Immunity !79% 1 / 13 · unit 1 of 5
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Pathophysiology of the four types of hypersensitivity reactions

Topic 1 of 73 !conflict

A hypersensitivity reaction is the immune system overreacting or misfiring against something it shouldn't — and there are four distinct ways that can happen, remembered by the mnemonic ACID.

ACID:

  • A — Allergic (Type I)
  • C — Cytotoxic (Type II)
  • I — Immune complex (Type III)
  • D — Delayed (Type IV)

Type I — Allergic:

The first time you meet an allergen, your body makes IgE antibodies against it, and those IgE molecules attach themselves to the surface of mast cells and basophils — this priming step is called sensitization, and by itself it causes no symptoms. The problem happens on re-exposure: the allergen comes back, binds to two nearby IgE molecules at once (cross-links them), and that cross-linking triggers the mast cell to dump its contents — degranulation. This releases histamine and other mediators within minutes, which is why Type I reactions are so fast.

Type II — Cytotoxic:

Here, an antibody (IgG or IgM) attacks an antigen that is sitting directly on the surface of a cell — your own cell, or a foreign one like a transfused red blood cell. Complement, phagocytes, and NK cells are recruited to destroy that cell. Because it takes time to mount that antibody attack and recruit the killing machinery, onset is hours to days.

Some Type II autoantibodies don't destroy the cell at all — instead they attach to a hormone or neurotransmitter receptor sitting on the cell surface and either turn its activity up or down. That's exactly what's going on in two of this type's prototype diseases: in Graves disease the antibody over-activates the receptor, and in myasthenia gravis the antibody blocks it — opposite effects, but both are still Type II, because in each case the antibody is attacking a receptor sitting on the cell surface.

Type III — Immune complex:

This is the one students most often confuse with Type II, so hold the picture carefully: here the antibody and antigen are not attached to any cell. Instead they find each other while floating free in the bloodstream, clump together into immune complexes, and only afterward deposit into tissue — commonly the kidneys, joints, skin, and blood vessels. Once lodged there, they trigger complement and draw in neutrophils, which is what causes the local damage. Because it depends on how much complex forms and where it lands, onset is variable. One more thing worth memorising in the book's own words: **Type III is not organ specific. The complexes form in the blood, so they land wherever the circulation happens to drop them — most often as inflamed blood vessels in the skin, kidney or lung. That is the cleanest way to keep Type II and Type III apart: Type II has a target; Type III does not. (Your book names two patterns — serum sickness when it's body-wide, the Arthus reaction** when it stays local to the skin.)

Type IV — Delayed:

This type has no antibody involved at all. Instead, T cells (both CD4+ and CD8+) directly recognize the antigen, release cytokines, and recruit macrophages to the site. Because it depends on T cells mobilizing rather than a fast antibody reaction, it takes 24–72 hours to show up — hence "delayed." (Your slides 29 and 46 say 48–72. Know both; the textbook's window is the wider one.)

The single most tested distinction, Type II vs Type III — never reverse this: Type II = the antibody attacks an antigen that is already sitting ON a cell. Type III = the antibody and antigen join together IN THE BLOOD first, circulate, and only afterward deposit into tissue (kidneys, joints, skin, vessels).
Type IType IIType IIIType IV
MediatorIgEIgG or IgMIgG/IgM immune complexesT cells (CD4+, CD8+) — NO antibody
Key cellsMast cells, basophilsComplement, phagocytes, NK cellsComplement, neutrophilsMacrophages, cytotoxic T cells
MechanismIgE binds mast cells (sensitization); re-exposure cross-links IgE, causing degranulationAntibody binds antigen ON a cell surface, so the cell is destroyed or loses normal function. Some autoantibodies instead bind hormone or neurotransmitter receptors, decreasing or increasing how much the receptor fires — this is why Graves (over-activated) and myasthenia gravis (blocked) are both Type IIAntigen-antibody complexes form IN THE CIRCULATION, then DEPOSIT in tissueT cells recognize the antigen, release cytokines, and recruit macrophages
OnsetMinutesHours to daysVariable24–72 hours

Type I mediators and what each one does:

  • Histamine → widens blood vessels (vasodilation) and makes them leakier (increased vascular permeability)
  • Leukotrienes → tighten the airways (bronchoconstriction)
  • Prostaglandins → drive inflammation
  • All of them togethermore mucus. This is the one that actually blocks the airway, and it's why an allergic attack makes someone wheeze and struggle to breathe rather than just producing a runny nose. Hold onto it — it comes back in asthma, in unit 4.
Three effects, say them as a set: blood vessels widen (blood pressure drops) · airway muscle tightens (breathing gets hard) · mucus pours out (the airway clogs). Your key points, your slides and your textbook all list these three together.

The mechanism chains, spelled out in order — this is the part worth memorizing as a sequence:

Type I:

  1. Antigen enters the body
  2. A B-cell recognizes it
  3. The B-cell matures into a plasma cell
  4. The plasma cell produces IgE
  5. IgE coats a mast cell (this is sensitization)
  6. On re-exposure, the mast cell degranulates
  7. Histamine is released

Type II:

  1. Antibodies attach to an antigen sitting on a cell surface
  2. Complement is activated
  3. The cell wall is attacked
  4. The cell lyses (bursts)
  5. The debris is cleared by phagocytosis

Type III:

  1. Antibodies bind antigens while both are free in the blood
  2. Immune complexes form
  3. The complexes deposit in vessels or tissues
  4. Complement is activated at that site
  5. Neutrophils arrive and try to eat the complexes — they are the main cell in Type III
  6. They cannot engulf them properly, so they spill their lysosomal enzymes into the surrounding tissue instead
  7. That spill is what does the damage

Type IV:

  1. A macrophage presents the antigen
  2. A T-lymphocyte becomes sensitized to it
  3. Lymphokines are released
  4. Inflammation and cell lysis follow
  5. Tissue destruction results

Granuloma formation: sometimes the T cells and macrophages in a Type IV reaction can't fully get rid of the antigen. When that happens, they wall it off inside a granuloma instead — a strategy that contains the antigen but can itself cause organ dysfunction if the granuloma grows or sits somewhere that matters.

  • Mnemonic ACID: Allergic (I) · Cytotoxic (II) · Immune complex (III) · Delayed (IV)
Type IType IIType IIIType IV
MediatorIgEIgG or IgMIgG/IgM immune complexesT cells (CD4+, CD8+) — NO antibody
Key cellsMast cells, basophilsComplement, phagocytes, NKComplement, NEUTROPHILSMacrophages, cytotoxic T cells
MechanismIgE binds mast cells (sensitization); re-exposure cross-links IgE → degranulationAntibody binds antigen ON a cell surface → cell destroyed or dysfunctional. Some autoantibodies bind HORMONE or NEUROTRANSMITTER RECEPTORS, causing DECREASED or INCREASED receptor activation — this is why Graves (receptor over-activated) and myasthenia gravis (receptor blocked) are both Type IIAntigen-antibody complexes form IN CIRCULATION, then DEPOSIT in tissueT cells recognize antigen → cytokines → macrophage recruitment
OnsetMinutesHours to daysVariable24–72 hours per the textbook — but YOUR SLIDES SAY 48–72 (slides 29 and 46). Know both; the wider window is the book's
The single most tested distinction — Type II vs Type III: Type II = antibody attacks an antigen already sitting ON a cell. Type III = antibody + antigen join in the BLOOD, circulate, then deposit in kidneys, joints, skin, and vessels.

Type I mediators and what each does:

  • Histamine → vasodilation, increased vascular permeability
  • Leukotrienes → bronchoconstriction
  • Prostaglandins → inflammation
  • Together they also drive HYPERSECRETION OF MUCUS — your key points, your deck and Ch. 9 all name it. This is the one that OBSTRUCTS THE AIRWAY, so it is why an allergic attack causes wheeze and breathlessness rather than just a runny nose. Hold onto it for asthma in unit 4.
  • The three effects to recite together: VASODILATION (blood pressure falls) · BRONCHIAL SMOOTH MUSCLE CONTRACTION (breathing gets hard) · INCREASED MUCUS (airway obstructs).

eDapt mechanism sequences (memorize the order):

  • Type I: Antigen → B-cell → plasma cell → IgE → mast cell degranulation → histamine release
  • Type II: Antibodies attach to surface antigen → complement activated → cell wall attacked → lysis → phagocytosis
  • Type III: Antibodies bind antigens → immune complexes form → deposit in vessels/tissues → complement activation → NEUTROPHILS arrive and try to phagocytose the complexes → they spill LYSOSOMAL ENZYMES into the tissue instead → tissue damage. TYPE III IS NOT ORGAN SPECIFIC — your key points and the book use those words. The complexes form in the BLOOD and land wherever the circulation drops them, most often as a vasculitis in SKIN, KIDNEY or LUNG. (The book adds two models: SERUM SICKNESS is the systemic one, the ARTHUS reaction the localized/cutaneous one.) That is the cleanest way to hold Type II and Type III apart — Type II has a target, Type III does not.
  • Type IV: Macrophage presents antigen → T-lymphocyte sensitization → release of lymphokines → inflammation/lysis → tissue destruction
  • Granuloma formation: If T cells and macrophages cannot eliminate the antigen, they wall it off in a granuloma, which can cause organ dysfunction.

Sources for this card

  • Textbook McCance Ch. 9 — hypersensitivity, incl. Table 9.1

    Table 9.1 and the surrounding prose back mediator/mechanism for all four rows. The receptor-activation clause and the 24-72h Type IV onset are already-applied corrections…

  • Key Points Unit 1 Key Points — “Hypersensitivity: Type I / II / III / IV”

    Confirms all four mechanisms: IgE on mast cells and basophils; autoantibodies against altered self-antigens on cell surfaces; circulating immune complexes depositing in tissue; delayed T-cell and macrophage response that can wall an antigen off in a granuloma.

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Prototype diseases reflecting each of the four types, and signs and symptoms

Topic 2 of 73 textbookYour school words it: “Prototype diseases that reflect each of the four types of hypersensitivity (i.e. Type IV-contact dermatitis) and signs and symptoms”

Each hypersensitivity type has its own signature diseases, and this course makes two deliberate classification calls that you should reproduce exactly as given, even if they feel surprising.

TypePrototype diseasesSigns and symptoms
IAnaphylaxis, allergic rhinitis, asthma, urticaria, eczemaUrticaria, wheezing, vomiting, diaphoresis; hypotension and tachycardia; itching, swelling, bronchospasm
IIAutoimmune hemolytic anemia, Graves disease, heparin-induced thrombocytopenia (HIT — heparin acts as a hapten with platelet factor 4; the antibodies both destroy platelets and activate them, so it causes thrombosis as well as thrombocytopenia), myasthenia gravis, Goodpasture syndrome (anti-GBM — the renal Type II), mismatched transfusion, hemolytic disease of the newbornHemolytic anemia: fatigue, pallor, jaundice, dark urine, tachycardia, splenomegaly. Graves: weight loss with a good appetite, heat intolerance, tachycardia, tremor, goiter, exophthalmos
IIISLE, post-streptococcal glomerulonephritis, serum sickness, Arthus reaction, Raynaud phenomenonSymptoms depend on where the immune complexes deposit — kidneys (proteinuria, hematuria), joints (arthritis), skin (rash, purpura), vessels (vasculitis), lungs (alveolitis)
IVContact dermatitis (poison ivy), latex rash, PPD/TB skin test, type 1 diabetes, rheumatoid arthritisRedness, itching, papules or vesicles; peeling or lichenification if chronic; delayed 24–72 hours
These two surprise people, so here is the reassurance: a LATEX rash is Type IV (not the Type I you would expect), and Raynaud phenomenon is Type III. Both are the textbook’s own classifications — checked against McCance Ch. 9 — so answer them that way with confidence.

Why symptoms vary so much within Type III: the mechanism is the same everywhere (complexes form in blood, then deposit), but where they happen to land determines what you see clinically.

Where Type III complexes deposit determines the symptoms:

Affected tissueOutcome
Kidneys (SLE, post-streptococcal glomerulonephritis)Glomerulonephritis — proteinuria, hematuria, renal failure
Joints — RA, SLE (that's where the complexes land; RA itself is Type IV in your Key Points)Arthritis, joint swelling and pain
SkinRash, purpura (serum sickness, SLE)
Blood vesselsVasculitis (palpable purpura)
LungsAlveolitis, hemorrhage, pneumonitis
TypePrototype diseasesSigns and symptoms
IAnaphylaxis, allergic rhinitis, asthma, urticaria, eczemaUrticaria, wheezing, vomiting, diaphoresis; hypotension and tachycardia; itching, swelling, bronchospasm
IIAutoimmune hemolytic anemia, Graves disease, HIT (heparin acts as a HAPTEN with PLATELET FACTOR 4; the antibodies destroy platelets AND activate them, so it causes THROMBOSIS as well as thrombocytopenia), MYASTHENIA GRAVIS, GOODPASTURE SYNDROME (anti-GBM — the renal Type II), mismatched transfusion, hemolytic disease of the newbornHemolytic anemia: fatigue, pallor, JAUNDICE, dark urine, tachycardia, splenomegaly / Graves: weight loss with good appetite, heat intolerance, tachycardia, tremor, GOITER, EXOPHTHALMOS
IIISLE, post-streptococcal glomerulonephritis, serum sickness, Arthus reaction, Raynaud phenomenonDepends on where complexes deposit — kidneys (proteinuria, hematuria), joints (arthritis), skin (rash, purpura), vessels (vasculitis), lungs (alveolitis)
IVContact dermatitis (poison ivy), LATEX rash, PPD/TB skin test, type 1 diabetes, rheumatoid arthritisRedness, itching, papules or vesicles; peeling or lichenification if chronic; delayed 24–72 hours
VERIFIED against McCance Ch. 9 — these are the TEXTBOOK'S OWN classifications, not a course quirk: the text lists latex under Type IV ("contact sensitivity to poison ivy and latex") and Raynaud phenomenon under Type III. Answer them this way with confidence.

Where Type III complexes deposit determines symptoms:

Affected tissueOutcome
Kidneys (SLE, PSGN)Glomerulonephritis — proteinuria, hematuria, renal failure
Joints — RA, SLE (a DEPOSITION SITE, not a classification: your Key Points put RA itself under Type IV)Arthritis, joint swelling and pain
SkinRash, purpura (serum sickness, SLE)
Blood vesselsVasculitis (palpable purpura)
LungsAlveolitis, hemorrhage, pneumonitis

Sources for this card

  • Textbook McCance Ch. 9 — hypersensitivity

    Prototype lists are well-corrected already (Myasthenia gravis and Goodpasture syndrome added to Type II, HIT mechanism explained, latex/Raynaud upgraded from 'course quirk' to…

  • Key Points Unit 1 Key Points — “Hypersensitivity: Type III / Type IV, and the Summary”

    Names the prototype diseases: SLE, serum sickness and Raynaud under Type III; rheumatoid arthritis and type 1 diabetes under Type IV; anaphylaxis and allergic rhinitis in the Summary. Gives no Type II disease list.

Careful: this card's wording claims more than its sources give it — including, on some cards, a chapter reference nobody has checked yet. Treat any citation in the text above as unconfirmed unless it appears in this list.

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Treatment options for diseases under each hypersensitivity category

Topic 3 of 73 slides

Treatment for each hypersensitivity type follows logically from its mechanism — calm the mediator, stop the antibody attack, or suppress the immune cells doing the damage.

TypeTreatment
IAllergen avoidance; antihistamines; corticosteroids; epinephrine for anaphylaxis; desensitization immunotherapy
II — Hemolytic anemiaCorticosteroids first-line, then immunosuppressants (azathioprine) if needed, then IVIG, then cautious transfusion, then splenectomy if refractory
II — Graves diseaseMethimazole preferred (or PTU); beta blockers for symptom control; radioactive iodine; thyroidectomy; corticosteroids if exophthalmos is present
IIITreat the underlying cause; corticosteroids, NSAIDs, immunosuppressives; supportive care with blood pressure and renal monitoring in post-streptococcal glomerulonephritis; serum sickness is generally self-limiting
IVTopical or oral corticosteroids (prednisone, hydrocortisone) to suppress T-cell activation and cytokine release; a high-potency topical steroid for contact dermatitis

Anaphylaxis treatment algorithm (high yield — know this cold):

  1. Manage exposure — remove the allergen; assess airway, breathing, and circulation
  2. Confirm anaphylaxis — any ONE of: (a) acute onset with skin/mucosal involvement plus respiratory distress, low blood pressure, or GI symptoms; (b) two or more symptoms rapidly after a likely exposure; (c) reduced blood pressure after a known allergen
  3. Give epinephrine IM in the anterolateral thigh immediately — 0.3 mg for adults and children over 25 kg; 0.15 mg for children 5–25 kg. Repeat every 5–15 minutes as needed. Position the patient supine with legs elevated. These come from your eDapt Week 1 module — you confirmed that yourself. Chapter 48 covers anaphylaxis but gives no dose and no route, and they are in none of your slides, key points or recordings, so eDapt is where they live. Nobody here has a copy of eDapt to read, so the numbers are not double-checked against anything — but they match standard practice.
  4. Activate emergency response
  5. Monitor continuously — vitals, supplemental oxygen, IV normal saline, and CPR if indicated
  6. Document the allergen and the patient's response
TypeTreatment
IAllergen avoidance · antihistamines · corticosteroids · EPINEPHRINE for anaphylaxis · desensitization immunotherapy
II — Hemolytic anemiaCorticosteroids (first-line) → immunosuppressants (azathioprine) → IVIG → cautious transfusion → splenectomy if refractory
II — Graves diseaseMethimazole (preferred) or PTU · beta blockers for symptom control · radioactive iodine · thyroidectomy · corticosteroids if exophthalmos
IIITreat underlying cause; corticosteroids, NSAIDs, immunosuppressives; supportive care and BP/renal monitoring in PSGN; serum sickness is generally self-limiting
IVTopical or oral corticosteroids (prednisone, hydrocortisone) — suppress T-cell activation and cytokine release; high-potency topical steroid for contact dermatitis

Anaphylaxis treatment algorithm (eDapt — high yield):

  1. Manage exposure — remove the allergen; assess airway, breathing, circulation
  2. Confirm anaphylaxis — any ONE of: (a) acute onset with skin/mucosal involvement PLUS respiratory distress, low BP, or GI symptoms; (b) two or more symptoms rapidly after likely exposure; (c) reduced BP after a known allergen
  3. EPINEPHRINE IM in the ANTEROLATERAL THIGH immediately — 0.3 mg for adults and children over 25 kg; 0.15 mg for children 5–25 kg. Repeat every 5–15 minutes as needed. Position supine with legs elevated. ▤ These come from your eDapt Week 1 module — you confirmed that yourself. Ch. 48 covers anaphylaxis and states neither a dose nor a route, and they appear in none of your decks, key points or recordings, so eDapt is where they live. We hold no copy of eDapt, so the figures are not double-checked against a document here — but they match standard practice, and their origin is no longer a mystery.
  4. Activate emergency response
  5. Monitor — continuous vitals, supplemental oxygen, IV normal saline, CPR if indicated
  6. Document the allergen and the response

Sources for this card

  • Textbook McCance Ch. 9

    Type I treatment is TEXTBOOK-backed (p.126-127: avoidance, antihistamines, corticosteroids, epinephrine, desensitization). Type II (hemolytic anemia, Graves) and Type IV drug…

  • Slides Week 1 deck, slide 17
  • Assignment eDapt Week 1 module — reported by the reader, not held

    Asked where the anaphylaxis dose and route come from, the reader answered that they come from the eDapt module. WE HOLD NO COPY, so the figures are not checked against a document — but their origin is known rather than unaccounted for, and they match standard practice.

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Pathophysiology of Human Immunodeficiency Virus (HIV)

Topic 4 of 73 textbook

HIV works by hijacking the very cells that are supposed to organize the immune response, then rewriting the host's own genetic instructions so it can keep replicating.

HIV is an RNA retrovirus that primarily infects CD4+ T cells — the cells that direct and coordinate the rest of the immune response. Once inside a host cell, HIV uses an enzyme called reverse transcriptase to convert its RNA into DNA (the reverse of the normal DNA-to-RNA direction, which is where the name comes from). That new DNA is then integrated into the host's own genome, which lets the virus replicate within host cells.

The downstream chain of damage:

  1. CD4+ T cells are progressively depleted
  2. This causes loss of cell-mediated immunity
  3. Which leads to opportunistic infections and malignancies

AIDS is the diagnosis given once the CD4 count drops below 200 cells/mm³, or once the person develops an AIDS-defining illness — either one is sufficient.

Antiretroviral therapy (ART) works by targeting different stages of the HIV life cycle described above (for example, blocking reverse transcriptase or integration) to suppress replication and let the immune system recover.

HIV causes a secondary (acquired) immunodeficiency — the immune system was normal to begin with and is damaged by an outside cause, not a genetic defect present from birth.

The three stages, in order.

  1. ACUTE HIV — about 2 to 4 weeks in (your module says 2-3). Flu-like, or nothing at all. Viral load is sky-high and they're highly contagious.
  2. CLINICAL LATENCY — quiet years. The virus keeps copying itself, CD4 counts creep down, usually no symptoms. How long: the textbook says 10 to 11 years untreated, or decades on good treatment. Your module says "a year or more", which badly undersells it — go with the book.
  3. AIDS — CD4 drops below 200, or an opportunistic infection or certain cancers appear. Whichever comes first.
Words they'll test: opportunistic infection (an infection that only gets a foothold because the immune system is down), seroconversion (the moment HIV antibodies become detectable — negative test becomes positive), wasting (big unintended weight loss), PCP (the classic lung infection when CD4 is very low).
  • HIV is an RNA RETROVIRUS that primarily infects CD4+ T cells, the cells that orchestrate the immune response
  • Inside the host cell, HIV uses REVERSE TRANSCRIPTASE to convert its RNA into DNA
  • That DNA is INTEGRATED INTO THE HOST GENOME, allowing the virus to replicate within host cells
  • Progressive CD4+ depletion → loss of cell-mediated immunity → opportunistic infections and malignancies
  • AIDS is defined by a CD4 count below 200 cells/mm³ or an AIDS-defining illness
  • Antiretroviral therapy (ART) targets various stages of the HIV life cycle to suppress replication and restore immune function
  • HIV is a SECONDARY (acquired) immunodeficiency
TermWhat it means
Opportunistic infectionAn infection that takes hold because the immune system is weakened. In AIDS these are the defining events, alongside certain cancers.
Pneumocystis pneumonia (PCP)The classic opportunistic lung infection, seen when the CD4+ count is very low.
SeroconversionThe point at which HIV antibodies become detectable in blood — the switch from testing negative to positive. From your course module; the textbook does not use this term.
Wasting syndromeSignificant unintended weight loss, often with diarrhoea, weakness and fever. The book lists wasting as a metabolic complication of AIDS.
CD4+ helper T cellThe cell HIV targets, and the number used to track how far the disease has gone and to guide treatment.

The three stages, in order.

  1. ACUTE HIV — 2 to 4 weeks after infection (your course module says 2-3). The virus replicates hard and spreads; flu-like symptoms or none. Viral load is high and the person is highly contagious.
  2. CLINICAL LATENCY — replication continues while immune defenses fall slowly and CD4+ counts drift down. Usually no symptoms. How long: the textbook says 10 to 11 years untreated, or decades on effective ART. Your module says “a year or more”, which understates it badly — know the book's figure.
  3. AIDS — the final stage. Defined by a CD4+ count below 200 cells/mm³, OR by an opportunistic infection or certain cancers. Neurologic and metabolic complications (wasting) appear here.

Sources for this card

  • Textbook McCance Ch. 10 — HIV

    Ch. 10 confirms every claim: retrovirus, reverse transcriptase, integration into the host genome, CD4 below 200 as AIDS-defining, and how antiretroviral therapy works.

  • Key Points Unit 1 Key Points — “Immunodeficiency: Human Immunodeficiency Virus (HIV)”

    Confirms the mechanism almost word for word: an RNA retrovirus targeting CD4+ T cells, reverse transcriptase copying RNA to DNA, integration into the host genome, and antiretroviral therapy acting at several stages of the life cycle.

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Pathophysiology of Systemic Lupus Erythematosus (SLE)

Topic 5 of 73 !conflict

SLE starts with the immune system losing the ability to tell 'self' from 'not-self,' and everything else follows from that one failure.

In one sentence: loss of self-tolerance leads to autoantibodies against the body's own nuclear material, those autoantibodies form immune complexes that deposit in tissues, and the result is multi-organ inflammation.

The chain in more detail:

  1. T cells fail to distinguish self from non-self
  2. This triggers inflammatory cytokines
  3. Which activates B cells
  4. Activated B cells produce autoantibodies

The autoantibodies produced — especially ANA (antinuclear antibody) — bind to the body's own nuclear material and form immune complexes, which then deposit in tissue. That deposition activates complement and recruits neutrophils, producing inflammation, vasculitis, tissue damage, and scarring.

SLE is both Type III and Type II at once, and you need both to explain the full picture: Type III is the hallmark mechanism (immune complexes forming in blood and depositing in tissue, causing most of the organ damage). The Type II component explains the hematologic findings specifically — autoantibodies directly attack blood cells, causing the anemia, leukopenia and thrombocytopenia seen in SLE. (Careful: your slide says leukopenia, the textbook says lymphopenia — a narrower word. Every lymphopenia is a leukopenia, not the other way round. Know both.)

One-sentence version: loss of self-tolerance → autoantibodies against the body’s own nuclear material → immune complexes deposit in tissues → multi-organ inflammation.

  • T cells fail to distinguish self from non-self → inflammatory cytokines → B-cell activation → autoantibody production
  • Autoantibodies (especially ANA) form immune complexes with self-antigens, which deposit in tissues
  • Deposition triggers complement activation and neutrophil recruitment → inflammation, vasculitis, tissue damage and scarring
SLE is BOTH Type III and Type II. Type III is the hallmark (immune complex deposition). The Type II component explains the HEMATOLOGIC findings — autoantibodies directly attack blood cells, causing anemia, LEUKOPENIA (your slide 27 — the textbook says LYMPHOPENIA specifically, so know both words), and thrombocytopenia.

Sources for this card

  • Textbook McCance Ch. 9 — SLE

    The 'SLE is BOTH Type III (hallmark) and Type II (hematologic)' framing is directly textbook-supported and also matches slide 26. But the guide's callout says the Type II…

  • Key Points Unit 1 Key Points — “Autoimmunity: Systemic Lupus Erythematosus”

    Confirms the pathophysiology: T cells failing to tell self from non-self, B-cell activation and autoantibody production, and ANA-containing immune complexes depositing in tissue to cause inflammation and vasculitis.

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Diagnosis of SLE, including autoantibodies involved

Topic 6 of 73 textbook

Diagnosing SLE relies on antibody tests that each play a different role — one to screen, one to confirm, and one that indirectly measures how much immune-complex damage is happening.

TestInterpretation
ANA (antinuclear antibody)Highly sensitive screening test — good for ruling SLE out, but not specific, so a positive alone doesn't confirm it
Anti-dsDNA and anti-Smith (anti-Sm)Highly specific for SLE — these are what confirm the diagnosis
Complement C3 and C4Low — because complement protein is being consumed as it forms immune complexes
ESR and CRPElevated — reflecting systemic inflammation
Memory hook: ANA opens the door (sensitive screen), anti-dsDNA and anti-Sm close the case (specific confirmation), and low complement means it's being used up forming immune complexes.
TestInterpretation
ANA (antinuclear antibody)Highly SENSITIVE screening test — good for ruling out, not specific
Anti-dsDNA and anti-Smith (anti-Sm)Highly SPECIFIC for SLE — these confirm the diagnosis
Complement C3 and C4LOW — complement is consumed forming immune complexes
ESR and CRPElevated — reflects systemic inflammation
Do not stop at the antibodies. SLE is graded by the organ it is damaging, and the kidney is the one that decides prognosis. Ch. 9 says the antibody tests are followed by further testing including URINALYSIS, plus CRP and complement levels. A urinalysis showing protein or cellular casts is what catches lupus nephritis — often before the client feels anything. Your feedback also lists a CMP (comprehensive metabolic panel) for kidney function: standard practice, and it tracks creatinine and BUN, but the chapter names urinalysis rather than a CMP.

Memory hook: ANA opens the door, anti-dsDNA and anti-Sm close the case, and LOW complement means it is being used up.

Sources for this card

  • Textbook McCance Ch. 9 — SLE diagnosis

    The ANA then anti-dsDNA/anti-Sm sequence is textbook-confirmed. The complement and inflammatory-marker rows are not: the chapter names those tests but gives no direction, and ESR is absent from it.

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Clinical symptoms of SLE

Topic 7 of 73 !conflict

SLE symptoms touch nearly every organ system, and most of them trace back to the same Type III immune-complex mechanism — except the blood findings, which are Type II.

SystemSymptomsType
GeneralFatigue, fever, weight loss, malaiseSystemic inflammation
EyesKeratoconjunctivitis, scleritis, uveitis, retinopathy
MusculoskeletalArthralgia/arthritis — non-erosive and symmetrical; myalgiaIII
SkinMalar (butterfly) rash, discoid rash, photosensitivity, alopecia, oral/nasal ulcersIII
RenalHematuria, proteinuria, hypertension, edemaIII (immune complexes depositing in the glomeruli)
HematologicAnemia, leukopenia (that's what your slides call it, slide 27) — though the textbook specifically says lymphopenia, so know both words — and thrombocytopeniaII (direct antibody attack on blood cells)
CardiopulmonaryPleuritis, pericarditis, Raynaud phenomenon, Libman-Sacks endocarditisIII
NeurologicSeizures, psychosis, headache, mood/cognitive changes, neuropathyIII, plus mechanisms that are still unclear
GastrointestinalAbdominal pain, hepatosplenomegalyIII
SystemSymptomsType
GeneralFatigue, fever, weight loss, malaiseSystemic inflammation
EyesKERATOCONJUNCTIVITIS, scleritis, uveitis, retinopathy
MusculoskeletalArthralgia/arthritis — NON-EROSIVE and SYMMETRICAL; myalgiaIII
SkinMALAR (butterfly) RASH, discoid rash, photosensitivity, alopecia, oral/nasal ulcersIII
RenalHematuria, proteinuria, hypertension, edemaIII (glomeruli)
HematologicAnemia, LEUKOPENIA (your slide 27) — note the textbook says LYMPHOPENIA specifically, so know both words — thrombocytopeniaII
CardiopulmonaryPleuritis, pericarditis, Raynaud phenomenon, Libman-Sacks endocarditisIII
NeurologicSeizures, psychosis, headache, mood/cognitive changes, neuropathyIII + unclear
GastrointestinalAbdominal pain, hepatosplenomegalyIII

Sources for this card

  • Textbook McCance Ch. 9 — SLE

    The system-by-system skeleton is textbook-backed, and the missing Eye row was already fixed by a correction citing this exact quote. But several specific items in the shipped…

  • Key Points Unit 1 Key Points — “Autoimmunity: Systemic Lupus Erythematosus”

    Backs only three of the presentations the card lists — joint pain, rash and kidney involvement. The multi-system breakdown (skin, renal, blood, heart and lung, neurological, GI) is the guide's, not the Key Points'.

Only part of this card is covered by the sources listed. The rest is not yet backed by anything we hold.

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Treatment options for SLE, including treatment during flare-ups

Topic 8 of 73 textbookYour school words it: “Treatment options for SLE including treatment during flare-ups”

SLE treatment is layered — a foundational drug nearly everyone takes, something stronger for active flares, and escalation only when organs are threatened.

  • NSAIDs — for mild joint pain and serositis
  • Antimalarials (hydroxychloroquine) — foundational therapy for nearly all patients
  • Corticosteroids — the mainstay for flares; a higher dose acutely, then tapered down
  • Immunosuppressives — azathioprine, mycophenolate, cyclophosphamide, used for organ-threatening disease
  • Biologics — belimumab
  • Lifestyle and support — sun protection (because of photosensitivity), regular monitoring, a healthy lifestyle
Drug interaction to know (from the course case): phenytoin reduces the effectiveness of corticosteroids. Anticonvulsants like phenytoin speed up how fast the liver breaks steroids down, so the corticosteroid dose may need to be increased to compensate.

SLE has no cure — it follows a lifelong pattern of exacerbations (flares) and remissions, which is why treatment is about controlling flares rather than curing the disease.

  • NSAIDs — mild joint pain and serositis
  • Antimalarials (hydroxychloroquine) — foundational therapy for nearly all patients
  • Corticosteroids — THE MAINSTAY FOR FLARES; higher dose acutely, then taper
  • Immunosuppressives — azathioprine, mycophenolate, cyclophosphamide for organ-threatening disease
  • Biologics — belimumab
  • Lifestyle and support — SUN PROTECTION (photosensitivity), regular monitoring, healthy lifestyle
DRUG INTERACTION from the eDapt case: PHENYTOIN REDUCES THE EFFECTIVENESS OF CORTICOSTEROIDS. Anticonvulsants increase hepatic breakdown of steroids, so the corticosteroid dose may need to be INCREASED. SLE has no cure — it follows a pattern of exacerbations and remissions.

Sources for this card

  • Textbook McCance Ch. 9

    Strongly textbook-backed and cross-confirmed by slide 28 and the transcript ('Lucas is one of those diseases that has periods of exacerbations and periods of remission'). The…

Only part of this card is covered by the sources listed. The rest is not yet backed by anything we hold.

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Graves disease — diagnosis and treatment

Background · not on the topic list textbook

Graves is the Type II example where the antibody doesn't kill the cell — it jams the switch ON.

An antibody sits on the thyroid's ON button and holds it down.

Normally the pituitary controls the thyroid with TSH — press the button, get thyroid hormone. In Graves, an antibody (TSI, also called TSAb or TRAb) binds that same button and presses it constantly. The gland swells (goiter) and pumps out T3 and T4.

The bit that confuses everyone: TSH comes back LOW. The body sees all that thyroid hormone and tells the pituitary to stop sending TSH. It does. But the antibody doesn't care — it keeps pressing anyway. So the labs read high T3/T4, low TSH. That pairing is the diagnosis.

How they test for it.

  • TSH — low.
  • T3 and T4 — high.
  • TRAb / TSI — looks for the antibody itself.
  • Iodine uptake scan — the thyroid is greedy for iodine, so it lights up bright and evenly all over. That even, high pattern says Graves.
  • Ultrasound — big gland with lots of blood flow. Your deck nicknames it the “thyroid inferno”.
Trap question. I-131 is a TREATMENT, not a test. It's radioactive iodine given to kill thyroid cells. If a question asks which of these diagnoses Graves and I-131 is an option, it's the wrong answer.

How they treat it.

  • Methimazole — the usual first drug. Fewer side effects, so it's preferred for most people.
  • PTUthe one used in pregnancy. This comes from your eDapt module, which you confirmed. If a question gives you a pregnant patient with Graves, PTU is the answer. The reason: methimazole carries a risk to the baby early on, so the usual first choice gets swapped for PTU. (Standard practice narrows this to the first trimester and then switches back to methimazole — but your own course says "pregnant women", so don't let the extra detail argue you out of PTU.)
  • Beta blockers — don't touch the thyroid at all. They just calm the racing heart and palpitations while the other drugs work.
  • Radioactive iodine (I-131) — kills the gland off. No surgery needed.
  • Surgery (thyroidectomy) — take the gland out.
Every one of these can overshoot: destroy too much thyroid and the person ends up hypothyroid instead. You trade one problem for the other.

Two signs that only happen in Graves: eyes bulging forward (exophthalmos), and thick, lumpy, discoloured skin on the shins (pretibial myxedema). Someone whose overactive thyroid is caused by lumps in the gland instead won't have either.

Graves is the course's worked example of a Type II hypersensitivity: an autoantibody that does not destroy its target but switches it permanently on.

The mechanism, in one line: antibodies against the TSH receptor stimulate the thyroid non-stop, and the pituitary's off-switch cannot reach it.

Ch. 9 and Ch. 22 agree on the classification. Self-reactive T cells sensitise against thyroid antigens and drive B cells to make thyroid-stimulating immunoglobulins (TSI) — also written TSAb or TRAb. These bind the TSH receptor and override normal regulation, producing goiter and excess T3/T4. Graves causes 60–80% of all hyperthyroidism.

Why TSH falls even though the thyroid is racing. The high T3/T4 feeds back and shuts the pituitary down. So in PRIMARY hyperthyroidism you see HIGH T3/T4 with LOW (suppressed) TSH — the book calls that combination diagnostic. If TSH were normal-to-high alongside high T3/T4, that points to a TSH-secreting pituitary tumour instead (central/secondary).

Tests used to DIAGNOSE Graves.

TestWhat it shows
TSHLOW. Suppressed by the negative feedback loop.
T3 and T4HIGH. Elevated T4/T3 with suppressed TSH is diagnostic for primary hyperthyroidism.
TSH receptor antibodies (TRAb) — incl. TSIThe autoantibody itself. The book names TSI, TSAb and TRAb as the same thing. (Your feedback also lists TBII — reported to come from your assignment questions. We hold no copy, so it is unconfirmed here, but it is coursework rather than an invention. TBII and TRAb measure the same antibody.)
Radioactive iodine uptake scanHigh, diffuse uptake is characteristic of Graves — your deck's wording. (Your feedback specifies the I-123 isotope — reported to come from your assignment questions. No source we hold names an isotope number, so it is unconfirmed here. Note the contrast with I-131 below: I-123 images, I-131 treats.)
Thyroid ultrasoundDiffusely enlarged gland with increased vascularity — your deck calls this the “thyroid inferno”. (Your feedback specifies with Doppler — reported to come from your assignment questions. Your deck describes the increased vascularity a Doppler study shows without naming the technique, so the two agree; only the word is unconfirmed here.)
The distractor to watch for: I-131 is NOT a diagnostic test — it is a treatment. Radioactive iodine therapy is absorbed only by thyroid tissue and kills the cells. If a question offers it as a way to diagnose Graves, that is the wrong answer.

Treatment.

TreatmentWhen and why
MethimazoleThe antithyroid drug of choice for most clients — your deck's reason is fewer side effects.
PTU (propylthiouracil)The alternative antithyroid drug. ▤ The antithyroid drug used in PREGNANCY — your eDapt module, which you confirmed. If a question asks which drug in a pregnant patient, the answer is PTU. Standard practice narrows it further — PTU early, methimazole later — because methimazole carries a teratogenic risk in the first weeks; that narrower split is textbook practice rather than something your own material states, so do not let it talk you out of PTU.
Beta blockersSymptom control — the tachycardia and palpitations. They do not touch hormone production.
Radioactive iodine (I-131)Definitive, non-surgical. Absorbed only by thyroid tissue, killing the cells.
ThyroidectomySurgical removal. Indications reported from your assignment questions: large goiter, neck compression, thyroid cancer or severe orbitopathy. The book names surgery without listing them, so the list is unconfirmed here.
A complication shared by every treatment: over-ablating the gland tips the client into HYPOthyroidism. Treating too hard swaps one disorder for the other.

The two signs that are Graves and nothing else: exophthalmos (protruding eyeballs, from swelling behind the orbit) and pretibial myxedema — lumpy, swollen, discoloured skin over the shins, seen in clients with very high TSI. Neither appears in hyperthyroidism from nodular goiter.

Sources for this card

  • Textbook McCance Ch. 22 — Graves disease; Ch. 9 for the Type II classification

    Confirms the TSI/TSAb/TRAb autoantibody against the TSH receptor, Graves as 60-80% of hyperthyroidism, high T4/T3 with suppressed TSH as diagnostic, radioactive iodine killing thyroid cells, surgery, beta blockers, and both exophthalmos and pretibial myxedema.

  • Slides Week 1 deck, slides 20 and 21

    Gives the diagnostic workup as a list — high diffuse uptake on the iodine scan, the ultrasound 'thyroid inferno', TRAb — and names methimazole as preferred for its lower side effects.

  • Assignment The course's graded coursework, named by the reader as eDapt — reported, not held

    The reader reports the card originates in the course's graded questions and was checked as correct there, and has since named eDapt as the source of the Graves treatments, confirming PTU as the antithyroid drug in pregnancy. WE HOLD NO COPY, so nothing is verified against a document.

Only part of this card is covered by the sources listed. The rest is not yet backed by anything we hold.

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Alloimmune phenomenon

Topic 9 of 73 textbook

Alloimmunity is when the immune system attacks tissue from another person of the same species — a different problem from autoimmunity, where it attacks itself.

Definition: an immune reaction against antigens from another individual of the same species — as opposed to autoimmunity, which is a reaction against self.
  • Transfusion reactions — caused by ABO incompatibility, which is exactly why blood typing and cross-matching before a transfusion are essential. Type O is the universal donor and Type AB is the universal recipient, because people with Type AB blood don't have anti-A or anti-B antibodies of their own.
  • Transplant rejection — the recipient's immune system attacks the donor tissue as foreign, in three patterns — see the table below.
  • Hemolytic disease of the newborn (Rh incompatibility) — see the mechanism below

The three patterns of transplant rejection:

PatternTimingWhat's happening
HyperacuteImmediate, rarePreexisting anti-HLA antibodies — this pattern is itself a Type II reaction
AcuteDays to monthsA new response to unmatched HLA — both humoral (antibody) and cell-mediated
ChronicMonths to yearsSlow, progressive organ failure, most often in poorly matched recipients

Hemolytic disease of the newborn — also called hemolytic disease of the fetus and newborn (HDFN) or erythroblastosis fetalis — step by step:

  1. An Rh-negative mother is exposed to Rh-positive fetal blood
  2. Her immune system produces anti-Rh antibodies in response
  3. In any later pregnancy with an Rh-positive baby she makes those antibodies faster and in greater amounts, and they cross the placenta
  4. They destroy the fetal red blood cells
  5. The newborn presents with jaundice and anemia

This is also classified as a Type II reaction — the antibody is attacking an antigen sitting directly on the fetal red blood cells. Prevention is RhoGAM (Rh immunoglobulin), given to Rh-negative mothers so their immune system never mounts that anti-Rh antibody response in the first place.

Definition: an immune reaction against antigens from ANOTHER INDIVIDUAL OF THE SAME SPECIES (as opposed to autoimmunity, which is against self).
  • Transfusion reactions — ABO incompatibility; why blood typing and cross-matching are essential. TYPE O is the UNIVERSAL DONOR; TYPE AB is the UNIVERSAL RECIPIENT, because AB individuals lack both anti-A and anti-B antibodies
  • Transplant rejection — recipient immune system attacks donor tissue, in THREE patterns: HYPERACUTE (immediate, rare — preexisting anti-HLA antibodies, a TYPE II reaction), ACUTE (days to months — a new response to unmatched HLA, both humoral and cell-mediated), and CHRONIC (months to years — slow, progressive organ failure, most often in poorly matched recipients)
  • Hemolytic disease of the newborn (Rh incompatibility) — an Rh-negative mother produces anti-Rh antibodies after exposure to Rh-positive fetal blood. With EACH SUCCESSIVE Rh-positive pregnancy the mother makes anti-D antibodies faster and in greater amounts; those IgG antibodies cross the placenta and destroy fetal RBCs. Also called HEMOLYTIC DISEASE OF THE FETUS AND NEWBORN (HDFN) or ERYTHROBLASTOSIS FETALIS. The newborn presents with JAUNDICE AND ANEMIA. This is also a Type II reaction. Prevention: RhoGAM (Rh immunoglobulin) to Rh-negative mothers.

Sources for this card

  • Textbook McCance Ch. 9 — alloimmunity

    Well-corrected already: three prior corrections (universal donor/recipient pairing, the hyperacute/acute/chronic transplant-rejection breakdown, and the 'each successive…

  • Key Points Unit 1 Key Points — “Hypersensitivity: Type II”

    Covers the transfusion side only: blood typing and cross-matching exist to stop a cytotoxic reaction against transfused cells. Says nothing about transplant rejection or hemolytic disease of the newborn.

Open one and check this card against it. If it disagrees, that is worth reporting.

The healthy immune system — three lines of defense

Background · not on the topic list !conflict

Your body stops invaders in three stages. Each one takes over when the one before it is broken through.

1. BARRIERS — keep it out.

Walls and washes. Physical ones are solid surfaces: skin, the linings of your mouth and gut. Mechanical ones move things out: tiny hairs (cilia) sweeping, plus coughing, sneezing, peeing, vomiting. Biochemical ones are fluids that trap and kill: mucus, sweat, saliva, tears, earwax.

None of this cares what the invader is. It blocks everything the same way. Your normal gut and skin bacteria count here too — they crowd out the harmful ones.

2. INFLAMMATION — contain it and kill it.

If something gets through, this kicks in within minutes. Still not fussy about what it is — it reacts the same to anything.

  • Neutrophils arrive first. They roll to the edge of the blood vessel (margination), squeeze out through the wall (diapedesis), then eat the invader (phagocytosis). Remember the order — it gets asked.
  • Macrophages eat too, and shout for help by releasing cytokines.
  • Mast cells dump histamine, then make more chemicals — including PAF.
  • Three protein systems switch on together: complement, clotting, kinin. Three. Not four — PAF is not one of them, even though your module lists it there.
  • Complement does more than leak fluid: it tags bacteria so phagocytes grab them (opsonization), and it can drill holes straight through them.

3. ADAPTIVE IMMUNITY — remember it.

Now it gets specific. A macrophage or dendritic cell eats the invader and shows a piece of it to a CD4+ helper T cell — like handing over a mugshot.

That helper T cell is the conductor. It switches on killer (CD8+) T cells, macrophages, and B cells — and B cells turn into factories pumping out antibodies aimed at that exact invader.

Careful: your module says helper T cells also switch on NK cells. The textbook says they don't — NK cells have their own sensors and fire when a cell's surface looks wrong, like in a virus infection or cancer. Go with the book.
This is exactly why HIV is so devastating. It kills the CD4+ helper T cell — the conductor. Lose it, and the whole third line has nobody directing it.

Before the ways immunity fails, the way it works. Three lines of defense, each taking over when the one before it is breached.

FIRST LINE — barriers. Keep it out.

Intact physical, mechanical and biochemical barriers stop foreign threats entering at all. Nothing here is specific to a particular invader.

PhysicalMechanicalBiochemical
SkinCiliaMucus, saliva
Mucous membranesMucus (trapped and swept by cilia)Tears, earwax
Intestinal epitheliumCoughing, sneezingPerspiration
Plus your normal microbiome — Ch. 7 counts the commensal organisms living on body surfaces as first-line protection.Urinating, vomiting, defecatingSebaceous glands secrete fatty and lactic acid, which kill bacteria and fungi.

SECOND LINE — inflammation. Contain and neutralise it.

If something gets past the barriers, the non-specific inflammatory response senses non-self fast and sends resources to contain it. Still not specific to the invader — it responds the same way to anything.

  • NEUTROPHILS — the first responders. They MARGINATE (line up along the vessel wall), undergo DIAPEDESIS (squeeze out through it) and PHAGOCYTIZE.
  • MONOCYTES and MACROPHAGES — phagocytize, and release cytokines.
  • MAST CELLS — release histamine and then synthesise further mediators: leukotrienes, prostaglandins and PLATELET-ACTIVATING FACTOR (PAF). Your module lists PAF with the plasma protein systems; the book does not — PAF is a lipid mediator, not one of the three systems.
  • THE THREE PLASMA PROTEIN SYSTEMS — and the book is explicit that there are exactly three: the COMPLEMENT system, the CLOTTING system and the KININ system. Together they increase vascular permeability so immune cells can reach the invader.
  • What complement also does — beyond permeability: C3b OPSONIZATION tags a pathogen so phagocytes grab it, and the MEMBRANE ATTACK COMPLEX (C5b–C9) punches holes in bacteria and lyses them directly.

THIRD LINE — adaptive immunity. Remember it.

Antigen-presenting cells — macrophages and dendritic cells — phagocytize the foreign antigen and present it to CD4+ helper T cells, activating them.

Those CD4+ helper T cells then coordinate the response, activating cytotoxic (CD8+) T cells, macrophages and B cells through cytokine release. (B cells go on to become plasma cells that secrete antigen-specific antibodies — the point of activating them.)

Careful — your module also lists NK cells here. The textbook does not: NK cells carry their own surface activation receptors and go off when a cell's surface protein pattern changes, as in viral infection or cancer. They are not switched on by CD4+ cytokines. Ch. 7 groups NK cells with the SECOND line.
This is why HIV is so destructive: it targets the CD4+ helper T cell, the one cell that coordinates the third line. Take it out and the specific response has no conductor.

Sources for this card

  • Textbook McCance Ch. 7 (innate immunity) and Ch. 8 (adaptive immunity)

    Confirms the three lines, the barrier categories, the neutrophil sequence of margination, diapedesis and phagocytosis, the mast-cell and macrophage roles, the three plasma protein systems, and the antigen-presenting-cell to CD4+ helper T cell handoff.

  • Course module Course module — “The Healthy Immune System”

    Where the card came from. Accurate on the three lines and the barriers, but differs from the book on NK cells, platelet-activating factor and mucus — all three are flagged on the card.

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Differentiation between primary and secondary immunodeficiency, including causes

Topic 10 of 73 textbookYour school words it: “Differentiation between primary and secondary immunodeficiency including causes”

The core question that separates these two is simple: was the immune system ever normal? If it was built defective, it's primary; if it was normal and then damaged, it's secondary.

PrimarySecondary (acquired)
CauseA genetic or congenital defect in the immune system itselfAn external factor damages a previously normal immune system
Typical onsetUsually childhood — CVID spans both, with peaks before age 10 and at 30–40Any age
ExamplesSCID, DiGeorge syndrome, Bruton agammaglobulinemia, common variable immunodeficiency (CVID)HIV, chemotherapy, radiation, corticosteroids, antirejection drugs, malnutrition, splenectomy, diabetes, aging, malignancy

Cancer-induced immunodeficiency (covered explicitly in this course) — three separate ways cancer suppresses immunity:

  • Chronic inflammation from the malignancy itself suppresses adaptive immunity, by activating immunosuppressive cells and promoting new blood vessel growth (angiogenesis) that feeds the tumor
  • Advanced cancer creates acidic local conditions and releases metabolites that directly inhibit immune cell function
  • Cancer treatments themselves are immunosuppressive — corticosteroids, antirejection medications, chemotherapy, radiation
Hallmark clinical sign of any immunodeficiency, primary or secondary: frequent, recurrent, or unusually severe infections.
PRIMARYSECONDARY (acquired)
CauseGenetic or congenital defect in the immune system itselfAn external factor damages a previously normal immune system
Typical onsetUsually childhood — though CVID has TWO peaks, one before age 10 and one at 30–40, so it spans bothAny age
ExamplesSCID, DiGeorge syndrome, Bruton agammaglobulinemia, common variable immunodeficiency (CVID)HIV, chemotherapy, radiation, corticosteroids, antirejection drugs, malnutrition, splenectomy, diabetes, aging, malignancy

Cancer-induced immunodeficiency (covered explicitly in your course):

  • Chronic inflammation from the malignancy suppresses adaptive immunity by activating immunosuppressive cells and promoting angiogenesis
  • Advanced cancer creates acidic local conditions and releases metabolites that directly inhibit immune cell function
  • Cancer treatments — corticosteroids, antirejection medications, chemotherapy, radiation — are themselves immunosuppressive

Hallmark clinical sign of any immunodeficiency: frequent, recurrent, or unusually severe infections.

Sources for this card

  • Textbook McCance Ch. 9 — primary and secondary immunodeficiency

    Solid across the board: the primary/secondary table, the example lists (SCID, DiGeorge, Bruton, CVID vs. HIV/chemo/radiation/corticosteroids/antirejection…

  • Key Points Unit 1 Key Points — “Immunodeficiency: Cancer-Induced Immunodeficiency”

    Backs the secondary half thoroughly — chronic inflammation suppressing adaptive immunity, an acidic tumour environment inhibiting immune cells, and steroids, chemotherapy and radiation as causes. Says nothing about primary immunodeficiency or the distinction itself.

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Common variable immunodeficiency (CVID)

Topic 11 of 73 textbookYour school words it: “Common variable immunodeficiency”

CVID is the primary (congenital) immunodeficiency that often goes unrecognised for years, because it can start in childhood or in adulthood — that spread is exactly what makes it easy to miss.

  • It is the most common symptomatic primary immunodeficiency — the textbook says that plainly, without limiting it to adults
  • Low IgG, plus low IgA and/or IgM → the body mounts a poor antibody response overall. B-cell counts are normal in CVID — that's what separates it from Bruton agammaglobulinemia, where B cells are nearly absent (under 2%).
  • It has two peak ages when it shows up: once before age 10, and again between 30 and 40. Do not assume it is adults-only — the textbook gives both peaks
  • About 90% of patients have recurrent infections — sinopulmonary (otitis, sinusitis, and pneumonia, most often from S. pneumoniae and H. influenzae) and GI infections — plus an increased risk of autoimmune disease and cancer (lymphoid, skin, and GI). Interstitial lung disease is also a significant cause of illness and death in CVID.
  • Treatment: IVIG replacement therapy
  • The most common SYMPTOMATIC primary immunodeficiency — the textbook states this without restricting it to adults
  • LOW IgG plus low IgA and/or IgM → poor antibody response. B-CELL NUMBERS ARE NORMAL — this separates it from Bruton agammaglobulinemia, where B cells are nearly absent (<2%)
  • TWO peak ages of onset — one BEFORE AGE 10 and another between 30 and 40. Do not assume adult-only onset
  • RECURRENT INFECTIONS IN 90% — sinopulmonary (otitis, sinusitis, pneumonia from S. pneumoniae, H. influenzae), GI; increased autoimmune disease and cancer risk (lymphoid, skin, GI). INTERSTITIAL LUNG DISEASE is a significant cause of morbidity and mortality
  • Treatment: IVIG replacement therapy

This topic is not covered in any webinar or eDapt module we have. It comes from McCance Ch. 9, pp. 255–279. The content above is standard pathophysiology.

Sources for this card

  • Textbook McCance Ch. 9 — common variable immune deficiency

    Already thoroughly corrected: three prior corrections (two peak ages instead of adult-only onset, normal B-cell count as the Bruton discriminator, and the…

Careful: this card's wording claims more than its sources give it — including, on some cards, a chapter reference nobody has checked yet. Treat any citation in the text above as unconfirmed unless it appears in this list.

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