbound drug is filtered, so heavily protein-bound drugs are cleared slowly despite normal renal function.

Probenecid competes for the active secretion pathway, which is why it prolongs penicillin levels, and the same competition explains why it was historically used to extend scarce supplies.

Enterohepatic circulation returns drug conjugated in bile to the circulation after intestinal bacteria deconjugate it, prolonging the effective half-life.

That mechanism explains why broad-spectrum antibiotics can reduce oral contraceptive efficacy, and why cholestyramine shortens the action of drugs that undergo it.

Neonates have immature glucuronidation, which is why chloramphenicol accumulates and causes grey baby syndrome.

The elderly have reduced renal clearance, reduced phase I metabolism, a higher fat-to-water ratio increasing the volume of distribution of lipophilic drugs, and greater central nervous system sensitivity.

5. Adverse drug reactions

5.1 Classification

Type A reactions are augmented pharmacology: dose-dependent, predictable, common, and generally not fatal.

Type B reactions are bizarre: not dose-dependent, unpredictable, rare, and more often fatal.

The distinction matters because type A reactions are managed by dose reduction while type B reactions require permanent withdrawal.

Type C reactions are chronic, type D delayed such as carcinogenesis and teratogenesis, and type E are end-of-treatment withdrawal effects.

5.2 The organ toxicities worth knowing

ToxicityDrugs
NephrotoxicityAminoglycosides, amphotericin B, cisplatin, ciclosporin, NSAIDs
OtotoxicityAminoglycosides, furosemide, cisplatin
HepatotoxicityParacetamol, isoniazid, valproate, methotrexate
Pulmonary fibrosisBleomycin, amiodarone, busulfan, methotrexate
CardiotoxicityDoxorubicin, trastuzumab, 5-fluorouracil
Haemorrhagic cystitisCyclophosphamide, ifosfamide
Peripheral neuropathyVincristine, isoniazid, metronidazole, cisplatin
Gingival hyperplasiaPhenytoin, ciclosporin, nifedipine

Aminoglycosides and cisplatin appear in both the nephrotoxic and ototoxic lists, so combining them is particularly hazardous.

Doxorubicin cardiotoxicity is cumulative and dose-limiting, and dexrazoxane is used to reduce it.

5.3 Teratogenicity

The first trimester is the period of greatest risk because organogenesis occurs then.

DrugEffect
ThalidomidePhocomelia
IsotretinoinCraniofacial and cardiac defects
WarfarinNasal hypoplasia, stippled epiphyses
ACE inhibitorsRenal dysgenesis, oligohydramnios
Valproate, carbamazepineNeural tube defects
TetracyclineTeeth staining, bone effects
AminoglycosidesOtotoxicity
LithiumEbstein anomaly

Warfarin is teratogenic in the first trimester and causes fetal haemorrhage later, so heparin is substituted in pregnancy because it does not cross the placenta.

5.4 Specific antidotes

PoisoningAntidote
ParacetamolN-acetylcysteine
OpioidNaloxone
BenzodiazepineFlumazenil
WarfarinVitamin K, prothrombin complex concentrate
HeparinProtamine sulphate
OrganophosphateAtropine plus pralidoxime
DigoxinDigoxin-specific antibody fragments
Methanol, ethylene glycolFomepizole or ethanol
IronDesferrioxamine
CyanideHydroxocobalamin, sodium thiosulphate

N-acetylcysteine works by replenishing glutathione, which is what normally conjugates the toxic paracetamol metabolite, and it is most effective within eight hours.

Atropine in organophosphate poisoning reverses muscarinic effects only, so pralidoxime is needed to reactivate acetylcholinesterase and address nicotinic effects.

5.5 Drug development and pharmacovigilance

The clinical trial phases are examined directly, and each answers a different question.

PhaseParticipantsQuestion answered
PreclinicalAnimals, cell systemsIs it plausibly safe and active
Phase I20 to 100 healthy volunteersIs it safe, and what does the body do to it
Phase II100 to 300 patientsDoes it work, and at what dose
Phase III1000 to 3000 patientsIs it better than existing treatment
Phase IVPost-marketing populationWhat rare or long-term harms appear

Phase I uses healthy volunteers, with the important exception of cytotoxic agents, which are too toxic to give to anyone without the disease and so enter phase I in patients.

Phase IV matters because rare adverse effects cannot be detected in a few thousand participants; a reaction occurring in one in ten thousand people needs a far larger exposed population to appear.

That is exactly how thalidomide and rofecoxib were identified, and it is the justification for spontaneous reporting systems.

In India, the Pharmacovigilance Programme of India collects such reports, and any clinician may submit one.

Causality assessment asks whether the timing fits, whether the reaction is recognised for that drug, whether it improved on withdrawal, and whether it recurred on rechallenge.

Rechallenge gives the strongest evidence but is rarely justified, since deliberately reproducing a serious reaction is difficult to defend.

6. Worked examples

Example 1

A patient with severe renal impairment requires urgent digoxin loading. How should the loading and maintenance doses be adjusted?

The two doses depend on different parameters, which is the whole point of the question.

Loading dose is volume of distribution multiplied by target concentration, and renal impairment does not change volume of distribution.

The loading dose is therefore unchanged, while the maintenance dose must be reduced because clearance has fallen.

Giving a reduced loading dose would simply delay reaching therapeutic concentration without reducing toxicity risk.

Example 2

A woman on the combined oral contraceptive pill starts rifampicin for tuberculosis and becomes pregnant two months later.

Rifampicin is a potent inducer of cytochrome P450, increasing metabolism of oestrogen and progestogen.

Induction requires synthesis of new enzyme protein, so it develops over days to weeks and persists for weeks after the drug is stopped.

The two-month interval fits induction precisely, and would not fit competitive inhibition, which acts within hours.

Alternative or additional contraception is required during rifampicin therapy and for some weeks afterwards.

Example 3

A patient on phenytoin at 300 mg daily has a level of 15 micrograms per millilitre. The dose is increased to 400 mg and the level rises to 35 with nystagmus and ataxia.

A 33 per cent dose increase producing more than a doubling of concentration is not first-order behaviour.

Phenytoin follows zero-order kinetics at therapeutic concentrations because its metabolising enzyme is already saturated, so a constant amount is cleared per unit time regardless of how much more is given.

Any additional drug therefore accumulates almost entirely, which is why phenytoin dose increases must be small and levels monitored.

7. Traps the exam sets repeatedly

Reducing the loading dose in renal impairment. Loading dose depends on volume of distribution, which is unchanged; only maintenance dose depends on clearance.

Expecting dialysis to remove a drug with a large volume of distribution. The drug is in tissue, not plasma, so dialysis clears very little of the total body burden.

Confusing the timing of induction and inhibition. Inhibition appears within hours, induction over days to weeks.

Giving atropine alone in organophosphate poisoning. It addresses muscarinic effects only, and pralidoxime is needed for the nicotinic component.

Treating all benzodiazepines as equivalent in liver disease. Lorazepam, oxazepam and temazepam undergo glucuronidation only, which is preserved better than phase I metabolism.

Assuming greater potency means a better drug. Potency only sets the dose on the label; efficacy sets the ceiling, and it is the ceiling that determines whether a drug works when another has failed.

Expecting a corticosteroid to act immediately. Nuclear receptors require gene transcription, so the onset is hours, which is why bronchodilators are still needed in acute asthma.

Summary

Every kinetic parameter answers one clinical question, and knowing the question makes the formula obvious.

Volume of distribution sets the loading dose, clearance sets the maintenance dose, and half-life sets the interval and time to steady state.

Loading dose is unchanged in organ impairment; maintenance dose must fall with clearance.

Steady state and effective elimination each take four to five half-lives.

First-order kinetics clears a constant fraction; zero-order clears a constant amount and makes overdose disproportionate, as with phenytoin.

Phase II conjugation is better preserved than phase I in the elderly and in liver disease, which determines benzodiazepine choice.

Enzyme inhibition acts within hours and induction over days to weeks, and the timing in a stem identifies which is occurring.

Type A adverse reactions are dose-dependent and managed by dose reduction; type B are unpredictable and require withdrawal.

Aminoglycosides and cisplatin are both nephrotoxic and ototoxic, and combining them compounds the risk.

Potency shifts the dose-response curve sideways while efficacy sets its ceiling, and only efficacy determines whether a drug works when another has failed.

Receptor family predicts onset speed, from milliseconds for ion channels to days for nuclear receptors.

A narrow therapeutic index is what mandates monitoring, and the drugs needing it form a short list.

Clinical trial phases each answer a different question, and phase IV exists because rare harms cannot appear in a few thousand participants.

Antidotes work by defined mechanisms, and N-acetylcysteine replenishing glutathione is the clearest example.

Key formulas & results

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

The organising rule
EVERY PARAMETER ANSWERS ONE CLINICAL QUESTION. Volume of distribution = how much fills the body = LOADING DOSE. Clearance = how fast is it removed = MAINTENANCE DOSE. Half-life = how long does it persist = DOSING INTERVAL and TIME TO STEADY STATE.
Knowing which question a parameter answers makes the formula obvious rather than arbitrary.
Volume of distribution
Vd = Dose / Plasma concentration. It is an APPARENT volume, not a real one, and can far exceed total body water.
A VERY LARGE Vd means the drug has LEFT THE PLASMA and concentrated in TISSUE, so DIALYSIS CANNOT REMOVE IT. Digoxin (several hundred litres) is the standard example, which is why toxicity is treated with antibody fragments. High protein binding (warfarin) gives a SMALL Vd.
Loading and maintenance dose
LOADING DOSE = Vd x Target concentration. MAINTENANCE DOSE RATE = Clearance x Target concentration.
THE LOADING DOSE DEPENDS ONLY ON Vd, SO IT DOES NOT CHANGE IN RENAL OR HEPATIC IMPAIRMENT. Only the maintenance dose falls with clearance. This is the single most clinically useful distinction in the chapter and is examined repeatedly.
Steady state
Steady state is reached after approximately 4-5 HALF-LIVES, regardless of dose or dosing interval. The same 4-5 half-lives are needed for effective ELIMINATION after stopping.
Loading doses exist precisely to bypass this delay when waiting four to five half-lives is clinically unacceptable.
Orders of kinetics
FIRST-ORDER: a constant FRACTION eliminated per unit time; rate rises with concentration; HALF-LIFE CONSTANT. Most drugs. ZERO-ORDER: a constant AMOUNT eliminated per unit time because the enzyme is SATURATED; small dose increases give LARGE concentration rises.
ZERO-ORDER DRUGS: PHENYTOIN, ETHANOL, ASPIRIN at high dose, WARFARIN, THEOPHYLLINE — each correspondingly dangerous in overdose. Phenytoin is the clearest example, which is why levels are monitored and increments kept small.
Absorption, pH and ion trapping
Only UNIONISED, lipid-soluble drug crosses membranes. WEAK ACIDS are unionised in ACID (stomach); WEAK BASES are unionised in ALKALI (small intestine). BUT most absorption occurs in the SMALL INTESTINE regardless, because its SURFACE AREA overwhelms the pH effect.
ION TRAPPING applies the same principle to elimination: ALKALINISING THE URINE ionises a weak acid such as ASPIRIN and traps it in the tubule — the basis of urinary alkalinisation in salicylate poisoning.
Bioavailability and first pass
Bioavailability = fraction of dose reaching the systemic circulation UNCHANGED; 100% for intravenous BY DEFINITION. FIRST-PASS metabolism occurs in GUT WALL and LIVER before the drug reaches the systemic circulation. BYPASSED BY: sublingual, rectal (partially), transdermal, inhalational.
Glyceryl trinitrate is given sublingually for exactly this reason — oral administration would leave almost nothing active.
Potency versus efficacy
POTENCY = the DOSE required for an effect; shifts the curve LEFT or RIGHT. EFFICACY = the MAXIMUM effect achievable; raises or lowers the CEILING.
A MORE POTENT DRUG IS NOT A BETTER DRUG — a lower dose for the same maximum offers no clinical advantage. GREATER EFFICACY DOES MATTER. Furosemide has greater efficacy than a thiazide, which is why it works when a thiazide has failed: a CEILING difference, not a potency one.
Agonists and antagonists
FULL AGONIST: maximal response. PARTIAL AGONIST: cannot reach the maximum however high the dose, and therefore ACTS AS AN ANTAGONIST IN THE PRESENCE OF A FULL AGONIST. INVERSE AGONIST: opposite effect to the agonist, requires CONSTITUTIVE receptor activity. COMPETITIVE antagonist: SURMOUNTABLE, curve shifts right, maximum PRESERVED. NON-COMPETITIVE / IRREVERSIBLE: INSURMOUNTABLE, maximum LOWERED.
Buprenorphine as a partial agonist can PRECIPITATE WITHDRAWAL in someone on heroin. PHENOXYBENZAMINE is the standard irreversible antagonist, which is why its alpha blockade cannot be overcome by catecholamine surges during phaeochromocytoma surgery.
Receptor family predicts onset speed
LIGAND-GATED ION CHANNELS: MILLISECONDS (nicotinic, GABA-A) — the effect IS the ion flux. G PROTEIN-COUPLED: SECONDS (muscarinic, adrenergic, opioid) — a second messenger cascade must be generated. ENZYME-LINKED: MINUTES TO HOURS (insulin, growth factors). NUCLEAR: HOURS TO DAYS — requires gene transcription and new protein.
This is why CORTICOSTEROIDS HAVE NO IMMEDIATE ACTION IN ACUTE ASTHMA and a bronchodilator is still needed alongside them.
Therapeutic index and monitored drugs
Therapeutic index = TD50 / ED50. A NARROW therapeutic index is what MANDATES DRUG LEVEL MONITORING.
The monitored list is short and examinable: DIGOXIN, LITHIUM, PHENYTOIN, THEOPHYLLINE, WARFARIN, AMINOGLYCOSIDES, CICLOSPORIN. TOLERANCE develops gradually over repeated dosing; TACHYPHYLAXIS develops within hours, typically through neurotransmitter depletion.
Phase I and phase II metabolism
PHASE I: oxidation, reduction, hydrolysis, largely CYTOCHROME P450; produces a more polar metabolite. PHASE II: CONJUGATION, principally GLUCURONIDATION; produces a water-soluble product.
PHASE II IS PRESERVED BETTER THAN PHASE I in the ELDERLY and in LIVER DISEASE, which is why LORAZEPAM, OXAZEPAM and TEMAZEPAM are the preferred benzodiazepines there — they undergo glucuronidation only and have no accumulating active metabolites.
Enzyme inducers and inhibitors
INDUCERS: RIFAMPICIN, CARBAMAZEPINE, PHENYTOIN, PHENOBARBITONE, CHRONIC ALCOHOL, GRISEOFULVIN, SMOKING, ST JOHN'S WORT. INHIBITORS: ERYTHROMYCIN and CLARITHROMYCIN, AZOLES, ACUTE ALCOHOL, CIPROFLOXACIN, RITONAVIR, CIMETIDINE, GRAPEFRUIT JUICE, VALPROATE, ISONIAZID, METRONIDAZOLE.
INDUCTION REQUIRES NEW PROTEIN SYNTHESIS and takes DAYS TO WEEKS; INHIBITION IS COMPETITIVE and acts WITHIN HOURS. The timing in a stem identifies which is occurring. Rifampicin inducing oral contraceptive metabolism is the classic examined consequence.
Genetic variation in drug handling
SLOW ACETYLATORS accumulate ISONIAZID, HYDRALAZINE, PROCAINAMIDE — prone to DRUG-INDUCED LUPUS and ISONIAZID NEUROPATHY. PSEUDOCHOLINESTERASE DEFICIENCY prolongs SUXAMETHONIUM APNOEA. G6PD DEFICIENCY causes haemolysis with PRIMAQUINE, SULPHONAMIDES, NITROFURANTOIN, DAPSONE.
These three account for most pharmacogenetic questions at this level.
Excretion and enterohepatic circulation
Renal excretion = FILTRATION + ACTIVE TUBULAR SECRETION - PASSIVE REABSORPTION. Only UNBOUND drug is filtered, so heavily protein-bound drugs clear slowly despite normal renal function. PROBENECID competes for active secretion, PROLONGING PENICILLIN levels.
ENTEROHEPATIC CIRCULATION returns biliary-conjugated drug after INTESTINAL BACTERIA DECONJUGATE it, prolonging half-life — which is why BROAD-SPECTRUM ANTIBIOTICS can reduce ORAL CONTRACEPTIVE efficacy, and why cholestyramine shortens the action of such drugs.
Special populations
NEONATES: immature GLUCURONIDATION, hence CHLORAMPHENICOL accumulation and GREY BABY SYNDROME. ELDERLY: reduced renal clearance, reduced PHASE I metabolism, HIGHER FAT-TO-WATER ratio increasing Vd of lipophilic drugs, and greater CNS sensitivity.
The raised volume of distribution for lipophilic drugs in the elderly prolongs their effect independently of any change in clearance.
Adverse drug reaction classification
TYPE A (augmented): DOSE-DEPENDENT, PREDICTABLE, COMMON, rarely fatal — managed by DOSE REDUCTION. TYPE B (bizarre): NOT dose-dependent, UNPREDICTABLE, RARE, more often FATAL — requires PERMANENT WITHDRAWAL. TYPE C chronic, TYPE D delayed (carcinogenesis, teratogenesis), TYPE E end-of-treatment withdrawal.
The A versus B distinction determines management, which is why it is worth more than the letters suggest.
Organ toxicities
NEPHROTOXIC: aminoglycosides, amphotericin B, cisplatin, ciclosporin, NSAIDs. OTOTOXIC: aminoglycosides, furosemide, cisplatin. HEPATOTOXIC: paracetamol, isoniazid, valproate, methotrexate. PULMONARY FIBROSIS: bleomycin, amiodarone, busulfan, methotrexate. CARDIOTOXIC: doxorubicin, trastuzumab, 5-fluorouracil. HAEMORRHAGIC CYSTITIS: cyclophosphamide, ifosfamide. PERIPHERAL NEUROPATHY: vincristine, isoniazid, metronidazole, cisplatin. GINGIVAL HYPERPLASIA: phenytoin, ciclosporin, nifedipine.
AMINOGLYCOSIDES and CISPLATIN appear in BOTH the nephrotoxic and ototoxic lists, so combining them is particularly hazardous. Doxorubicin cardiotoxicity is CUMULATIVE and dose-limiting; dexrazoxane reduces it.
Teratogens
THALIDOMIDE: phocomelia. ISOTRETINOIN: craniofacial and cardiac. WARFARIN: nasal hypoplasia, stippled epiphyses. ACE INHIBITORS: renal dysgenesis, oligohydramnios. VALPROATE and CARBAMAZEPINE: neural tube defects. TETRACYCLINE: teeth staining. AMINOGLYCOSIDES: ototoxicity. LITHIUM: EBSTEIN ANOMALY. First trimester carries greatest risk because ORGANOGENESIS occurs then.
Warfarin is teratogenic in the first trimester AND causes fetal haemorrhage later; HEPARIN is substituted because it DOES NOT CROSS THE PLACENTA.
Antidotes and their mechanisms
PARACETAMOL: N-ACETYLCYSTEINE. OPIOID: naloxone. BENZODIAZEPINE: flumazenil. WARFARIN: vitamin K, prothrombin complex. HEPARIN: protamine. ORGANOPHOSPHATE: ATROPINE PLUS PRALIDOXIME. DIGOXIN: antibody fragments. METHANOL / ETHYLENE GLYCOL: fomepizole or ethanol. IRON: desferrioxamine. CYANIDE: hydroxocobalamin, sodium thiosulphate.
N-ACETYLCYSTEINE WORKS BY REPLENISHING GLUTATHIONE, which normally conjugates the toxic paracetamol metabolite; most effective within 8 hours. ATROPINE REVERSES MUSCARINIC EFFECTS ONLY, so PRALIDOXIME is needed to reactivate acetylcholinesterase and address the nicotinic component.
Clinical trial phases
PRECLINICAL: animals and cell systems. PHASE I: 20-100 HEALTHY VOLUNTEERS — is it safe, what does the body do to it. PHASE II: 100-300 PATIENTS — does it work, at what dose. PHASE III: 1000-3000 patients — is it better than existing treatment. PHASE IV: POST-MARKETING — what rare or long-term harms appear.
PHASE I USES HEALTHY VOLUNTEERS EXCEPT FOR CYTOTOXIC AGENTS, which are too toxic to give to anyone without the disease. Phase IV exists because a reaction occurring in 1 in 10,000 cannot appear in a few thousand participants — exactly how thalidomide and rofecoxib were identified. In India, reports go to the PHARMACOVIGILANCE PROGRAMME OF INDIA; RECHALLENGE gives the strongest causality evidence but is rarely justifiable.
⚠️

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
Reducing the loading dose in renal impairment
Loading dose is volume of distribution multiplied by target concentration, and renal impairment does not change volume of distribution. Only the maintenance dose depends on clearance and must be reduced. Reducing the loading dose merely delays therapeutic effect without reducing toxicity.
WATCH OUT
Expecting dialysis to remove a drug with a large volume of distribution
A large volume of distribution means the drug is sequestered in tissue rather than circulating in plasma, so dialysis clears only a trivial fraction of the total body burden. Digoxin toxicity is treated with antibody fragments for this reason.
WATCH OUT
Confusing the time course of induction and inhibition
Inhibition is competitive and appears within hours; induction requires synthesis of new enzyme protein and appears over days to weeks. An interaction developing a fortnight after starting a drug is induction, not inhibition.
WATCH OUT
Giving atropine alone in organophosphate poisoning
Atropine reverses muscarinic effects only. Pralidoxime is required to reactivate acetylcholinesterase and address the nicotinic effects, including the fasciculations and respiratory muscle weakness that kill.
WATCH OUT
Treating all benzodiazepines as equivalent in liver disease and old age
Lorazepam, oxazepam and temazepam undergo glucuronidation only, which is preserved better than phase I metabolism, and they generate no active metabolites. Diazepam accumulates in both groups.
WATCH OUT
Equating potency with clinical superiority
Potency only determines the number on the label. Efficacy determines the ceiling of effect and therefore whether a drug can work when another has failed, which is why furosemide succeeds where a thiazide does not.
WATCH OUT
Expecting corticosteroids to act immediately in acute asthma
Nuclear receptors require gene transcription and new protein synthesis, so onset is measured in hours. Steroids are given early precisely because of that delay, and bronchodilators provide the immediate effect.
WATCH OUT
Assuming phase I trials always use healthy volunteers
Cytotoxic anticancer agents are the standing exception, because their toxicity cannot be ethically imposed on someone without the disease. Those phase I trials recruit patients.
WATCH OUT
Escalating a phenytoin dose proportionately
Phenytoin is metabolised by a saturated enzyme at therapeutic concentrations, so it follows zero-order kinetics and additional drug accumulates almost entirely. Increments must be small and levels checked.

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 Pharmacokinetics & Adverse Drug Reactions?

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.

  • Volume of distribution sets the loading dose, clearance sets the maintenance dose, half-life sets the interval.
  • Loading dose is unchanged in organ impairment; only maintenance dose falls with clearance.
  • A large volume of distribution means the drug is in tissue, so dialysis cannot remove it.
  • Steady state and effective elimination each take four to five half-lives.
  • First-order clears a constant fraction; zero-order clears a constant amount and makes overdose disproportionate.
  • Phenytoin, ethanol, high-dose aspirin, warfarin and theophylline follow zero-order kinetics.
  • Ion trapping underlies urinary alkalinisation in salicylate poisoning.
  • Sublingual, transdermal and inhalational routes bypass first-pass metabolism.
  • Potency shifts the curve sideways; efficacy raises the ceiling, and only efficacy rescues a failed drug.
  • A partial agonist acts as an antagonist in the presence of a full agonist.
  • Competitive antagonism is surmountable; irreversible antagonism lowers the maximum, as with phenoxybenzamine.
  • Receptor family predicts onset: milliseconds for ion channels, hours to days for nuclear receptors.
  • Narrow therapeutic index drugs needing monitoring: digoxin, lithium, phenytoin, theophylline, warfarin, aminoglycosides, ciclosporin.
  • Phase II conjugation is preserved better than phase I, which determines benzodiazepine choice.
  • Induction takes days to weeks; inhibition acts within hours, and the timing identifies which.
  • Slow acetylators are prone to drug-induced lupus and isoniazid neuropathy.
  • Probenecid competes for tubular secretion and prolongs penicillin levels.
  • Enterohepatic circulation explains antibiotic interference with oral contraceptives.
  • Neonates lack glucuronidation, hence grey baby syndrome with chloramphenicol.
  • Type A reactions are dose-dependent and managed by dose reduction; type B require withdrawal.
  • Aminoglycosides and cisplatin are both nephrotoxic and ototoxic.
  • Warfarin is teratogenic early and causes fetal haemorrhage late; heparin does not cross the placenta.
  • N-acetylcysteine replenishes glutathione; organophosphate poisoning needs pralidoxime as well as atropine.
  • Phase I uses healthy volunteers except for cytotoxics; phase IV detects rare harms.

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; kinetics, pharmacodynamics and adverse reactions contribute 3-4 questions per attempt and recur across every clinical subject

Question styleMarks eachTypical countWhat it tests
Kinetic parameters and dosing4~1Volume of distribution, clearance, half-life, loading versus maintenance dose, steady state, orders of kinetics
Pharmacodynamics4~1Potency versus efficacy, agonists and antagonists, receptor families and onset, therapeutic index, tolerance
Metabolism and interactions4~1Phase I and II, inducers and inhibitors, pharmacogenetics, excretion and special populations
Adverse reactions and antidotes4~1Type A versus type B, organ toxicities, teratogens, antidotes and their mechanisms, trial phases and pharmacovigilance
Prep strategy
  • First pass: fix which clinical question each parameter answers, then the formulas need almost no separate memorisation.
  • Second pass: memorise the four tables cold — inducers and inhibitors, organ toxicities, teratogens and antidotes — since these are recall items that cannot be reasoned out.
  • Final pass: work dosing and interaction vignettes, which is where the exam places this material rather than asking for definitions.

Exam-hall strategy

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

  1. Identify which kinetic question a stem is asking before touching a formula; the parameter follows from the question.
  2. In any organ impairment stem, separate loading from maintenance dose immediately.
  3. When a dose change produces a disproportionate concentration change, suspect zero-order kinetics.
  4. For interaction questions, read the time interval first, since it distinguishes induction from inhibition.
  5. In pharmacodynamics stems, decide whether the question concerns the position of the curve or its ceiling.
  6. For adverse reaction questions, classify as type A or type B, since that determines whether the answer is dose reduction or withdrawal.
  7. With NEET PG's +4/-1 marking, the antidote, teratogen and organ toxicity tables are pure recall and among the safest marks available.
  8. Under the 5-group, 42-minute time-bound format, secure the table-based recall items first and leave the multi-step dosing calculations for 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.

Dosing in renal impairment

The loading versus maintenance distinction is applied daily on every ward, and getting it wrong either delays therapeutic effect or causes accumulation toxicity.

Managing drug interactions

Recognising rifampicin or azole interactions before prescribing prevents contraceptive failure, transplant rejection and toxicity across many drug classes.

Therapeutic drug monitoring

The narrow therapeutic index list determines which drugs need levels checked, and the kinetics determine when the sample should be taken relative to the dose.

Reporting adverse reactions

The Pharmacovigilance Programme of India depends on clinicians recognising and reporting suspected reactions, which is how post-marketing signals are generated.

Where else this topic is tested

Prepare once, score in every exam that asks it.

USMLE Step 1Very high overlap — kinetics, pharmacodynamics and adverse effects are core Step 1 content with identical framing
FMGE / NExTVery high overlap, with heavier emphasis on antidotes and adverse effect recall
MD Pharmacology entranceFoundational — this material is assumed working knowledge, with trial design examined in far more depth

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Because they are answering different questions. The loading dose asks how much drug is needed to fill the body's apparent volume and reach the target concentration — and that volume is a property of how the drug distributes into tissue, which renal failure does not alter. The maintenance dose asks how much must be replaced per unit time to match what is being removed, and that depends entirely on clearance, which renal failure does reduce. One is about filling a container, the other about replacing what leaks out.

Use the clock. Inhibition is competition at an existing enzyme, so it takes effect essentially as soon as both drugs are present — within hours, sometimes with the first dose. Induction requires the cell to transcribe and translate new enzyme protein, so it builds over days to weeks and persists for weeks after the inducer is stopped. If a stem gives you an interaction appearing on day one, it is inhibition; if on week two, it is induction. The direction of the effect confirms it.

Potency matters, but not in the way candidates assume. It determines the dose on the label, which affects tablet size, cost and sometimes the practicality of a route — a drug requiring grams cannot be given sublingually. What potency never determines is whether the drug will work when a less potent one has failed, because that is a question about the ceiling. When a stem describes a treatment failure being rescued by a different agent, the answer involves efficacy.

Because the safety margin disappears. In first-order kinetics, doubling the dose roughly doubles the concentration, and the body clears more drug as levels rise — the system self-corrects. In zero-order kinetics the eliminating enzyme is already working flat out, so it removes the same absolute amount however high the concentration goes. Any extra drug simply accumulates. That is why a modest phenytoin increment can move a patient from therapeutic to toxic, and why these drugs need level monitoring rather than dose calculation alone.
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