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

  • 1Apply the Gram stain, morphology and key test sequence to narrow any organism to a small group
  • 2Explain why lipopolysaccharide makes Gram-negative sepsis so profound
  • 3Use catalase and coagulase in order to identify the common Gram-positive cocci
  • 4Explain the superantigen mechanism and why a short incubation implies preformed toxin
  • 5Distinguish which streptococcal sequela is prevented by treating pharyngitis and why
  • 6Separate the diarrhoeal Escherichia coli pathotypes by mechanism and justify avoiding antibiotics in O157:H7
  • 7Contrast cholera and pertussis toxin actions on G proteins, and tetanus with botulinum toxin action
  • 8Interpret treponemal and non-treponemal serology correctly
  • 9Distinguish transformation, transduction and conjugation, and explain phage-encoded toxins
  • 10Select an appropriate sterilisation method and explain why moist heat outperforms dry heat
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Why this chapter matters in NEET PG
Bacteriology looks like a catalogue of organisms each with its own list of properties, but it is better approached as a decision tree. The laboratory identifies organisms by a fixed sequence — Gram stain, then shape and arrangement, then one distinguishing test — and the exam follows that same sequence. Three steps narrow almost any organism to a small group before clinical features are considered at all, which replaces memorising organism lists with learning branch points.

Bacteriology

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

Bacteriology looks like a catalogue of organisms, each with its own list of properties.

It is better approached as a decision tree, because the laboratory identifies organisms by a fixed sequence and the exam follows that same sequence.

Gram stain first, then shape and arrangement, then one distinguishing test. Three steps narrow almost any organism to a small group before clinical features are considered at all.

StepWhat it gives you
Gram reactionSplits the entire field in two
Shape and arrangementCocci in clusters, chains, pairs; bacilli
One key testCatalase, coagulase, oxidase, lactose fermentation
Growth requirementSpecial media, atmosphere, temperature
Toxin or virulence factorExplains the clinical syndrome

The Gram reaction reflects cell wall structure: Gram-positive organisms have thick peptidoglycan retaining crystal violet, while Gram-negative organisms have thin peptidoglycan and an outer membrane containing lipopolysaccharide.

Lipopolysaccharide is why Gram-negative sepsis produces such profound shock, since its lipid A component is a potent trigger of cytokine release.

2. Gram-positive cocci

2.1 The catalase and coagulase branch

Catalase separates staphylococci, which are positive, from streptococci and enterococci, which are negative.

Coagulase then separates Staphylococcus aureus, which is positive, from the coagulase-negative staphylococci.

Those two tests, in that order, identify the commonest Gram-positive pathogens in two steps.

Staphylococcus epidermidis colonises prosthetic material and forms biofilm, while Staphylococcus saprophyticus causes urinary infection in young women and is novobiocin-resistant.

2.2 Staphylococcus aureus and its toxins

Many of its syndromes are toxin-mediated rather than invasive, which is why some occur without the organism being present at the site of illness.

Toxic shock syndrome toxin acts as a superantigen, cross-linking the T cell receptor to MHC class II outside the antigen-binding groove.

That mechanism activates a huge fraction of T cells simultaneously, producing massive cytokine release, and it explains why the illness is so fulminant.

Exfoliative toxin causes scalded skin syndrome by cleaving desmoglein, and enterotoxin causes food poisoning with vomiting within one to six hours because it is preformed in the food.

The short incubation is the diagnostic clue, since an organism that has to multiply first would take much longer.

2.3 Streptococci

Haemolysis on blood agar divides them: beta-haemolytic organisms lyse red cells completely, alpha-haemolytic produce green discolouration, gamma produce none.

OrganismGroupDistinguishing test
Streptococcus pyogenesA, betaBacitracin sensitive
Streptococcus agalactiaeB, betaCAMP positive, hippurate positive
Streptococcus pneumoniaeAlphaOptochin sensitive, bile soluble
Viridans streptococciAlphaOptochin resistant
EnterococcusDGrowth in 6.5 per cent salt and bile

Streptococcus pyogenes causes both suppurative disease and two non-suppurative sequelae: rheumatic fever through molecular mimicry, and post-streptococcal glomerulonephritis through immune complex deposition.

Only rheumatic fever is prevented by treating the pharyngitis, since glomerulonephritis follows skin as well as throat infection and antibiotic treatment does not reliably prevent it.

Group B streptococcus is the leading cause of neonatal sepsis, which is why maternal screening and intrapartum prophylaxis exist.

2.4 The Gram-positive bacilli

These are fewer in number and each is identified by a single memorable feature.

Corynebacterium diphtheriae grows on tellurite and Loeffler medium and produces a toxin inhibiting elongation factor 2, which halts protein synthesis.

The pseudomembrane in diphtheria is dangerous mechanically as well as toxically, since it can obstruct the airway, and the toxin additionally causes myocarditis and neuritis.

The Elek test demonstrates toxin production, which matters because non-toxigenic strains exist and cause much milder disease.

Listeria monocytogenes shows tumbling motility at 22 degrees, grows at refrigeration temperature, and crosses the placenta, which is why it causes neonatal and pregnancy-associated infection.

It is intrinsically resistant to cephalosporins, which is exactly why ampicillin is added when listeria is a possibility in meningitis.

Bacillus anthracis is non-motile with a polypeptide capsule and produces a black eschar in cutaneous disease, while Bacillus cereus causes the two food poisoning syndromes.

Nocardia is partially acid-fast, aerobic and branching, whereas Actinomyces is anaerobic, not acid-fast, and produces sulphur granules.

3. Gram-negative organisms

3.1 The enterics

Lactose fermentation on MacConkey agar is the first division: Escherichia coli, Klebsiella and Enterobacter ferment lactose; Salmonella, Shigella and Proteus do not.

Oxidase separates Pseudomonas, which is positive, from the Enterobacteriaceae, which are negative.

OrganismKey feature
Escherichia coliCommonest cause of urinary infection and Gram-negative sepsis
KlebsiellaCurrant-jelly sputum, alcoholics, mucoid capsule
ProteusSwarming growth, urease, struvite stones
Salmonella typhiSustained fever, relative bradycardia, rose spots
ShigellaVery low infective dose, bloody diarrhoea
Vibrio choleraeRice-water stools, comma-shaped, oxidase positive
Pseudomonas aeruginosaBlue-green pigment, grape-like odour, oxidase positive

Shigella needs only a handful of organisms to cause disease, which is why person-to-person spread is so efficient, whereas Salmonella requires a far larger inoculum and is usually food-borne.

Cholera toxin permanently activates the Gs protein, locking adenylate cyclase on, and the resulting cyclic AMP drives massive chloride and water secretion.

That is why cholera produces watery stools without inflammation or blood, and why oral rehydration containing glucose works, since glucose-coupled sodium absorption remains intact.

3.2 The diarrhoeal Escherichia coli

Five pathotypes are distinguished by mechanism rather than by appearance.

Enterotoxigenic strains cause traveller's diarrhoea through heat-labile and heat-stable toxins, the labile toxin working like cholera toxin.

Enterohaemorrhagic strains, particularly O157:H7, produce Shiga toxin, cause bloody diarrhoea without fever, and can lead to haemolytic uraemic syndrome.

Antibiotics are avoided in O157:H7 because killing the organism releases more toxin and increases the risk of haemolytic uraemic syndrome.

Enteroinvasive strains resemble Shigella, enteropathogenic strains cause infantile diarrhoea by attaching and effacing microvilli, and enteroaggregative strains cause persistent diarrhoea.

3.3 The fastidious and atypical organisms

Haemophilus influenzae requires factors X and V, which is why it grows on chocolate agar but not blood agar.

Bordetella pertussis produces a toxin that inhibits Gi, the mirror image of cholera toxin's action on Gs, and both raise cyclic AMP by opposite routes.

Legionella grows on buffered charcoal yeast extract, causes pneumonia with hyponatraemia and diarrhoea, and is diagnosed by urinary antigen.

Mycoplasma has no cell wall, is therefore resistant to all beta-lactams, and causes atypical pneumonia with cold agglutinins.

Chlamydia is an obligate intracellular organism with a two-form life cycle: the elementary body infects and the reticulate body replicates.

The elementary body is the extracellular infectious form and the reticulate body the intracellular replicating one, which is why the organism cannot be cultured on ordinary media and why treatment requires an agent penetrating cells.

Chlamydia trachomatis serovars determine the disease: A to C cause trachoma, D to K cause genital infection and neonatal conjunctivitis, and L1 to L3 cause lymphogranuloma venereum.

Rickettsiae are also obligate intracellular organisms, transmitted by arthropods, and cause the typhus and spotted fever groups.

The Weil-Felix test exploits cross-reactivity with Proteus antigens and is now largely historical, having been replaced by serology and molecular methods.

3.4 Neisseria and the zoonoses

Both Neisseria species are oxidase-positive Gram-negative diplococci, and sugar fermentation separates them: meningococcus ferments maltose and glucose, gonococcus only glucose.

Only meningococcus has a polysaccharide capsule, which is why a vaccine exists for it and not for gonococcus, and why terminal complement deficiency predisposes specifically to neisserial disease.

Gonococcus undergoes rapid antigenic variation of its pili, which is why natural infection confers no immunity and why reinfection is common.

Brucella causes undulant fever with a history of unpasteurised dairy or animal contact, and is a recognised laboratory-acquired infection.

Yersinia pestis causes plague with buboes and shows bipolar safety-pin staining.

Bartonella causes cat-scratch disease, and Pasteurella multocida causes rapidly developing cellulitis after a cat or dog bite, often within hours.

The speed of onset after a bite is the discriminating feature, since staphylococcal or streptococcal wound infection takes considerably longer.

4. Mycobacteria, anaerobes and spirochaetes

4.1 Mycobacteria

The cell wall is rich in mycolic acid, which makes the organism acid-fast and accounts for its slow growth and environmental resilience.

Ziehl-Neelsen staining exploits that property, and fluorescent auramine staining is more sensitive for screening.

Cartridge-based nucleic acid amplification testing detects both Mycobacterium tuberculosis and rifampicin resistance in about two hours, which is why it has replaced smear microscopy as the initial test under India's programme.

Culture on Lowenstein-Jensen medium remains the reference standard but takes weeks, which is precisely the delay the molecular test avoids.

Smear microscopy detects only around ten thousand bacilli per millilitre, which is why smear-negative disease is common and why a negative smear never excludes tuberculosis.

Non-tuberculous mycobacteria are distinguished by their growth characteristics: Mycobacterium avium complex causes disseminated disease in advanced HIV, and Mycobacterium marinum causes swimming pool granuloma.

Mycobacterium leprae cannot be cultured on artificial media at all, and is classified by the Ridley-Jopling scale from tuberculoid, with few organisms and strong immunity, to lepromatous, with abundant organisms and weak cell-mediated immunity.

The lepromin test is positive in tuberculoid and negative in lepromatous disease, which reflects that immunity gradient rather than the burden of organisms.

4.2 Anaerobes and spore-formers

Clostridium tetani produces tetanospasmin, which blocks release of glycine and GABA from inhibitory interneurons, causing unopposed muscle contraction and spastic paralysis.

Clostridium botulinum produces a toxin blocking acetylcholine release at the neuromuscular junction, causing flaccid paralysis.

The two toxins are mechanistically similar cleavers of SNARE proteins, and the opposite clinical pictures come from which neuron they act on, inhibitory in tetanus and motor in botulism.

Clostridium perfringens causes gas gangrene through alpha toxin, a lecithinase that destroys membranes.

Clostridioides difficile causes pseudomembranous colitis through toxins A and B, typically after antibiotic therapy.

All four clostridia are spore-forming anaerobes, and the spore is what allows them to persist in soil, dust and hospital surfaces long after vegetative organisms would have died.

That resilience is why alcohol hand rub does not inactivate Clostridioides difficile spores and why soap and water handwashing is required instead.

Bacteroides fragilis is the dominant non-spore-forming anaerobe of the colon and is a common component of intra-abdominal abscesses.

Anaerobic infections in general are suggested by foul-smelling discharge, gas in tissues, and a site adjacent to a mucosal surface where anaerobes normally reside.

4.3 Spirochaetes

Treponema pallidum cannot be cultured and is diagnosed serologically, using non-treponemal tests such as VDRL and RPR for screening and activity, and treponemal tests for confirmation.

Non-treponemal titres fall after treatment while treponemal tests stay positive for life, which is why the two serve different purposes.

Leptospira causes Weil disease with jaundice and renal failure, and is associated with water exposure and rodent urine.

Borrelia burgdorferi causes Lyme disease with erythema migrans, and Borrelia recurrentis causes relapsing fever through antigenic variation.

The relapses in relapsing fever occur because each wave of antibody clears one antigenic variant while a new one emerges, which is the same evasion strategy the gonococcus uses with its pili.

The Jarisch-Herxheimer reaction follows treatment of any spirochaetal infection, and is caused by sudden release of antigen from killed organisms rather than by drug allergy.

5. Bacterial genetics and sterilisation

5.1 How resistance moves between bacteria

Bacteria acquire new genes by three mechanisms, and distinguishing them is a reliable examination point.

Transformation is uptake of naked DNA from the environment, and only naturally competent organisms such as Streptococcus pneumoniae, Haemophilus and Neisseria do it readily.

Transduction is transfer by a bacteriophage, and it comes in two forms: generalised, where any fragment may be packaged by mistake, and specialised, where genes adjacent to the prophage insertion site are carried.

Diphtheria and botulinum toxins are both encoded by phage genes, which is why non-toxigenic strains exist and why lysogenic conversion matters clinically.

Conjugation is direct transfer through a sex pilus, requires cell contact, and is the principal route by which resistance plasmids spread.

Transposons move genes within and between DNA molecules, and integrons capture and express resistance cassettes, which is how multiple resistances accumulate together.

5.2 Sterilisation and disinfection

Sterilisation destroys all microbial life including spores; disinfection reduces organisms but does not reliably kill spores.

MethodConditionsUse
Autoclave121 degrees, 15 psi, 15 minutesMost reliable general method
Hot air oven160 degrees for 2 hoursGlassware, oils, powders
Ethylene oxideGas, prolongedHeat-sensitive plastics, endoscopes
Glutaraldehyde2 per cent immersionEndoscopes, delicate instruments
Pasteurisation63 degrees for 30 minutes or 72 for 15 secondsMilk; does not sterilise
Filtration0.22 micrometreHeat-labile fluids, does not remove viruses

Moist heat kills faster than dry heat at the same temperature because it denatures proteins rather than merely oxidising them, which is why the autoclave works at 121 degrees while the hot air oven needs 160.

Spore-forming organisms are the benchmark for sterilisation, and Geobacillus stearothermophilus spores are used to validate autoclave cycles.

Prions resist all conventional methods and require extended autoclaving with sodium hydroxide.

6. Worked examples

Example 1

A child develops vomiting two hours after eating rice from a buffet. Others who ate the same dish are also affected.

The interval is the decisive detail, because two hours is far too short for an organism to multiply and invade.

A very short incubation means a preformed toxin was already in the food.

Staphylococcus aureus enterotoxin and Bacillus cereus emetic toxin both act this way, and the association with reheated rice points specifically to Bacillus cereus.

Illness beginning after twelve hours or more would instead suggest an organism that had to multiply in the gut.

Example 2

A patient with bloody diarrhoea and no fever develops acute kidney injury and thrombocytopenia. Stool culture grows a sorbitol-non-fermenting Escherichia coli.

Sorbitol non-fermentation is the screening characteristic of O157:H7 on selective media.

The organism produces Shiga toxin, which damages endothelium and causes haemolytic uraemic syndrome.

Antibiotics must be avoided, because killing the organism releases stored toxin and increases the risk of haemolytic uraemic syndrome.

Management is supportive, with attention to fluid balance and renal replacement if required, and antimotility agents are also avoided.

Example 3

A patient has trismus and generalised muscle spasms with a clear sensorium following a puncture wound.

Preserved consciousness alongside severe spasm points away from a central nervous system infection.

Tetanospasmin travels retrogradely up the motor neuron and blocks release of glycine and GABA from inhibitory interneurons in the spinal cord.

Removing inhibition leaves motor neurons firing unopposed, which produces spasm without any loss of consciousness.

Botulinum toxin cleaves the same class of protein but acts at the motor terminal itself, so it produces flaccid paralysis instead.

7. Traps the exam sets repeatedly

Giving antibiotics for Escherichia coli O157:H7. Bacterial killing releases toxin and increases the risk of haemolytic uraemic syndrome.

Expecting antibiotic treatment of pharyngitis to prevent glomerulonephritis. It prevents rheumatic fever, not glomerulonephritis.

Using a beta-lactam for mycoplasma. It has no cell wall, so the entire class is useless.

Assuming a positive treponemal test means active syphilis. It stays positive for life; non-treponemal titres indicate activity.

Reading a negative lepromin test as absence of leprosy. It is negative in lepromatous disease, where the organism burden is highest.

Using a cephalosporin where listeria is possible. Listeria is intrinsically cephalosporin-resistant, so ampicillin must be added.

Assuming pasteurisation sterilises. It reduces pathogen load but leaves spores and some organisms viable.

Treating all diphtheria isolates as toxigenic. Non-toxigenic strains exist, which is what the Elek test distinguishes.

Summary

Bacteriology is a decision tree, and the laboratory sequence of Gram stain, morphology and one key test is the sequence the exam follows.

Lipopolysaccharide in the Gram-negative outer membrane is why Gram-negative sepsis causes such profound shock.

Catalase then coagulase identifies the commonest Gram-positive pathogens in two steps.

A short incubation in food poisoning means preformed toxin rather than bacterial multiplication.

Superantigens activate T cells outside the antigen-binding groove, which is why toxic shock is so fulminant.

Rheumatic fever is prevented by treating pharyngitis; post-streptococcal glomerulonephritis is not.

Cholera toxin locks Gs on and pertussis toxin inhibits Gi, raising cyclic AMP by opposite routes.

Antibiotics are avoided in O157:H7 because killing the organism releases Shiga toxin.

Tetanus and botulinum toxins both cleave SNARE proteins, and the opposite pictures reflect which neuron is affected.

Non-treponemal serology tracks disease activity while treponemal tests remain positive for life.

Resistance moves between bacteria by transformation, transduction and conjugation, with conjugation carrying most resistance plasmids.

Diphtheria and botulinum toxins are phage-encoded, which is why non-toxigenic strains exist.

Moist heat kills faster than dry heat because it denatures rather than oxidises, which is why the autoclave works at a lower temperature than the hot air oven.

Key formulas & results

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

The identification sequence
GRAM REACTION splits the field in two. SHAPE AND ARRANGEMENT (cocci in clusters, chains, pairs; bacilli). ONE KEY TEST (catalase, coagulase, oxidase, lactose fermentation). Then GROWTH REQUIREMENT and TOXIN or VIRULENCE FACTOR.
Three steps narrow almost any organism before clinical features are considered. GRAM-POSITIVE: thick peptidoglycan retaining crystal violet. GRAM-NEGATIVE: thin peptidoglycan plus an OUTER MEMBRANE containing LIPOPOLYSACCHARIDE, whose LIPID A drives the cytokine release of Gram-negative septic shock.
Catalase then coagulase
CATALASE separates STAPHYLOCOCCI (positive) from STREPTOCOCCI and ENTEROCOCCI (negative). COAGULASE separates STAPHYLOCOCCUS AUREUS (positive) from coagulase-negative staphylococci.
S. EPIDERMIDIS colonises prosthetic material and forms BIOFILM. S. SAPROPHYTICUS causes UTI in young women and is NOVOBIOCIN-RESISTANT.
Staphylococcal toxins
TOXIC SHOCK SYNDROME TOXIN is a SUPERANTIGEN, cross-linking the T cell receptor to MHC class II OUTSIDE the antigen-binding groove, activating a huge fraction of T cells at once. EXFOLIATIVE TOXIN cleaves DESMOGLEIN, causing scalded skin syndrome. ENTEROTOXIN causes vomiting within 1-6 HOURS because it is PREFORMED IN THE FOOD.
THE SHORT INCUBATION IS THE DIAGNOSTIC CLUE — an organism that must multiply first would take far longer. Bacillus cereus emetic toxin behaves identically and is classically associated with reheated rice.
Streptococcal identification and sequelae
S. PYOGENES: group A, beta-haemolytic, BACITRACIN SENSITIVE. S. AGALACTIAE: group B, CAMP and HIPPURATE positive. S. PNEUMONIAE: alpha, OPTOCHIN SENSITIVE and BILE SOLUBLE. VIRIDANS: alpha, optochin RESISTANT. ENTEROCOCCUS: grows in 6.5% SALT and BILE.
ONLY RHEUMATIC FEVER IS PREVENTED BY TREATING THE PHARYNGITIS. Post-streptococcal glomerulonephritis follows SKIN as well as throat infection and is NOT reliably prevented by antibiotics. Group B streptococcus is the leading cause of NEONATAL SEPSIS, hence maternal screening and intrapartum prophylaxis.
Gram-positive bacilli
CORYNEBACTERIUM DIPHTHERIAE: tellurite and Loeffler media; toxin inhibits ELONGATION FACTOR 2; ELEK TEST demonstrates toxin production. LISTERIA: TUMBLING MOTILITY at 22 degrees, grows at REFRIGERATION temperature, CROSSES THE PLACENTA, INTRINSICALLY CEPHALOSPORIN-RESISTANT. BACILLUS ANTHRACIS: non-motile, POLYPEPTIDE capsule, black ESCHAR. NOCARDIA: PARTIALLY ACID-FAST, AEROBIC, branching. ACTINOMYCES: ANAEROBIC, not acid-fast, SULPHUR GRANULES.
The diphtheria pseudomembrane is dangerous MECHANICALLY as well as toxically, and the toxin also causes MYOCARDITIS and NEURITIS. Listeria's cephalosporin resistance is exactly why AMPICILLIN is added in listeria-risk meningitis.
Enteric identification and the enterics
LACTOSE FERMENTATION on MacConkey: E. COLI, KLEBSIELLA, ENTEROBACTER ferment; SALMONELLA, SHIGELLA, PROTEUS do not. OXIDASE separates PSEUDOMONAS (positive) from Enterobacteriaceae (negative). KLEBSIELLA: currant-jelly sputum, alcoholics. PROTEUS: SWARMING, UREASE, STRUVITE stones. SALMONELLA TYPHI: sustained fever, RELATIVE BRADYCARDIA, rose spots. VIBRIO CHOLERAE: rice-water stools, comma-shaped, oxidase positive. PSEUDOMONAS: blue-green pigment, grape-like odour.
SHIGELLA needs only a handful of organisms, hence efficient PERSON-TO-PERSON spread; Salmonella needs a far larger inoculum and is usually FOOD-BORNE.
Cholera and pertussis toxins: opposite routes to the same result
CHOLERA TOXIN permanently ACTIVATES Gs, locking adenylate cyclase ON. PERTUSSIS TOXIN INHIBITS Gi. BOTH raise cyclic AMP, by OPPOSITE routes.
Raised cyclic AMP drives massive chloride and water secretion, so cholera gives WATERY stools WITHOUT inflammation or blood. ORAL REHYDRATION WITH GLUCOSE WORKS because GLUCOSE-COUPLED SODIUM ABSORPTION REMAINS INTACT.
The five diarrhoeal E. coli pathotypes
ENTEROTOXIGENIC: traveller's diarrhoea; heat-labile toxin acts like cholera toxin. ENTEROHAEMORRHAGIC (O157:H7): SHIGA TOXIN, BLOODY diarrhoea WITHOUT FEVER, HAEMOLYTIC URAEMIC SYNDROME, SORBITOL NON-FERMENTING. ENTEROINVASIVE: resembles Shigella. ENTEROPATHOGENIC: infantile diarrhoea, ATTACHING AND EFFACING. ENTEROAGGREGATIVE: persistent diarrhoea.
ANTIBIOTICS ARE AVOIDED IN O157:H7 BECAUSE KILLING THE ORGANISM RELEASES MORE TOXIN and increases haemolytic uraemic syndrome risk; antimotility agents are avoided too.
Fastidious and atypical organisms
HAEMOPHILUS INFLUENZAE needs factors X and V — grows on CHOCOLATE agar, not blood agar. LEGIONELLA: BUFFERED CHARCOAL YEAST EXTRACT; pneumonia with HYPONATRAEMIA and DIARRHOEA; URINARY ANTIGEN. MYCOPLASMA: NO CELL WALL, resistant to ALL beta-lactams, atypical pneumonia with COLD AGGLUTININS. CHLAMYDIA: obligate intracellular; ELEMENTARY BODY infects, RETICULATE BODY replicates.
C. TRACHOMATIS SEROVARS: A-C TRACHOMA, D-K genital and neonatal conjunctivitis, L1-L3 LYMPHOGRANULOMA VENEREUM. RICKETTSIAE are also obligate intracellular and arthropod-borne; the WEIL-FELIX test exploits Proteus cross-reactivity and is now largely historical.
Neisseria and the zoonoses
Both Neisseria are OXIDASE-POSITIVE Gram-negative DIPLOCOCCI. MENINGOCOCCUS ferments MALTOSE AND GLUCOSE; GONOCOCCUS only GLUCOSE. ONLY MENINGOCOCCUS HAS A POLYSACCHARIDE CAPSULE, hence a vaccine exists for it and not for gonococcus. BRUCELLA: undulant fever, unpasteurised dairy, LABORATORY-ACQUIRED. YERSINIA PESTIS: buboes, BIPOLAR SAFETY-PIN staining. PASTEURELLA MULTOCIDA: rapid cellulitis WITHIN HOURS of a cat or dog bite.
TERMINAL COMPLEMENT DEFICIENCY predisposes specifically to neisserial disease because the membrane attack complex is what kills them. GONOCOCCUS undergoes rapid ANTIGENIC VARIATION OF PILI, so natural infection confers no immunity. Speed of onset after a bite is the discriminator, since staphylococcal or streptococcal infection takes far longer.
Mycobacteria
MYCOLIC ACID makes the organism ACID-FAST and accounts for slow growth and environmental resilience. ZIEHL-NEELSEN staining; FLUORESCENT AURAMINE is more sensitive for screening. CARTRIDGE-BASED NUCLEIC ACID AMPLIFICATION detects M. tuberculosis AND RIFAMPICIN RESISTANCE in about TWO HOURS. LOWENSTEIN-JENSEN culture is the reference standard but takes WEEKS.
SMEAR MICROSCOPY DETECTS ONLY ~10,000 BACILLI PER mL, which is why smear-negative disease is common and a NEGATIVE SMEAR NEVER EXCLUDES TUBERCULOSIS. Molecular testing has replaced smear as the initial test under India's programme.
Leprosy classification
M. LEPRAE CANNOT BE CULTURED on artificial media. RIDLEY-JOPLING scale runs from TUBERCULOID (FEW organisms, STRONG cell-mediated immunity) to LEPROMATOUS (ABUNDANT organisms, WEAK immunity). LEPROMIN TEST is POSITIVE in tuberculoid, NEGATIVE in lepromatous.
The lepromin result reflects the IMMUNITY GRADIENT, not the organism burden — which is why a NEGATIVE test does not exclude leprosy and in fact indicates the form with the HIGHEST bacillary load.
Clostridial toxins
TETANOSPASMIN blocks release of GLYCINE and GABA from INHIBITORY INTERNEURONS, causing unopposed contraction and SPASTIC paralysis with a CLEAR SENSORIUM. BOTULINUM TOXIN blocks ACETYLCHOLINE release at the NEUROMUSCULAR JUNCTION, causing FLACCID paralysis. C. PERFRINGENS ALPHA TOXIN is a LECITHINASE causing gas gangrene. C. DIFFICILE toxins A and B cause pseudomembranous colitis.
BOTH TETANUS AND BOTULINUM TOXINS CLEAVE SNARE PROTEINS — the opposite clinical pictures come from WHICH NEURON THEY ACT ON, inhibitory in tetanus and motor in botulism. All four clostridia are SPORE-FORMING, which is why ALCOHOL HAND RUB DOES NOT INACTIVATE C. DIFFICILE and soap and water is required.
Spirochaetes and syphilis serology
T. PALLIDUM CANNOT BE CULTURED. NON-TREPONEMAL tests (VDRL, RPR) for SCREENING and ACTIVITY; TREPONEMAL tests for CONFIRMATION. LEPTOSPIRA: WEIL DISEASE with jaundice and renal failure, water exposure and rodent urine. BORRELIA BURGDORFERI: Lyme disease, ERYTHEMA MIGRANS. BORRELIA RECURRENTIS: relapsing fever by ANTIGENIC VARIATION.
NON-TREPONEMAL TITRES FALL AFTER TREATMENT WHILE TREPONEMAL TESTS STAY POSITIVE FOR LIFE, which is why the two serve different purposes. The JARISCH-HERXHEIMER reaction after treating any spirochaetal infection is ANTIGEN RELEASE from killed organisms, NOT drug allergy.
How resistance moves between bacteria
TRANSFORMATION: uptake of NAKED DNA; only naturally competent organisms (S. pneumoniae, Haemophilus, Neisseria). TRANSDUCTION: transfer by BACTERIOPHAGE — GENERALISED (any fragment packaged by mistake) or SPECIALISED (genes adjacent to the prophage site). CONJUGATION: direct transfer through a SEX PILUS, requires CELL CONTACT, principal route for RESISTANCE PLASMIDS.
DIPHTHERIA AND BOTULINUM TOXINS ARE PHAGE-ENCODED, which is why NON-TOXIGENIC STRAINS EXIST and why lysogenic conversion matters clinically. TRANSPOSONS move genes within and between DNA molecules; INTEGRONS capture resistance cassettes, which is how multiple resistances accumulate together.
Sterilisation and disinfection
AUTOCLAVE: 121 degrees, 15 psi, 15 minutes — most reliable. HOT AIR OVEN: 160 degrees for 2 hours — glassware, oils, powders. ETHYLENE OXIDE: heat-sensitive plastics, endoscopes. GLUTARALDEHYDE 2%: endoscopes. PASTEURISATION: 63 degrees/30 min or 72/15 sec — DOES NOT STERILISE. FILTRATION 0.22 micrometre: heat-labile fluids, DOES NOT REMOVE VIRUSES.
MOIST HEAT KILLS FASTER THAN DRY HEAT AT THE SAME TEMPERATURE BECAUSE IT DENATURES PROTEINS RATHER THAN MERELY OXIDISING THEM — hence 121 degrees for the autoclave versus 160 for the hot air oven. GEOBACILLUS STEAROTHERMOPHILUS spores validate autoclave cycles. PRIONS resist all conventional methods and need extended autoclaving with SODIUM HYDROXIDE.
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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
Giving antibiotics for Escherichia coli O157:H7
Bacterial killing releases stored Shiga toxin and increases the risk of haemolytic uraemic syndrome. Management is supportive with attention to fluid balance, and antimotility agents are avoided for the same reason.
WATCH OUT
Expecting antibiotic treatment of pharyngitis to prevent glomerulonephritis
Treating streptococcal pharyngitis prevents rheumatic fever but not post-streptococcal glomerulonephritis, which also follows skin infection and is not reliably prevented. The two sequelae have different mechanisms and different preventability.
WATCH OUT
Using a beta-lactam for mycoplasma infection
Mycoplasma has no cell wall, so there is no peptidoglycan target and the entire beta-lactam class is intrinsically useless. A macrolide or doxycycline acting on the ribosome is required.
WATCH OUT
Reading a positive treponemal test as active syphilis
Treponemal tests remain positive for life after any past infection. Non-treponemal titres such as VDRL or RPR fall after treatment and are what indicate current activity and response.
WATCH OUT
Interpreting a negative lepromin test as absence of leprosy
The lepromin test measures cell-mediated immunity, not organism burden, so it is negative precisely in lepromatous disease where bacilli are most abundant. A negative result points towards the more heavily infected form.
WATCH OUT
Using a cephalosporin where listeria is a possibility
Listeria is intrinsically resistant to all cephalosporins, so ampicillin must be added in neonates, the elderly, pregnant women and the immunosuppressed when treating meningitis empirically.
WATCH OUT
Assuming pasteurisation sterilises
Pasteurisation reduces pathogen load and eliminates the main milk-borne pathogens but leaves spores and some organisms viable. It is a disinfection process, not sterilisation.
WATCH OUT
Using alcohol hand rub after contact with Clostridioides difficile
Alcohol does not inactivate clostridial spores, which is exactly what makes the organism persist on surfaces and hands. Soap and water handwashing with mechanical removal is required.
WATCH OUT
Treating all Corynebacterium diphtheriae isolates as toxigenic
The toxin is phage-encoded, so non-toxigenic strains exist and cause much milder disease without myocarditis or neuritis. The Elek test demonstrates toxin production and determines whether antitoxin is needed.

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 Bacteriology?

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.

  • Gram stain, then morphology, then one key test identifies most organisms before clinical features matter.
  • Lipid A in Gram-negative lipopolysaccharide drives the cytokine storm of Gram-negative sepsis.
  • Catalase then coagulase identifies the common Gram-positive cocci in two steps.
  • Superantigens cross-link T cell receptor to MHC outside the binding groove, activating T cells en masse.
  • A one to six hour incubation in food poisoning means preformed toxin.
  • Treating pharyngitis prevents rheumatic fever but not post-streptococcal glomerulonephritis.
  • Listeria is intrinsically cephalosporin-resistant, hence added ampicillin in meningitis.
  • Nocardia is aerobic and partially acid-fast; Actinomyces is anaerobic with sulphur granules.
  • Lactose fermentation and oxidase are the two tests that sort the Gram-negative rods.
  • Shigella has a very low infective dose; Salmonella needs a large inoculum.
  • Cholera toxin activates Gs and pertussis toxin inhibits Gi, both raising cyclic AMP.
  • Antibiotics are avoided in O157:H7 because killing releases Shiga toxin.
  • Mycoplasma has no cell wall and is resistant to every beta-lactam.
  • Chlamydia elementary bodies infect and reticulate bodies replicate; serovars determine the disease.
  • Only meningococcus has a polysaccharide capsule, hence a vaccine exists only for it.
  • Pasteurella causes cellulitis within hours of a cat or dog bite.
  • A negative sputum smear never excludes tuberculosis; molecular testing is far more sensitive.
  • The lepromin test reflects immunity, not burden, so it is negative in lepromatous disease.
  • Tetanus and botulinum toxins both cleave SNARE proteins in different neurons.
  • Clostridial spores resist alcohol, so soap and water is required for C. difficile.
  • Non-treponemal titres track activity; treponemal tests stay positive for life.
  • Jarisch-Herxheimer is antigen release after treatment, not drug allergy.
  • Transformation takes naked DNA, transduction uses phage, conjugation needs cell contact.
  • Moist heat denatures while dry heat oxidises, which is why the autoclave works at a lower temperature.

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; bacteriology contributes 3-4 questions per attempt and recurs across Medicine, Pediatrics and PSM

Question styleMarks eachTypical countWhat it tests
Gram-positive organisms4~1Catalase and coagulase branching, staphylococcal toxins, streptococcal identification and sequelae, the Gram-positive bacilli
Gram-negative organisms4~1Enteric identification, diarrhoeal E. coli pathotypes, toxin mechanisms, fastidious and atypical organisms, Neisseria and zoonoses
Mycobacteria and spirochaetes4~1Acid-fast staining and diagnostics, leprosy classification, clostridial toxins, anaerobes, spirochaetal serology
Genetics and sterilisation4~1Transformation, transduction and conjugation, phage-encoded toxins, sterilisation methods and their limits
Prep strategy
  • First pass: internalise the identification sequence and practise running it on organisms until it is automatic.
  • Second pass: memorise the toxin mechanisms, which are the highest-yield single facts in the chapter and explain most clinical syndromes.
  • Final pass: drill the discrimination pairs (Nocardia versus Actinomyces, tetanus versus botulism, treponemal versus non-treponemal, transformation versus transduction) since each reliably generates a question.

Exam-hall strategy

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

  1. Run the Gram stain, morphology and key test sequence in order before considering any clinical detail.
  2. In food poisoning stems, read the incubation period first, since it separates toxin from infection.
  3. When a stem names a virulence factor or a distinctive appearance, work backwards to the organism.
  4. For serology questions, ask whether the test tracks activity or exposure.
  5. In immunodeficiency stems, terminal complement deficiency points specifically to Neisseria.
  6. For sterilisation questions, check whether spores must be killed, since that decides which methods qualify.
  7. With NEET PG's +4/-1 marking, the identification tests and toxin mechanisms are reliable recall and among the fastest marks in microbiology.
  8. Under the 5-group, 42-minute time-bound format, clear the single-fact identification items immediately and reserve time for the mechanism stems, 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.

Interpreting a preliminary Gram stain

A Gram stain reported within an hour of a blood culture flagging positive guides empirical therapy long before identification and sensitivities are available.

Rapid tuberculosis diagnosis

Cartridge-based molecular testing returns both diagnosis and rifampicin resistance in about two hours, which determines whether a patient starts standard or drug-resistant treatment the same day.

Infection control decisions

Knowing that clostridial spores resist alcohol determines hand hygiene practice on wards with Clostridioides difficile, and knowing which methods sterilise determines endoscope reprocessing.

Outbreak investigation

Incubation period and predominant symptom together narrow a food-borne outbreak to a small set of organisms before any laboratory result is available.

Where else this topic is tested

Prepare once, score in every exam that asks it.

USMLE Step 1Very high overlap — organism identification, toxin mechanisms and bacterial genetics are core Step 1 content
FMGE / NExTVery high overlap, with additional emphasis on national programme diagnostics for tuberculosis and leprosy
MD Microbiology entranceFoundational — assumed working knowledge, with media, biochemical reactions and typing examined in far greater depth

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Work in reverse. Clinical features usually name a virulence factor, and the virulence factor names the organism. Rice-water stools point to a toxin raising cyclic AMP; a black eschar points to anthrax; sulphur granules point to Actinomyces; currant-jelly sputum points to a heavily capsulated Klebsiella. Once you have the organism you can supply the laboratory characteristics the question actually wants, which is often what the options are testing.

Because it distinguishes toxin from infection without any microbiology at all. A preformed toxin already in the food acts as soon as it is absorbed, so illness begins within one to six hours, and vomiting predominates. An organism that has to be swallowed, multiply and then either invade or produce toxin in situ needs at least twelve to seventy-two hours, and diarrhoea predominates. The clock in the stem is telling you which mechanism you are dealing with.

Because it inverts the reflex. Every other bloody diarrhoea prompts consideration of antibiotics, and here the correct answer is to withhold them. Shiga toxin is stored within the organism, so killing it releases a bolus of toxin into the gut and raises the risk of haemolytic uraemic syndrome. The same reasoning excludes antimotility agents, since slowing transit prolongs toxin contact. It is a question about mechanism disguised as a treatment question.

Enough to distinguish the three transfer mechanisms and to know why it matters. Transformation is naked DNA taken up by naturally competent organisms; transduction is phage-mediated; conjugation needs cell contact and carries most resistance plasmids. The clinically important consequence is that phage-encoded toxins explain why non-toxigenic diphtheria and botulinum strains exist, and that conjugation plus integrons explains how organisms accumulate several resistances at once.
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