StepWise USMLE
Immunology

🧬 Adaptive Immunity: Lymphocyte Receptors & Development

How B and T cells build a receptor for one exact antigen, generate near-infinite diversity, and get screened for safety before they're allowed to circulate.

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πŸ”— The Two Antigen Receptor Families Overview

  • Every lymphoid cell can be identified by the specific surface molecules it carries.
  • A mature, never-yet-activated (naΓ―ve) B cell displays two antibody classes on its surface at once β€” IgM and IgD.
  • A mature, naΓ―ve T cell displays a single receptor type β€” the T-cell receptor (TCR).
  • Both receptor families are built from genes belonging to the same ancient superfamily of immune-recognition molecules.
  • Random DNA-level shuffling during development produces millions of distinct versions of each receptor.

🧫 B-Cell Receptor (Membrane Immunoglobulin) Structure

  • Basic unit: a 4-chain glycoprotein built from 2 identical halves.
    • Each half = 1 heavy chain + 1 light chain.
    • Halves are joined by disulfide bonds into a Y-shaped molecule.
    • A flexible hinge region between the halves allows the two arms to move independently.
    • A tail on each heavy chain anchors the whole structure through the membrane.
  • Antigen-binding site sits at the tip of each arm, where a heavy and light chain lie side by side.
    • Its unique 3-D shape = the idiotype β€” determines exactly which antigen it can grab.
    • Only one idiotype is made per B cell, even though it's displayed in multiple copies and as two isotypes (IgM + IgD).
  • Can recognize essentially any type of molecule in its native, unprocessed form β€” protein, sugar, or lipid.
  • Eventually gets remodeled into a secreted, freely circulating antibody once the cell becomes a plasma cell.
High yieldIdiotype = the antigen-specific tip (defines specificity); isotype = the constant-region class (defines IgM vs IgD vs IgG, etc).

🧬 T-Cell Receptor Structure

  • Built from 2 chains of similar length β€” alpha and beta β€” each anchored through the membrane by a short tail.
  • Antigen-binding groove forms between the two chains at their outer tips β€” this groove is the TCR's idiotype.
  • No hinge region exists, so the TCR is structurally rigid, unlike the flexible BCR.
  • Only binds a short peptide fragment that is already sitting in the groove of an MHC molecule on another cell's surface β€” never a free-floating antigen.
  • Always stays membrane-bound; unlike the BCR, it is never released as a soluble, circulating molecule.
PropertyB-cell receptorT-cell receptor
Copies per cell~100,000~100,000
Idiotypes per cell11
Isotypes co-expressed2 (IgM & IgD)1 (Ξ±/Ξ² pair)
Can be secreted?Yes β€” becomes free antibodyNo β€” always membrane-bound
Antigen-binding arms per molecule21
FlexibilityFlexible (hinge)Rigid (no hinge)
What it bindsUnprocessed antigen β€” any chemical classOnly a peptide already loaded onto MHC

πŸ“‘ Turning Binding Into Activation Signal Transduction

  • Neither the BCR nor the TCR can signal on its own β€” each partners with dedicated accessory chains that carry the "antigen has bound" message into the cell.
  • B-cell signaling partners
    • A pair of invariant chains, Ig-alpha and Ig-beta, sit alongside the BCR.
    • A separate co-receptor complex β€” CD19, CD21, CD81 β€” amplifies the signal.
    • CD21 doubles as the cell-entry receptor exploited by Epstein-Barr virus.
    • CD81 doubles as the cell-entry receptor exploited by hepatitis C virus and by Plasmodium vivax.
  • T-cell signaling partner
    • A single multi-chain complex called CD3 sits alongside the TCR and transmits its signal.
  • End result of either pathway: a cascade of intracellular phosphorylation events that switches the lymphocyte on.
Exam trapCD19/CD20/CD21 identify a B cell but are not the antigen receptor itself β€” don't confuse surface ID markers with the BCR.

🎲 Generating Millions of Receptors From Limited DNA Mechanism

  • Problem: the body needs millions of distinct receptor shapes, but the genome cannot afford to dedicate a separate gene to each one.
  • Solution: a set of DNA-shuffling tricks performed only inside developing lymphocytes.

Step-by-step for the heavy (or TCR beta) chain

  1. Germline DNA holds many separate copies of three types of gene segments: Variable (V), Diversity (D), and Joining (J).
  2. A developing lymphocyte randomly picks one of each and splices them together β†’ VDJ recombination.
  3. This assembled VDJ segment is transcribed, spliced onto a constant-region gene, and translated into the finished chain.

Step-by-step for the light (or TCR alpha) chain

  • Same idea, but only two segment types are shuffled β€” V and J (no D segment).

The enzymes that make this possible

  • RAG1 and RAG2 β€” two proteins that form the core of the recombinase complex; they cut and paste the chosen gene segments together, alongside built-in DNA-repair machinery.
  • Terminal deoxynucleotidyl transferase (TdT) β€” randomly inserts extra bases at the V–D and D–J junctions with no template strand (N-nucleotide addition), adding another layer of unpredictability.
    • Active during heavy/beta chain rearrangement in both B and T cells.
    • Stays active for every chain of the TCR, but switches off before the light chain of the BCR is rearranged.

Quality control and further diversity

  • Many rearrangements produce a broken, non-functional chain β€” the cell gets a second attempt on the paired (homologous) chromosome.
  • If both attempts fail, the cell is instructed to self-destruct (apoptosis).
  • Once one chromosome succeeds, further rearrangement of the other copy is permanently shut off β€” allelic exclusion β€” guaranteeing exactly one receptor specificity per lymphocyte.
  • Any finished heavy/beta chain can pair with any finished light/alpha chain β€” this combinatorial mixing multiplies the total number of possible receptors even further.
Diversity-generating mechanismOccurs in
Multiple inherited V, D, J gene segment choicesB and T cells
VDJ recombinationB and T cells
N-nucleotide addition (TdT)B cells: heavy chain only  |  T cells: all chains
Combinatorial pairing of heavy/light or Ξ±/Ξ² chainsB and T cells
Somatic hypermutationB cells only, after antigen exposure

⚠️ When Gene Rearrangement Breaks Clinical Correlation

ConditionGenetic defectWhat happens
Omenn syndromeAutosomal recessive; missense mutation β†’ partially functional RAG enzymesSome rearrangement still occurs, but B cells are essentially absent; skewed toward a Th2 pattern; presents early with failure to thrive, widespread rash, diarrhea, severe immune deficiency
Severe combined immunodeficiency (SCID)Autosomal recessive; null mutation β†’ zero RAG activityNo functional B or T cells form at all β€” combined failure of both antibody-mediated and cell-mediated immunity
Exam trapOmenn syndrome = partial RAG function (leaky); SCID = complete RAG loss β€” same gene family, very different severity.

🦴 B-Lymphocyte Development & Selection Bone Marrow

  • The bone marrow is a primary lymphoid organ because it is where B cells complete their entire maturation program.
  • Maturation stage can be read directly off which immunoglobulin chains a cell is making.
Lymphoid stem cell→ Pro-B (heavy chain rearranges)→ Pre-B (cytoplasmic μ+; light chain rearranges)→ Immature B (surface IgM+)→ Mature B (surface IgM+ and IgD+)
  • After antigen encounter in the periphery, the mature B cell can become:
    • An activated / blast B cell β†’ plasma cell (cytoplasmic Ig+, antibody factory).
    • A memory B cell (surface IgG+, IgA+, or IgE+ depending on class switch).
  • Markers that track the process: RAG expression and TdT mark the earliest rearranging stages; MHC class II and the CD19/CD20/CD21/CD40 cluster are expressed from the pro-B stage onward.

Central Tolerance β€” Removing Self-Reactive B Cells

  • Because V(D)J rearrangement is random, some resulting receptors will accidentally bind the body's own molecules.
  • Bone marrow stromal and interdigitating cells screen for this before release to the periphery.
    • Clonal deletion β€” cells with too-high affinity for self are eliminated in the marrow.
    • Clonal anergy β€” self-reactive cells that escape deletion are instead permanently inactivated in the periphery; these anergic cells show unusually high surface IgD.
  • Net effect: only B cells that are selectively unresponsive (tolerant) to self-antigens are allowed to leave the marrow.

🫁 T-Lymphocyte Development & Selection Thymus

  • T-lineage progenitors leave the bone marrow while still immature and travel to the thymus, the second primary lymphoid organ.
  • Thymus anatomy: a two-lobed organ above the heart with an outer cortex (packed with immature cells) and an inner medulla (where maturing cells arrive); both zones contain epithelial cells, dendritic cells, and macrophages that interact directly with developing thymocytes.

Stages by CD4/CD8 Expression

Double negative (no CD4, no CD8)β†’ Double positive (CD4+ CD8+, rearranges Ξ±/Ξ² TCR + CD3)β†’ Single positive (CD4+ OR CD8+)β†’ Mature circulating T cell

The Two-Step Selection Filter (in the cortex, using MHC)

  • MHC is a set of highly variable genes on chromosome 6, also called human leukocyte antigen (HLA); expressed at high density on thymic stromal cells.
    • Class I products: HLA-A, HLA-B, HLA-C.
    • Class II products: HLA-DP, HLA-DQ, HLA-DR (plus HLA-DM, a chaperone that loads peptide but never itself sits on the surface).
  • Step 1 β€” Positive selection: double-positive thymocytes whose TCR binds self-MHC with low affinity survive and continue maturing; a TCR with zero affinity for self-MHC fails to be positively selected and dies by neglect.
  • Step 2 β€” Negative selection: thymocytes whose TCR binds self-MHC + self-peptide too strongly are eliminated by apoptosis, since such cells would drive autoimmunity.
  • Outcome: 95–99% of all T-cell precursors entering the thymus die during this filtering β€” only appropriately tuned cells graduate.

Becoming Single Positive

  • A double-positive thymocyte whose TCR recognizes class I MHC keeps CD8 and drops CD4 β†’ destined to become a cytotoxic T lymphocyte (CTL).
  • A double-positive thymocyte whose TCR recognizes class II MHC keeps CD4 and drops CD8 β†’ destined to become a helper T cell (Th).
MHC classStructureExpressed onPresents to
Class I1 polymorphic heavy chain (3 extracellular domains) + Ξ²2-microglobulin light chain (not MHC-encoded)All nucleated cells + platelets; codominant (2 of each: A, B, C)CD8+ cytotoxic T cells
Class II2 similar-length chains (Ξ± and Ξ²), each with 2 extracellular domainsProfessional antigen-presenting cells only β€” macrophages, B cells, dendritic cells; also codominantCD4+ helper T cells

Regulatory T Cells β€” An Exception to Deletion

  • A subset of self-reactive thymocytes is diverted into becoming regulatory T cells (Tregs) instead of being deleted.
  • Identified by constitutive CD25 expression plus the transcription factor FoxP3.
  • Secrete IL-10 and TGF-Ξ² to dampen inflammation.
  • Leave the thymus and enforce tolerance out in the periphery by suppressing self-reactive helper T cells.
High yieldPositive selection = "can you see self-MHC at all?" (tests usefulness); negative selection = "do you react too strongly to self?" (tests safety).

πŸ’‘ Clinical Pearls Pearls

  • TdT positivity in a leukemic blast points to an early B- or T-lymphoblastic process β€” it marks cells still in the rearrangement stage.
  • MHC class II presents to CD4+ helper cells; MHC class I presents to CD8+ cytotoxic cells β€” mixing these up is one of the most common exam errors.
  • Allelic exclusion is the reason a single lymphocyte never expresses two different antigen specificities at once.
  • Failure of central B-cell tolerance (clonal deletion/anergy) or central T-cell negative selection is a mechanistic route toward autoimmune disease.
  • CD21 and CD81 being viral entry receptors is a favorite integrative question linking immunology to infectious disease.