Big Picture
Why the body needs a separate cellular arm
Cytokine-Driven
Th1 licensing of macrophages (and B cells)
Naive Th cell + APC (MHC II)→
Th1 differentiation→
IFN-γ release
Effect on macrophages
- IFN-γ drives classical (M1) activation.
- Boosts microbicidal machinery: reactive oxygen species, nitric oxide, TNF-α.
- Net result: enhanced killing of ingested intracellular organisms.
Effect on B cells
- Same IFN-γ signal pushes B cells to class-switch toward IgG.
- IgG opsonizes remaining extracellular organisms.
- Opsonized targets are bound by macrophage Fc receptors → phagocytosis is accelerated.
This entire circuit — Th1 activation of macrophages and CD8+ cells — is mechanistically identical to a delayed-type hypersensitivity (Type IV) reaction; contact dermatitis to poison ivy or nickel uses the same cellular script directed at a harmless antigen.
Activation Logic
Two-signal priming and effector trafficking
| Signal | Source | Effect |
| Signal 1 | TCR engaging MHC II–peptide on the APC | Confers antigen specificity |
| Signal 2 | Co-stimulatory molecules on the APC | Licenses full activation (prevents anergy) |
- IL-2 is the dominant autocrine growth signal — the activated T cell makes it and expresses its own receptor, driving clonal expansion.
- Macrophage-derived IL-12, together with IFN-γ, pushes the naive Th cell to commit to the Th1 lineage.
- Once expanded, effector and memory lymphocytes exit the lymph node via efferent lymphatics, enter the blood, and traffic to the infected tissue.
Microbe at tissue site→
dendritic cell samples antigen→
travels via afferent lymphatic to node→
primes naive T cell→
clonal expansion→
effector cells recirculate to infection site
Direct Killers
Cytotoxic T lymphocytes (CD8+)
- Recognize target cells via TCR binding to peptide presented on MHC class I — present on essentially all nucleated cells.
- Normal self-peptides on healthy cells should not be recognized by any circulating CTL clone (self-tolerance).
- A cell harboring an intracellular pathogen, or expressing tumor neoantigens, presents non-self peptide on MHC I — that clone can now engage.
- Note: mismatched HLA molecules on transplanted tissue can themselves look "non-self" to CTLs even when presenting normal peptides — the basis of cellular graft rejection.
- CTLs can activate and clonally expand on MHC I signal alone, but IL-2 from Th1 cells (via cross-priming) greatly amplifies this, and local interferons upregulate MHC expression to make targets easier to detect.
Killing sequence
1. Conjugate formation (TCR + CD8 + LFA-1)→
2. Cytoskeletal polarization of granules→
3. Granule exocytosis→
4. Detachment, CTL recycles to next target
Three ways to induce target-cell death
- Perforin/granzyme pathway: perforin polymerizes pores in the target membrane → granzymes (serine proteases) enter → caspase cascade activated → apoptosis.
- Cytokine-mediated: IFN-γ combined with TNF-α or TNF-β can push a target into apoptosis independent of granule release.
- Fas/FasL pathway: FasL on the activated CTL engages Fas on the target → caspase activation → apoptosis.
Exam trap: in the Fas/FasL pathway, the death signal converges on the same downstream caspase cascade as the perforin/granzyme route — the entry point differs, the execution pathway doesn't.
Innate Overlap
NK cells — killing without prior sensitization
- Do not require antigen-specific priming; activity is instead held in check by inhibitory signals.
- Normal cells express class I MHC (via HLA-E, among others), which engages NK inhibitory receptors and prevents attack.
- Cells that downregulate MHC I — a common viral immune-evasion trick, or a feature of some tumors — lose that inhibitory signal and become NK targets ("missing self").
- Once triggered, the killing machinery is essentially the same perforin/granzyme system CTLs use.
- Th1 cytokines (IFN-γ, IL-12 signaling loop) enhance NK activity, tying this innate mechanism into the adaptive Th1 response.
Bridging Humoral + Cellular
Antibody-dependent cell-mediated cytotoxicity
- Mechanism that lets antibody specificity direct cells that themselves have no antigen receptor of their own.
- Effector cells carrying Fc receptors for IgG (CD16): NK cells, macrophages, neutrophils, eosinophils.
IgG binds antigen on target cell→
free Fc tail recognized by CD16 on effector cell→
effector cell degranulates against target→
target cell lysis
- Effector mechanisms deployed vary by cell type, but overlap heavily with CTL/NK tools: lytic enzymes, TNF, perforin/granzymes.
- The effector cell itself is not antigen-specific — specificity comes entirely from the bound antibody's idiotype.
Quick Reference
Cellular effectors side by side
| Cell | Key CD markers | Needs MHC I? | Antigen-specific? | Killing tools |
| Macrophage | CD14 | N/A (phagocytic) | No (enhanced by opsonization) | Nitric oxide, ROS, TNF-α |
| CTL | CD3, CD8, CD2, TCR | Yes — recognizes non-self peptide on MHC I | Yes | Perforin, granzymes, Fas/FasL, cytokines |
| NK cell | CD16, CD56 | Inhibited by normal MHC I (HLA-E) | No | Perforin, granzymes, cytokines |
| ADCC effectors | CD16 (FcγR) | No | No — driven by bound IgG | Lytic enzymes, TNF, perforin/granzymes |
High-yield distinction: a CTL and an NK cell use nearly identical killing hardware — what differs is entirely how each one decides a target deserves killing.