StepWise USMLE
IMMUNOLOGY · FIRST-LINE DEFENSE

Innate immunity · foundations

Barriers, sensors, phagocytes, complement, and the inflammatory cascade — organized as one continuous defense timeline from skin to systemic response.

Big Picture: Why Innate Immunity Exists
Concept
  • Job #1: buy time and limit damage before the adaptive system (B/T cells) ramps up over days.
  • Fully functional from birth — no prior exposure needed.
  • Fixed recognition repertoire, germline-encoded — same intensity every exposure, no memory.
  • Adaptive system: >10⁹ possible receptor specificities via gene rearrangement; much slower to deploy.
Pathogen breaches surface→ Barrier + resident sensor response→ Local inflammation→ Systemic signaling→ Adaptive handoff if needed
One-line exam fact: innate immunity has no memory and no affinity maturation — that's the adaptive system's job.
Barriers: Stopping Entry Before It Starts
Anatomic + Chemical
Skin
  • Intact keratinized epithelium = mechanical wall.
  • Mildly acidic surface pH slows bacterial growth.
Respiratory tract
  • Ciliary escalator physically clears microbes.
  • Mucus + antimicrobial enzymes trap and degrade organisms.
GI tract
  • Mucous membrane similar to airway.
  • Gastric acid is a major chemical kill step before reaching the gut.
Shared theme
  • Epithelia secrete defensins + interferons at baseline.
  • γδ T cells sit within epithelia — innate-like, recognize shared microbial patterns only.
CategoryExamplesMechanism
PhysicalSkin, cilia, mucusBlock or sweep away organisms
TemperatureCore body temp; feverMany pathogens grow poorly above normal range
ChemicalLysozyme, defensinsLysozyme cleaves peptidoglycan; defensins punch membrane pores
Enzymatic/pHGastric acid, skin pHDirect killing / growth suppression
Sensing Danger: How Innate Cells "See" a Threat
PRRs · PAMPs · DAMPs
  • Pattern recognition receptors (PRRs) are germline-encoded — not rearranged like B/T cell receptors.
  • Two signal categories they detect:
    • PAMPs — conserved microbial motifs (e.g., LPS, flagellin, viral RNA).
    • DAMPs — self molecules released by damaged/dying cells (e.g., ATP, uric acid crystals).
  • Innate recognition capacity is limited (roughly <1,000 patterns) vs. adaptive receptor diversity (>10⁹).
FamilyLocationDetectsResult
Toll-like receptors (extracellular)Cell surfaceBacterial lipopeptides, peptidoglycan, LPS, flagellinNF-κB activation → cytokines, adhesion molecules
Toll-like receptors (endosomal)EndosomeViral dsRNA, ssRNA, unmethylated CpG DNAAntiviral gene induction
NOD-like receptorsCytosolBacterial peptidoglycan fragmentsNF-κB → macrophage activation
Inflammasome sensor (e.g., NLRP3)CytosolMicrobial products + DAMPs (ATP, urate crystals, ROS)Caspase-1 activation → mature IL-1β / IL-18
RIG-like receptorsCytoplasmViral RNAInterferon production
Sensor + adaptor→Pro-caspase-1→Active caspase-1→Cleaves pro-IL-1β→IL-1β released→Acute inflammation
Exam trap: gain-of-function inflammasome mutations don't just cause infection susceptibility — they drive gout, atherosclerosis, and type II diabetes via excess IL-1β.
Cellular Players and What Marks Them
Myeloid + NK
CellWhere foundKey marker/lookMain job
NeutrophilBlood, first into tissueMultilobed nucleusRapid phagocytosis, short-lived
Monocyte → MacrophageBlood → tissueKidney-bean nucleus → ruffled membraneProlonged defense, cytokine release, cleanup/repair
Dendritic cellAll epithelia/tissuesLong cytoplasmic processesAntigen capture + bridges to adaptive response
Mast cellSkin, mucosaGranule-packed cytoplasmHistamine release — innate TLR or IgE-triggered
NK cellBlood, lymphoid tissueCD16+ CD56+, large granular lymphocyteKills infected/transformed cells, secretes IFN-γ
Macrophage polarization
M1 (classical): driven by TLR signals + IFN-γ → pro-inflammatory, phagocytic.
M2 (alternative): driven by IL-4/IL-13 → tissue repair, dampens inflammation.
Macrophage/DC→IL-12→NK cell activation→IFN-γ→Feeds back to activate macrophage
Complement: Three Jobs, One Cascade
Innate pathways: Alternative + Lectin
  • Liver-made plasma proteins that circulate as inactive zymogens and activate each other in sequence.
  • Alternative pathway — spontaneous, antibody-independent, triggered by microbial surfaces (LPS).
  • Lectin (mannose-binding) pathway — mannose-binding lectin recognizes microbial carbohydrates, feeds into the same downstream steps as the classical pathway, but without antibody.
Recruitment: C3a, C4a, C5a act as anaphylatoxins/chemoattractants.
Opsonization: C3b coats microbes and immune complexes for clearance.
Direct killing: C5b initiates assembly of the membrane attack complex (C5b-6-7-8-9), punching holes in target membranes.
Spontaneous C3b→+ Factor B, D→C3 convertase (C3bBb)→C5 convertase→C5b→Membrane attack complex
High-yield: C5a is both an anaphylatoxin AND a chemotactic factor for neutrophils — it does double duty.
The Inflammatory Cascade, Step by Step
Extravasation
  1. Rolling — selectins on activated endothelium loosely and transiently bind mucin-like ligands on the phagocyte; flow keeps knocking it loose, causing rolling.
  2. Activation — local chemoattractants (IL-8, C5a, bacterial N-formyl peptides) trigger G-protein signaling, flipping integrins into a high-affinity state.
  3. Firm adhesion — activated integrins bind Ig-superfamily adhesion molecules (ICAM) on endothelium, stopping the cell.
  4. Transmigration — the phagocyte squeezes between endothelial cells into the tissue.
ChemoattractantSource
IL-8 (a chemokine)Mast cells, platelets, neutrophils, monocytes/macrophages
C5aComplement activation (either innate pathway)
Leukotriene B4Arachidonic acid pathway in phagocytes/mast cells
N-formyl-methionyl peptidesBacterial protein synthesis byproducts
Clinical correlate — Leukocyte adhesion deficiency: absent CD18 (β2-integrin chain) blocks firm adhesion/transmigration. Result: high circulating neutrophil counts but no abscess or pus formation, recurrent bacterial infections, classically presenting as delayed umbilical cord separation with omphalitis. Viral susceptibility is unaffected.
Once in tissue — phagocytosis
Pseudopod extension→Engulfment into phagosome→Fusion with lysosome→Digestion→Exocytosis of debris
  • Opsonization by IgG (via Fc receptor) or C3b (via complement receptor) boosts phagocytic uptake dramatically.
  • Dying neutrophils release nuclear material as extracellular traps (NETs) — trap/kill pathogens but can injure surrounding tissue.
Inside the Phagolysosome: How Microbes Actually Die
Oxidative vs. non-oxidative
Oxygen-dependent (respiratory burst)
  • NADPH oxidase converts O₂ → superoxide → hydroxyl radicals + H₂O₂.
  • Myeloperoxidase combines H₂O₂ + chloride → hypochlorite (bleach chemistry).
  • Inducible nitric oxide synthase converts arginine → nitric oxide, an antimicrobial radical.
Oxygen-independent
  • Lysozyme — cleaves peptidoglycan.
  • Defensins — form membrane pores.
  • Lactoferrin — starves bacteria of iron.
  • Other hydrolytic enzymes degrade debris.
Chronic granulomatous disease: defective NADPH oxidase → no respiratory burst. Myeloperoxidase pathway still works IF the organism itself makes H₂O₂ (catalase-negative). Catalase-positive organisms (Staph, Klebsiella, Serratia, Aspergillus) destroy their own H₂O₂, leaving myeloperoxidase without substrate — recurrent infection with these specific organisms is the classic clue. Diagnosed by nitroblue tetrazolium or dihydrorhodamine flow cytometry testing.
From Local Fire to Whole-Body Response
IL-1, IL-6, TNF-α
Target organDriven byEffect
HypothalamusIL-1, TNF-αProstaglandin-mediated fever
LiverIL-1, IL-6, TNF-αAcute-phase proteins (CRP, mannose-binding protein, complement components)
Bone marrowIL-1, TNF-αLeukocytosis
Fat/muscleTNF-αCachexia in chronic states
Tumor cellsTNF-αApoptosis
Think of IL-1/IL-6/TNF-α as the "broadcast" cytokines — same local fire, three different downstream organs responding in parallel.
Antiviral Defense: Interferons and NK Cells
IFN-α/β + NK logic
  • Type I interferons (IFN-α, IFN-β) are made by virus-infected cells themselves — not virus-specific, act on neighboring cells to shut down protein synthesis and pre-emptively limit spread.
  • Two IFN-driven antiviral mechanisms: activation of an RNA endonuclease that degrades viral RNA, and phosphorylation-mediated inactivation of eIF2 to block viral translation.
  • Clinical uses: IFN-α for hepatitis B/C and select cancers; IFN-β for multiple sclerosis; IFN-γ for chronic granulomatous disease (boosts macrophage oxidative killing).
NK cell decision logic
  • Killer activating receptors (KAR, e.g., NKG2D) bind stress ligands on infected/transformed cells → push toward killing.
  • Killer inhibitory receptors (KIR) bind normal HLA-E (a non-classical MHC I molecule) on healthy cells → block killing.
  • Rule: inhibitory signal always wins if both are engaged — killing only proceeds when KAR is engaged and KIR is not.
  • Infected/transformed cells often downregulate MHC I, which lowers HLA-E display and removes the "don't kill me" signal — this is what tips NK cells toward killing.
  • Antibody-dependent cellular cytotoxicity: NK cells engage antibody-coated targets via CD16 (FcR) using a single activating signal, since the antibody itself already confirms infection.
When Innate Immunity Fails
Correlate to organism
DefectConsequence
TLR signaling defectsRecurrent severe bacterial infections (e.g., pneumonia)
Gain-of-function inflammasome mutationGout, atherosclerosis, type II diabetes
NOD2 mutationInflammatory bowel disease
IL-12 receptor deficiencyRecurrent intracellular infections (e.g., Mycobacterium)
IFN-γ receptor deficiencySame — recurrent intracellular/mycobacterial infection
CD18 (integrin) deficiency — LADNo pus formation, recurrent bacterial infection, delayed cord separation
NADPH oxidase deficiency — CGDRecurrent catalase-positive organism infections
Big theme: defects in phagocyte function/recruitment predispose specifically to extracellular bacteria and fungi — not viruses.
Quick-Fire Exam Pearls
Rapid review
  • Neutrophils peak in tissue within ~6 hours; monocytes/macrophages follow 5–6 hours later.
  • Opsonization can boost phagocytic efficiency roughly 4,000-fold.
  • PRRs are germline-encoded — no somatic recombination, unlike B/T cell receptors.
  • MBP (lectin) pathway activates the classical cascade machinery but is antibody-independent, so it counts as innate.
  • CD16 + CD56 = NK cell markers; no CD3, no antigen-specific receptor.
  • Catalase-positive organism + recurrent infection → think CGD.
  • No pus + recurrent bacterial infection + high circulating neutrophils → think LAD.