🩸 Microcytic Anemia (MCV < 80 fL)
PathologySideroblastic anemia's ringed sideroblasts result from a block in heme synthesis itself — the full pathway and where it can fail is covered in Hemoglobin & Heme Synthesis → Heme Synthesis Pathway.
- Underlying theme: insufficient hemoglobin per cell → marrow compensates with extra divisions → smaller cells
Iron Deficiency Anemia
- Most common cause overall: chronic blood loss (adults)
- Children: excess cow's milk, low iron intake
- Pregnancy: increased fetal-maternal iron demand
- Presentation: fatigue, pallor, dyspnea, pica, restless leg syndrome, spoon nails (koilonychia)
- Can also cause glossitis and cheilosis; Plummer-Vinson syndrome pairs iron deficiency anemia with esophageal webs and dysphagia
- Labs: ↓ serum iron, ↓ ferritin, ↑ transferrin (TIBC), ↓ % saturation
- Treatment: oral iron + address the source of loss
Thalassemias
| Feature | Alpha-Thalassemia | Beta-Thalassemia |
|---|---|---|
| Defect | Deletion of alpha-globin genes (4 total) | Reduced/absent beta-globin production (2 genes) |
| Population | African, Southeast Asian descent | Mediterranean, Southern Asian descent |
| Severity spectrum | 1 gene: silent → 4 genes: hydrops fetalis (fatal) | Minor (1 gene): mild; Major (2 gene): transfusion-dependent |
| Findings | Microcytic anemia, target cells | "Chipmunk facies," hepatosplenomegaly, skull changes on imaging from marrow expansion |
Thalassemia Severity by Gene Dose
| Type | Genes Affected | Clinical Picture |
|---|---|---|
| Alpha — silent carrier | 1 of 4 | Asymptomatic |
| Alpha — trait | 2 of 4 | Mild microcytic anemia, target cells |
| Alpha — Hemoglobin H disease | 3 of 4 | Chronic hemolytic anemia, splenomegaly, pallor |
| Alpha — hydrops fetalis | 4 of 4 | No functional alpha chains (Hemoglobin Bart's); fatal in utero |
| Beta — minor | 1 of 2 | Mild anemia, largely normal life, transfusions only under stress |
| Beta — major | 2 of 2 | Severe transfusion-dependent anemia, growth delay, skeletal changes, hepatosplenomegaly |
Alpha-thalassemia has four gene copies to lose, so severity scales in discrete steps up to a fatal fourth hit; beta-thalassemia has only two, so the jump from "minor" to "major" is a much bigger clinical cliff between heterozygous and homozygous states.
Sideroblastic Anemia
- Defective heme synthesis → iron accumulates in mitochondria of erythroid precursors → ringed sideroblasts (marrow only, not peripheral blood)
- Causes: genetic (often X-linked), alcohol, certain drugs (isoniazid, chloramphenicol, linezolid), lead
- Labs: paradoxically high serum iron and ferritin (unlike iron deficiency)
Telling Thalassemia Trait Apart from Iron Deficiency
- Index < 13 → favors thalassemia trait (RBC count is often normal-to-high despite microcytosis)
- Index > 13 → favors iron deficiency anemia (RBC count tends to be low along with the low MCV)
Iron Study Comparison
| Iron Deficiency | Anemia of Chronic Disease | Sideroblastic | Hemochromatosis | Pregnancy / OCP Use | |
|---|---|---|---|---|---|
| Serum iron | Low | Low | High | High | Unchanged |
| Ferritin | Low | High | High | High | Unchanged |
| TIBC/Transferrin | High | Low | Low | Low | High (estrogen raises transferrin synthesis) |
| % Saturation | Low | Normal/low | High | High | Low |
Ferritin is an acute-phase reactant, not just an iron-storage marker — that's why it rises in inflammation (anemia of chronic disease) even as usable iron is being withheld, and it's the single value that separates ACD from true iron deficiency when serum iron is low in both.
🟠 Macrocytic Anemia (MCV > 100 fL)
PathologyMethotrexate causes the same impaired-DNA-synthesis picture as folate deficiency by inhibiting the same enzyme, dihydrofolate reductase — its mechanism and toxicity are covered in Cancer Chemotherapy Pharmacology → Antimetabolites.
Megaloblastic (Impaired DNA Synthesis)
| Feature | Folate Deficiency | Vitamin B12 Deficiency |
|---|---|---|
| Common causes | Poor diet/alcoholism, pregnancy, methotrexate, hemolysis | Pernicious anemia, malabsorption, strict vegan diet, Crohn disease, fish tapeworm |
| Neurologic symptoms | Absent | Present — peripheral neuropathy, subacute combined degeneration |
| Homocysteine | Elevated | Elevated |
| Methylmalonic acid | Normal | Elevated |
| Treatment | Folate supplementation | B12 supplementation |
Nonmegaloblastic Macrocytosis
- Alcohol — direct marrow toxicity
- Liver disease — abnormal lipid deposition on RBC membrane
- Certain drugs impairing DNA synthesis by non-vitamin mechanisms (e.g., hydroxyurea, zidovudine)
Nonmegaloblastic causes raise MCV without slowing DNA synthesis, which is exactly why hypersegmented neutrophils — a marker of impaired nuclear maturation — are absent here but present in the megaloblastic causes above.
Orotic Aciduria
- Autosomal recessive defect in UMP synthase, an enzyme in the de novo pyrimidine synthesis pathway
- Impaired pyrimidine production → failure to thrive, developmental delay, and megaloblastic anemia that does not correct with B12 or folate
- Distinguishing feature: normal ammonia level, unlike urea cycle disorders (e.g., ornithine transcarbamylase deficiency) that also cause orotic acid buildup but with hyperammonemia
- Treatment: oral uridine supplementation to bypass the enzyme defect
Both orotic aciduria and urea cycle disorders back up orotic acid, but for opposite reasons — one is a downstream block in pyrimidine synthesis, the other floods the same pathway with excess carbamoyl phosphate from a proximal urea cycle defect. The ammonia level is what tells them apart.
⚪ Normocytic Anemia
PathologyG6PD and pyruvate kinase deficiency cause hemolysis by knocking out the two pathways an RBC depends on for NADPH and ATP — that energy metabolism is laid out in Red Blood Cells → Structure & Function.
Nonhemolytic Causes
- Anemia of chronic disease — inflammation → hepcidin release → iron trapped in macrophages
- Normal-to-high ferritin distinguishes from iron deficiency
- Aplastic anemia — marrow failure/destruction, fatty replacement
- Causes: radiation, certain drugs, viral infection (parvovirus B19, EBV, hepatitis viruses), Fanconi anemia
- Presents with pancytopenia — fatigue, bleeding, infection susceptibility
- Related but distinct: Diamond-Blackfan anemia — a congenital pure red cell aplasia presenting in infancy with anemia alone (not pancytopenia), often with short stature and thumb/craniofacial abnormalities
- Chronic kidney disease — reduced erythropoietin production
Anemia of chronic disease isn't an iron shortage — it's an iron distribution problem: hepcidin locks iron inside macrophages that the marrow can't access, which is why total-body iron (and ferritin) can be normal or high while the marrow still looks iron-starved.
Classifying Hemolysis
- Intravascular — RBCs lyse inside vessels
- Free hemoglobin spills into plasma and urine
- Haptoglobin drops as it clears free hemoglobin
- Extravascular — RBCs cleared outside vessels (mainly spleen)
- Macrophage breakdown raises unconjugated bilirubin
- Haptoglobin typically stays closer to normal
- Intrinsic — defect built into the RBC itself (membrane, enzyme, or hemoglobin defect)
- Extrinsic — otherwise normal RBCs destroyed by an outside process (antibodies, mechanical shear, infection)
Intravascular/extravascular and intrinsic/extrinsic are independent axes, not synonyms — a single hemolytic disease sits at one point on each: hereditary spherocytosis is intrinsic and extravascular, while a mechanical valve is extrinsic and intravascular.
Antiglobulin (Coombs) Testing
- Direct Coombs test: anti-human globulin is added directly to the patient's washed RBCs
- Agglutination = the patient's RBCs are already coated with antibody → confirms autoimmune hemolytic anemia
- Indirect Coombs test: patient serum is mixed with reagent RBCs, then anti-human globulin is added
- Agglutination = the patient's serum contains anti-RBC antibodies → used for pretransfusion compatibility screening and in Rh-alloimmunization workups
Reticulocyte Production Index
- Corrects the raw reticulocyte percentage for both the degree of anemia and the longer maturation time of reticulocytes released early from a stressed marrow
- RPI > 3 → marrow is mounting an appropriate compensatory response (typical of hemolysis or acute blood loss)
- RPI < 2 → marrow response is inadequate, pointing toward a production problem (iron/B12/folate deficiency, marrow failure, chronic disease)
Hemolytic — Extrinsic Causes
- Microangiopathic (schistocytes) — DIC, TTP, HUS, malignant hypertension
- Macroangiopathic — mechanical heart valves, severe aortic stenosis
- Infectious — malaria, babesiosis
- Drug-induced — either antibody-mediated destruction (look for spherocytes) or direct oxidative injury (look for bite cells, often via penicillins, cephalosporins, NSAIDs, or chemotherapy)
- Autoimmune hemolytic anemia
Type Antibody Trigger/Association Key Finding Cold agglutinin IgM Mycoplasma, mononucleosis, CLL Positive Coombs, acrocyanosis with cold exposure Warm agglutinin IgG EBV, HIV, SLE, CLL, lymphoma Positive Coombs, spherocytes, splenomegaly Concept checkWarm (IgG) autoimmune hemolysis works through splenic macrophages picking off antibody-coated cells — extravascular, hence spherocytes. Cold (IgM) agglutinins fix complement directly on the RBC surface — closer to intravascular, hence the cold-triggered acrocyanosis rather than splenomegaly.
Hemolytic — Intrinsic Causes
| Condition | Mechanism | Key Clue |
|---|---|---|
| Hereditary spherocytosis | Membrane cytoskeleton defect (e.g., ankyrin, spectrin, band 3) | Spherocytes with no central pallor, splenomegaly, pigmented gallstones; risk of aplastic crisis with parvovirus B19; diagnosed via osmotic fragility or eosin-5-maleimide binding testing; splenectomy curative |
| G6PD deficiency | Impaired NADPH regeneration | Heinz bodies, bite cells; triggered by oxidative stressors (fava beans, certain drugs) |
| Pyruvate kinase deficiency | Impaired ATP generation | Chronic hemolysis in neonates/children |
| Sickle cell disease | Glu→Val substitution in beta-globin | Deoxygenated HbS polymerizes under low O₂, high altitude, dehydration, or acidosis, driving vaso-occlusion; newborns are initially protected by high HbF; heterozygous carriers (sickle trait) gain malaria resistance |
| Hemoglobin C disease | Glu→Lys substitution causing intracellular crystallization | Mild hemolytic anemia, splenomegaly, gallstones (homozygotes); heterozygotes asymptomatic |
| Paroxysmal nocturnal hemoglobinuria | Loss of GPI-anchored complement inhibitors (CD55/59) | Hemolysis + thrombosis + cytopenias triad |
G6PD deficiency hemolysis is episodic because it only fails under oxidative stress; pyruvate kinase deficiency hemolysis is chronic because ATP is needed continuously just to keep the RBC alive, stress or not.
- Aplastic crisis — transient marrow shutdown triggered by parvovirus B19
- Autosplenectomy from repeated infarcts → Howell-Jolly bodies, increased risk of encapsulated organism infection (e.g., Salmonella osteomyelitis)
- Vaso-occlusive pain crises — dactylitis, priapism, avascular necrosis, stroke
- Acute chest syndrome — new pulmonary infiltrates with respiratory distress; a leading cause of death
- Renal papillary necrosis from sickling in the low-oxygen renal medulla
🧷 Hemostasis & Platelet Function
PhysiologyGpIb and GpIIb/IIIa, the receptors driving adhesion and aggregation below, are the same receptors that are congenitally defective in Bernard-Soulier syndrome and Glanzmann thrombasthenia, covered in Bleeding Disorders → Platelet Disorders.
- Primary hemostasis: platelet plug formation
- Secondary hemostasis: coagulation cascade builds a fibrin mesh
Platelet Plug Formation
- Platelets: anucleate fragments from megakaryocytes, lifespan 7–10 days, normal count 150,000–450,000/µL
- Dense granules store calcium, ADP, serotonin, and histamine; alpha granules store vWF, fibrinogen, fibronectin, and platelet factor 4 — both empty during activation to drive further aggregation
- Roughly a third of the total platelet pool is normally sequestered in the spleen at any given time
🔗 Coagulation Cascade
PhysiologyEach named factor deficiency below has a matching bleeding disorder — hemophilia A/B/C and von Willebrand disease are mapped onto these pathways with their PT/PTT patterns in Bleeding Disorders → Coagulation Factor & Mixed Disorders.
Extrinsic (Tissue Factor) Pathway
- Monitored by PT / INR — reflects factors I, II, V, VII, and X
Intrinsic (Contact) Pathway
- Monitored by PTT — reflects every factor except VII and XIII
Common Pathway
- Rate-limiting convergence point: Factor X
- Thrombin is a positive amplifier — activates factors V, VIII, and XI
Natural Anticoagulant Systems
- Protein C + Protein S → degrade factors Va and VIIIa
- Antithrombin → inhibits thrombin and factor Xa (potentiated by heparin)
- Plasmin (from plasminogen via kallikrein/tPA) → breaks down fibrin clots
Coagulation and Inflammation Cross-Talk
- Coagulation and inflammation amplify one another bidirectionally
- Kallikrein converts high-molecular-weight kininogen into bradykinin → vasodilation, increased vascular permeability
- High-molecular-weight kininogen also acts as a cofactor that helps activate factor XII in the contact pathway
- Inflammatory cytokines make vessel walls more prothrombotic (e.g., by upregulating tissue factor expression)
- Plasmin, beyond dissolving clots, can also trigger complement activation
- C1-inhibitor normally restrains this kinin cascade; a deficiency in C1-inhibitor removes that brake and causes hereditary angioedema
The contact pathway, kinin system, and complement system share components, so a defect that looks purely "coagulation-related" (like C1-inhibitor loss) can present as recurrent swelling rather than a bleeding or clotting problem.
💧 Bleeding Disorders
PathologyTTP and HUS below produce a microangiopathic hemolytic anemia (schistocytes, elevated LDH) through platelet microthrombi rather than antibody or enzyme defects — that hemolysis classification is covered in Normocytic Anemia → Hemolytic — Extrinsic Causes.
- Platelet-type bleeding: mucocutaneous — petechiae, epistaxis, gum bleeding, easy bruising
- Coagulation factor-type bleeding: deep — hemarthroses, deep muscle bleeds, delayed bleeding after trauma
Platelet Disorders
| Disorder | Mechanism | Key Features & Treatment |
|---|---|---|
| Immune thrombocytopenic purpura | Autoantibodies vs. platelet GpIIb/IIIa → splenic macrophage destruction of antibody-coated platelets | Isolated low platelets, ↑ megakaryocytes in marrow; may be idiopathic or secondary to autoimmune disease, viral infection, or malignancy; treat with steroids, IVIG, rituximab, TPO-receptor agonists, or splenectomy for refractory disease |
| Bernard-Soulier syndrome | GpIb defect (impaired adhesion) | Large platelets, normal count possible; treat with desmopressin (boosts vWF release), aminocaproic acid, or platelet transfusion |
| Glanzmann thrombasthenia | GpIIb/IIIa defect (impaired aggregation) | Normal platelet count, prolonged bleeding time; treat with platelet transfusion, avoid drugs that further impair platelet function |
| Uremic platelet dysfunction | Circulating uremic toxins impair adhesion and aggregation | Normal platelet count with prolonged bleeding time in renal failure patients; treat the underlying renal failure (dialysis), desmopressin |
ITP, Bernard-Soulier, and Glanzmann all produce the same mucocutaneous bleeding pattern, but ITP is an acquired destruction problem (low count) while the other two are congenital receptor defects (count often normal) — platelet count alone can point you to the right category before the mechanism does.
Thrombotic Microangiopathies: TTP vs. HUS
Both cause a triad of thrombocytopenia, microangiopathic hemolytic anemia (schistocytes, elevated LDH), and acute kidney injury — but PT and PTT stay normal, since the platelet clumping isn't driven by activation of the coagulation cascade the way DIC is.
| Thrombotic Thrombocytopenic Purpura | Hemolytic-Uremic Syndrome | |
|---|---|---|
| Typical patient | Adult, more often female | Child |
| Mechanism | Deficient or inhibited ADAMTS13 → large uncleaved vWF multimers → excess platelet adhesion and microthrombi | Usually triggered by Shiga toxin-producing E. coli (e.g., serotype O157:H7) → direct endothelial injury → microthrombi |
| Extra clues | Fever and neurologic symptoms on top of the triad | Bloody diarrhea preceding the triad |
| Treatment | Plasma exchange, glucocorticoids | Supportive care |
Coagulation Factor & Mixed Disorders
| Disorder | Defect | PT | PTT | Notes & Treatment |
|---|---|---|---|---|
| Hemophilia A | Factor VIII deficiency | Normal | ↑ | X-linked recessive; treat with factor VIII replacement, desmopressin can boost factor VIII levels in mild disease |
| Hemophilia B | Factor IX deficiency | Normal | ↑ | X-linked recessive; treat with factor IX replacement |
| Hemophilia C | Factor XI deficiency | Normal | ↑ | Autosomal recessive (unlike A/B); generally milder bleeding tendency; treat with factor XI concentrate |
| Von Willebrand disease | ↓ vWF → ↓ factor VIII stability + impaired adhesion | Normal | ↑ (often) | Most common inherited bleeding disorder; treat with desmopressin, vWF concentrates |
| Vitamin K deficiency | ↓ factors II, VII, IX, X (and proteins C, S) | ↑ | ↑ | Seen in newborns, malabsorption, warfarin excess; treat with vitamin K supplementation |
| DIC | Consumption of platelets + clotting factors | ↑ | ↑ | Schistocytes, ↓ fibrinogen, ↑ D-dimer; treat underlying cause, supportive transfusion of platelets/plasma |
Von Willebrand disease is the odd one out in this table — it raises PTT like a factor deficiency, but its bleeding is platelet-type (mucocutaneous) because vWF's primary job is adhesion, not just stabilizing factor VIII.
🧵 Hypercoagulable States
PathologyProtein C/S and antithrombin, whose deficiencies drive two of the conditions below, are the natural brakes on coagulation described in Coagulation Cascade → Natural Anticoagulant Systems — losing the brake is what makes them thrombophilias.
| Condition | Mechanism | Clinical Notes |
|---|---|---|
| Factor V Leiden | Mutant factor V resistant to degradation by activated protein C | Most common inherited thrombophilia; associated with DVT, cerebral vein thrombosis, and recurrent pregnancy loss |
| Prothrombin gene mutation (G20210A) | Point mutation → overproduction of prothrombin | Raises plasma prothrombin levels and venous clot risk |
| Antithrombin deficiency | Reduced inhibition of thrombin and factor Xa | Baseline PT/PTT are unaffected, but the expected PTT rise after standard heparin dosing is blunted; can also be acquired via antithrombin loss in nephrotic syndrome |
| Protein C or S deficiency | Reduced degradation of factors Va/VIIIa | Raises the risk of warfarin-induced skin necrosis if warfarin is started without heparin bridging |
These four conditions reach hypercoagulability by two different routes — Factor V Leiden and the prothrombin mutation push the accelerator (more/resistant procoagulant activity), while antithrombin and protein C/S deficiency cut the brakes (less natural anticoagulant activity).
- These conditions predominantly drive venous thromboembolism; arterial events are less typical
💊 Antiplatelet & Anticoagulant Drugs
PharmacologyThese drugs exist largely to treat the inherited and acquired thrombophilias in Hypercoagulable States, and their target — the natural anticoagulant pathway — is the same one those conditions disable.
Antiplatelet Agents
| Drug Class | Mechanism | Key Adverse Effect |
|---|---|---|
| Aspirin | Irreversible COX-1 inhibition → ↓ thromboxane A2 | GI ulceration, tinnitus (toxicity), Reye syndrome risk in children |
| ADP receptor blockers (e.g., clopidogrel) | Block P2Y12 → ↓ GpIIb/IIIa expression | Bleeding, GI upset |
| GpIIb/IIIa inhibitors | Direct blockade of platelet aggregation receptor | Bleeding, thrombocytopenia |
| Phosphodiesterase inhibitors (cilostazol, dipyridamole) | Block phosphodiesterase → ↑ intraplatelet cAMP → ↓ aggregation | Nausea, headache, facial flushing, hypotension; used for intermittent claudication and stroke prevention |
Aspirin, P2Y12 blockers, and GpIIb/IIIa inhibitors hit progressively later steps of the same activation-aggregation sequence — which is exactly why combining aspirin with a P2Y12 blocker (dual antiplatelet therapy) gives additive benefit rather than redundant effect.
Anticoagulants
| Drug | Mechanism | Monitoring | Reversal |
|---|---|---|---|
| Unfractionated heparin | Potentiates antithrombin (mainly anti-thrombin activity) | PTT | Protamine sulfate |
| Low-molecular-weight heparin | Potentiates antithrombin (mainly anti-Xa activity) | Anti-Xa level (routine monitoring usually unnecessary) | Partial with protamine |
| Warfarin | Blocks vitamin K epoxide reductase → ↓ synthesis of factors II, VII, IX, X, proteins C/S | PT/INR | Vitamin K, fresh frozen plasma |
| Fondaparinux | Synthetic pentasaccharide, selectively potentiates antithrombin's anti-Xa activity | Not routinely monitored | No specific reversal agent |
| Direct Xa inhibitors (rivaroxaban, apixaban) | Direct factor Xa inhibition | Not routinely monitored | Andexanet alfa (where available) |
| Direct thrombin inhibitors (dabigatran, argatroban) | Direct thrombin inhibition | Not routinely monitored | Idarucizumab for dabigatran |
| Thrombolytics (e.g., alteplase) | Activate plasmin → break down existing fibrin clots | Clinical response | Antifibrinolytics, supportive care |
- Type 1 — mild, non-immune drop in platelets within the first 1–2 days of heparin; not clinically significant, heparin can be continued
- Type 2 — immune-mediated, appearing 5–10 days after exposure; IgG antibodies against heparin–platelet factor 4 complexes activate platelets, causing both a sharp platelet drop and paradoxical thrombosis. Highest risk with unfractionated heparin. Stop heparin and start a non-heparin anticoagulant (e.g., argatroban); fondaparinux is considered safe since it does not bind platelet factor 4
Heparin vs. Warfarin — Side by Side
| Heparin | Warfarin | |
|---|---|---|
| Route | IV or subcutaneous | Oral |
| Onset | Rapid | Slow (days) |
| Half-life | Short | Long |
| Typical use | Acute/short-term anticoagulation | Long-term anticoagulation |
| Pregnancy | Considered safe | Contraindicated (teratogenic) |
| Monitoring | PTT | PT / INR |
| Reversal | Protamine sulfate | Vitamin K, fresh frozen plasma |
🩹 Blood Products & Transfusion Medicine
ClinicalAcute hemolytic transfusion reactions happen because of pre-formed anti-A/anti-B antibodies attacking mismatched donor RBCs — the antigen/antibody pairing behind this is explained in Red Blood Cells → Blood Group Systems.
Blood Component Therapy
| Component | Contains / Effect | Typical Use |
|---|---|---|
| Packed RBCs | Raises hemoglobin ~1 g/dL and hematocrit ~3% per unit | Acute blood loss, symptomatic anemia |
| Platelets | Raises platelet count | Active bleeding from thrombocytopenia or qualitative platelet defects |
| Fresh frozen plasma / prothrombin complex concentrate | Replenishes coagulation factors; FFP has the full complement, PCC concentrates the vitamin K–dependent factors | Cirrhosis-related coagulopathy, urgent anticoagulation reversal |
| Cryoprecipitate | Fibrinogen, factor VIII, factor XIII, vWF, fibronectin | Hypofibrinogenemia, factor VIII/vWF deficiencies |
| Albumin | Expands intravascular volume and oncotic pressure | Large-volume paracentesis, therapeutic plasma exchange |
Cryoprecipitate is essentially the concentrated, fibrinogen-rich fraction of FFP — reach for it when you need a lot of fibrinogen/factor VIII/vWF in a small volume, and FFP when you need the full factor complement instead.
Transfusion Reactions & Risks
| Complication | Mechanism / Presentation |
|---|---|
| Acute hemolytic reaction | ABO mismatch → preformed antibodies attack donor RBCs → fever, flank pain, hemoglobinuria, shock |
| Febrile nonhemolytic reaction | Cytokines released from donor white cells during storage → fever, chills without hemolysis |
| TACO (circulatory overload) | Transfusion given too fast/too much → pulmonary edema, hypertension |
| TRALI (lung injury) | Donor antibodies activate recipient neutrophils in the lung → noncardiogenic pulmonary edema, hypoxia, hypotension |
| Iron overload | Cumulative effect of chronic transfusion → secondary hemochromatosis |
| Hypocalcemia | Citrate anticoagulant in stored blood chelates calcium |
| Hyperkalemia | Potassium leaks out of RBCs during storage, especially in older units |
🟣 Lymphoma
OncologyThe translocations behind Burkitt (t(8;14)), mantle cell (t(11;14)), and follicular lymphoma (t(14;18)) all work the same way — placing an oncogene next to a constitutively active promoter — as explained in Plasma Cell Disorders → Chromosomal Translocations Worth Memorizing.
Hodgkin Lymphoma
- Defining feature: Reed-Sternberg cells — large, binucleate ("owl-eye") cells that are CD15-positive and CD30-positive, of B-cell origin
- Bimodal age distribution — young adults and older adults
- Strong association with EBV in a substantial subset of cases
- Typically spreads in contiguous fashion between nodal groups; extranodal spread is uncommon, and stage at diagnosis is the strongest predictor of prognosis
- Presentation: painless lymphadenopathy (often cervical/mediastinal), B symptoms (fever, night sweats, weight loss), pruritus
| Subtype | Relative Frequency | Histologic Clue | Prognosis |
|---|---|---|---|
| Nodular sclerosing | Most common | Collagen bands dividing cellular nodules; relatively few Reed-Sternberg cells | Favorable |
| Mixed cellularity | Second most common | Abundant Reed-Sternberg cells | Good |
| Lymphocyte-predominant | Uncommon | Few Reed-Sternberg cells, lymphocyte-rich background | Favorable |
| Lymphocyte-depleted | Rare | High Reed-Sternberg-to-lymphocyte ratio | Poor |
Prognosis here tracks the reactive lymphocyte background, not Reed-Sternberg cell burden — a lymphocyte-rich picture implies the host's immune system is actively engaging the tumor, while a lymphocyte-depleted picture means it isn't.
Non-Hodgkin Lymphoma
- Heterogeneous group lacking Reed-Sternberg cells; can arise at extranodal sites
| Subtype | Typical Population | Distinguishing Feature |
|---|---|---|
| Diffuse large B-cell lymphoma | Most common adult NHL, often older adults | Aggressive but often treatable |
| Burkitt lymphoma | Endemic form in children (EBV-linked, jaw mass); sporadic form elsewhere | "Starry sky" histology; MYC translocation |
| Follicular lymphoma | Older adults | Indolent but often relapses; anti-apoptotic gene overexpression |
| Mantle cell lymphoma | Older males | Cyclin D1 overexpression, poor prognosis |
| MALT lymphoma | Associated with chronic mucosal inflammation (e.g., H. pylori gastritis, Sjögren) | Good prognosis; may regress with infection treatment |
| Lymphoblastic lymphoma | Most common NHL in children | Often presents as a mediastinal mass; closely related to ALL |
| Small lymphocytic lymphoma | Older adults | Same malignant cell as CLL, but presenting as nodal disease rather than a blood/marrow process |
| Adult T-cell lymphoma | Rare; regions with endemic viral exposure | Linked to HTLV-1 infection; presents with skin involvement, poor prognosis |
| Intestinal T-cell lymphoma | Rare | Associated with untreated celiac disease, poor prognosis |
| Primary central nervous system lymphoma | Adults, especially immunocompromised (HIV/AIDS) | An AIDS-defining illness linked to EBV; presents with confusion, memory loss, or seizures from a CNS mass, which must be distinguished from CNS toxoplasmosis |
| Cutaneous T-cell lymphoma (mycosis fungoides) | Adults | T-cell neoplasm confined mostly to skin; erythematous patches in sun-protected areas that slowly progress to plaques and then tumors |
🧫 Leukemia
OncologyThe BCR-ABL fusion driving CML (and a subset of ALL) and the FLT3 mutation driving AML are explained at the signaling-pathway level in Plasma Cell Disorders → Genetic Drivers Behind Hematologic Malignancies.
| Leukemia | Typical Age Group | Key Associations | Distinguishing Lab/Histology Clue |
|---|---|---|---|
| Acute lymphoblastic leukemia (ALL) | Children (peak age 2–5) | Down syndrome; t(12;21) confers a better prognosis, t(9;22)/Philadelphia chromosome confers a worse one; can spread to the CNS and testes | TdT-positive, PAS-positive lymphoblasts, CD10-positive in the pre-B subtype; bone pain common |
| Acute myeloid leukemia (AML) | Older adults (median age ~65) | Prior chemotherapy/radiation, benzene exposure, alkylating agent exposure, myelodysplastic syndromes, Down syndrome (linked to a megakaryoblastic subtype) | Auer rods (especially the promyelocytic subtype, driven by a t(15;17) translocation); myeloblasts are PAS-negative, unlike ALL; a very high blast count can cause leukostasis — capillary plugging leading to organ damage |
| Chronic lymphocytic leukemia (CLL) | Elderly (often >70) | Often indolent, may be asymptomatic; can trigger autoimmune hemolysis and hypogammaglobulinemia; can undergo Richter transformation into an aggressive lymphoma (most often diffuse large B-cell lymphoma) | Smudge cells on smear; can overlap with small lymphocytic lymphoma |
| Chronic myeloid leukemia (CML) | Middle-aged adults (25–60) | Philadelphia chromosome — t(9;22) BCR-ABL fusion | Full spectrum of maturing neutrophil precursors (bands, metamyelocytes, myelocytes) on smear; low leukocyte alkaline phosphatase (LAP) |
- ALL presentation is broad: fever, fatigue, pallor, dizziness, dyspnea, bleeding tendency, lymphadenopathy, bone pain, splenomegaly — coagulation-cascade abnormalities (elevated PT, low fibrinogen) can accompany it
- AML presentation: fatigue, weakness, dyspnea, fever, anemia, splenomegaly, skin lesions; disseminated intravascular coagulation is a recognized complication
- CLL presentation ranges from entirely asymptomatic to lymphadenopathy, mucocutaneous bleeding, petechiae, fatigue, splenomegaly, and hepatomegaly
- CML presentation: fatigue, abdominal pain, weight loss, fever, splenomegaly, hepatomegaly
- Acute leukemias are defined by a marrow blast percentage well above the normal baseline (blasts predominate); chronic leukemias show mostly mature-looking cells
- Acute promyelocytic leukemia (AML subtype) is notable for its specific treatment with all-trans retinoic acid, which promotes differentiation of the abnormal promyelocytes
- CML can progress to an aggressive "blast crisis" phase resembling acute leukemia
- Imatinib and related tyrosine kinase inhibitors specifically target the BCR-ABL fusion protein
- The t(9;22) translocation is essentially always present in CML, occasionally seen in ALL, and rarely in AML
Hairy Cell Leukemia
- Rare, indolent mature B-cell neoplasm, typically in older adult men
- Cells have fine, hair-like cytoplasmic projections on smear
- Marrow fibrosis often causes a "dry tap" on aspiration; presents with massive splenomegaly and pancytopenia rather than lymphadenopathy
- Historically identified by a tartrate-resistant acid phosphatase (TRAP) stain, now largely replaced by flow cytometry; associated with BRAF mutations
- Treatment: purine analog chemotherapy (e.g., cladribine)
The "dry tap" and massive splenomegaly without lymphadenopathy both trace back to where the disease actually lives — marrow fibrosis blocks aspiration, and the spleen (not lymph nodes) becomes the dominant site of cell accumulation.
Myelodysplastic Syndromes
- Clonal stem cell disorders with ineffective blood cell maturation → cytopenias despite a normal or hypercellular marrow
- Marrow blast count stays below the 20% threshold that would define acute leukemia
- Arise de novo or after radiation/chemotherapy/benzene exposure; carry a real risk of progression to AML
- More common with advancing age; neutrophils may show an abnormal bilobed ("pince-nez") nuclear shape
MDS sits mechanistically between normal marrow and AML: it's a maturation problem (cytopenias despite a cellular marrow) rather than a blast-excess problem — cross the 20% blast threshold and, by definition, it's no longer MDS.
Leukemoid Reaction vs. CML
A markedly elevated neutrophil count can be reactive (leukemoid reaction) or malignant (CML) — the distinction matters clinically.
| Leukemoid Reaction | Chronic Myeloid Leukemia | |
|---|---|---|
| Cause | Reactive response to severe infection/inflammation | Myeloproliferative neoplasm driven by BCR-ABL |
| Neutrophil changes | Toxic granulation, cytoplasmic vacuoles | Full spectrum of maturing precursors, often with an abnormal bilobed nuclear shape |
| Leukocyte alkaline phosphatase | Elevated | Low |
| Basophils/eosinophils | Normal | Often elevated |
Langerhans Cell Histiocytosis
- Proliferative disorder of Langerhans cells, the dendritic antigen-presenting cells normally resident in skin
- Presents in children with lytic bone lesions and a skin rash, or as recurrent ear infections from a mastoid mass
- These Langerhans cells are functionally immature and present antigen poorly
- Cells express S-100 and CD1a; electron microscopy shows characteristic tennis-racket-shaped (Birbeck) granules
🌱 Chronic Myeloproliferative Neoplasms
OncologyCML is grouped with these JAK2-driven disorders on some exams but is mechanistically distinct — driven by BCR-ABL rather than JAK2, and low (not high) leukocyte alkaline phosphatase — as detailed in Leukemia → Chronic myeloid leukemia (CML).
- Shared driver in several of these disorders: JAK2 mutation, which increases marrow precursor sensitivity to growth factors
| Disorder | Cell Line Overproduced | Presentation | Treatment |
|---|---|---|---|
| Polycythemia vera | Red blood cells | Plethora, headache, dizziness, pruritus (classically after warm bathing), hypertension, splenomegaly, erythromelalgia, blood hyperviscosity | Phlebotomy, hydroxyurea, splenectomy |
| Essential thrombocytosis | Platelets | Headache, digital pain, thrombosis or paradoxical bleeding, neurologic symptoms, splenomegaly | Hydroxyurea, aspirin, plateletpheresis |
| Primary myelofibrosis | None — marrow replaced by fibrosis | Fatigue, pallor, easy bruising, petechiae, bleeding, splenomegaly; pancytopenia results from marrow scarring | Ruxolitinib, hydroxyurea, thalidomide/prednisone, stem cell transplantation, splenectomy, radiation |
Distinguishing Labs
- Polycythemia vera: elevated RBC mass with a low erythropoietin level (suppressed by negative feedback) and normal O₂ saturation — this is what separates it from secondary/appropriate polycythemia; leukocyte alkaline phosphatase (LAP) is elevated, opposite of CML
- Essential thrombocytosis: giant platelets and megakaryocytes on smear, thrombopoietin level low-to-normal
- Myelofibrosis: bone marrow biopsy shows collagen fibrosis and osteosclerosis with abnormal megakaryocytes; peripheral smear shows teardrop cells and evidence of extramedullary hematopoiesis (spleen/liver taking over blood cell production)
🧪 Plasma Cell Disorders
OncologyMultiple Myeloma
- Monoclonal plasma cell proliferation, typically producing excess IgG (less commonly IgA)
- Classic presentation clusters around: bone pain/fractures, renal impairment, hypercalcemia, anemia, increased susceptibility to infection
- Labs: monoclonal (M) spike on protein electrophoresis, rouleaux formation on smear, light chains (Bence-Jones protein) in urine — detectable only by electrophoresis, not standard dipstick; amyloidosis can develop from light-chain deposition
- Bone marrow biopsy: confirms the diagnosis when clonal plasma cells make up more than 10% of the marrow, often with an eccentric "clock-face" nuclear pattern
- Imaging: "punched-out" lytic lesions from osteoclast activation (plasma cells secrete cytokines that stimulate osteoclasts and inhibit osteoblasts)
- Treatment: chemotherapy, radiation, bone marrow/stem cell transplantation
The classic myeloma tetrad (hyperCalcemia, Renal failure, Anemia, Bone lesions) isn't four unrelated findings — all four trace back to the same clonal plasma cell mass crowding the marrow and driving cytokine-mediated osteoclast activity.
Related Entities
| Condition | Key Distinguishing Point |
|---|---|
| Waldenström macroglobulinemia | Monoclonal IgM overproduction (IgM is the largest immunoglobulin, so it raises blood viscosity most dramatically); weakness, peripheral neuropathy, hepatosplenomegaly, lymphadenopathy, and hyperviscosity symptoms including blurred vision from dilated, sausage-shaped retinal veins on funduscopy; no lytic bone lesions; treated with chemotherapy, thalidomide, and plasmapheresis (to relieve hyperviscosity) |
| Solitary plasmacytoma of bone | Localized plasma cell tumor within bone; compression fractures, back pain; single lytic lesion at the tumor site; treated with radiation or surgical resection |
| Extramedullary plasmacytoma | Plasma cell tumor outside bone, often on head/neck mucosal surfaces; headache, epistaxis, sore throat, dysphagia; treated with radiation or surgical resection |
| Monoclonal gammopathy of undetermined significance (MGUS) | Asymptomatic M spike (typically smaller, < 3 g/dL) without organ damage and with < 10% clonal plasma cells in the marrow; carries roughly a 1–2% per year risk of progressing to multiple myeloma, so it's monitored rather than treated |
These entities sit on one spectrum of clonal plasma-cell/lymphoplasmacytic disease, distinguished mainly by tumor burden and whether end-organ damage has occurred — MGUS is essentially "myeloma without organ damage yet."
Genetic Drivers Behind Hematologic Malignancies
| Mutation | Pathway Effect | Associated Malignancy |
|---|---|---|
| BCR-ABL fusion (Philadelphia chromosome) | Constitutively active tyrosine kinase → downstream RAS/MAPK and PI3K/AKT signaling | CML, a subset of B-cell ALL |
| JAK2 V617F | Constitutive JAK-STAT signaling | Polycythemia vera (most common) > essential thrombocythemia > primary myelofibrosis |
| CALR / MPL mutations | Alternative JAK-STAT drivers with a normal EPO level | Essential thrombocythemia, primary myelofibrosis (JAK2-negative cases) |
| FLT3-ITD/TKD | Increased tyrosine kinase activity → MAPK/PI3K signaling | AML |
| KIT D816V | Constitutive c-Kit tyrosine kinase activity → mast cell proliferation | Systemic mastocytosis |
Chromosomal Translocations Worth Memorizing
| Translocation | Malignancy | Gene Effect |
|---|---|---|
| t(8;14) | Burkitt lymphoma | c-myc overexpression |
| t(11;14) | Mantle cell lymphoma | Cyclin D1 overexpression |
| t(14;18) | Follicular lymphoma | BCL-2 overexpression (blocks apoptosis) |
| t(15;17) | Acute promyelocytic leukemia | PML-RARα fusion; responds to all-trans retinoic acid |
| t(9;22) | CML (defining); occasionally B-cell ALL | BCR-ABL fusion — the Philadelphia chromosome |
💉 Cancer Chemotherapy Pharmacology
PharmacologySeveral agents below are matched to a specific hematologic malignancy by mechanism — all-trans retinoic acid for the PML-RARα fusion in acute promyelocytic leukemia, imatinib for the BCR-ABL fusion in CML — both explained in Leukemia.
Organizing Principle: Cell-Cycle Specificity
- Cell cycle–specific drugs only kill actively dividing cells at a particular phase (e.g., antimetabolites act in S phase; microtubule agents act in M phase) — most effective against rapidly dividing tumors
- Cell cycle–nonspecific drugs (alkylating agents, platinum compounds, nitrosoureas) damage DNA regardless of cycle phase — useful even against slowly dividing tumors
- Nearly every cytotoxic agent shares a core toxicity profile: myelosuppression, GI mucosal injury (nausea, vomiting, mouth sores), and hair loss — because these are the body's fastest-dividing normal tissues
Antimetabolites (mostly S-phase specific)
| Drug | Mechanism | Clinical Use | Notable Toxicity |
|---|---|---|---|
| Methotrexate | Competitively inhibits dihydrofolate reductase → ↓ thymidine synthesis | ALL, lymphomas, choriocarcinoma; also rheumatoid arthritis, psoriasis, ectopic pregnancy | Myelosuppression (reversible with leucovorin rescue), mucositis, hepatotoxicity, pulmonary fibrosis |
| 5-Fluorouracil | Blocks thymidylate synthase → ↓ thymidine synthesis | Colorectal and pancreatic cancer; topical for actinic keratosis/basal cell carcinoma | Myelosuppression, hand-foot syndrome |
| Cytarabine | Pyrimidine analog that terminates DNA chain elongation | Acute leukemias, lymphomas | Myelosuppression |
| Azathioprine / 6-mercaptopurine | Purine analogs → ↓ de novo purine synthesis | ALL, autoimmune disease, transplant rejection prophylaxis | Myelosuppression, hepatotoxicity; toxicity increases sharply if combined with allopurinol (shared metabolic pathway) |
| Cladribine / Pentostatin | Purine nucleoside analogs that disrupt DNA synthesis | Hairy cell leukemia | Myelosuppression |
| Hydroxyurea | Inhibits ribonucleotide reductase → ↓ DNA synthesis | Myeloproliferative disorders, sickle cell disease (raises fetal hemoglobin) | Severe myelosuppression, megaloblastic anemia |
Leucovorin rescue works for methotrexate because it bypasses the exact enzyme methotrexate blocks (dihydrofolate reductase) — it doesn't generalize to the purine analogs or cytarabine, which disrupt DNA synthesis by a different route.
Alkylating Agents & Platinum Compounds (cell cycle-nonspecific)
| Drug | Mechanism | Clinical Use | Notable Toxicity |
|---|---|---|---|
| Cyclophosphamide / Ifosfamide | Cross-link DNA after liver bioactivation | Solid tumors, lymphomas, autoimmune disease | Hemorrhagic cystitis (prevented with mesna), myelosuppression |
| Busulfan | Cross-links DNA | Marrow ablation before bone marrow transplant | Severe myelosuppression, pulmonary fibrosis |
| Nitrosoureas (carmustine, lomustine) | Cross-link DNA; lipophilic enough to cross the blood-brain barrier | Brain tumors | CNS toxicity |
| Platinum agents (cisplatin, carboplatin, oxaliplatin) | Cross-link DNA | Broad range of solid tumors | Nephrotoxicity, peripheral neuropathy, ototoxicity |
Because these agents damage DNA directly rather than blocking a specific synthesis step, they don't need actively dividing cells to work — that's what makes them effective against slow-growing tumors, unlike the S-phase-dependent antimetabolites above.
Antitumor Antibiotics & Topoisomerase/Microtubule Agents
| Drug | Mechanism | Clinical Use | Notable Toxicity |
|---|---|---|---|
| Bleomycin | Generates free radicals → DNA strand breaks | Testicular cancer, Hodgkin lymphoma | Pulmonary fibrosis |
| Anthracyclines (doxorubicin, daunorubicin) | Intercalate DNA, generate free radicals, inhibit topoisomerase II | Broad use across solid tumors, leukemias, lymphomas | Dilated cardiomyopathy (often irreversible; limited with dexrazoxane) |
| Etoposide / Teniposide | Inhibit topoisomerase II | Testicular and small cell lung cancer, leukemias | Myelosuppression, hair loss |
| Irinotecan / Topotecan | Inhibit topoisomerase I | Colon, ovarian, small cell lung cancer | Severe myelosuppression, diarrhea |
| Taxanes (paclitaxel, docetaxel) | Stabilize microtubules, blocking mitotic spindle breakdown | Breast and ovarian cancer | Myelosuppression, peripheral neuropathy, hypersensitivity reactions |
| Vinca alkaloids (vincristine, vinblastine) | Bind tubulin, preventing mitotic spindle formation | Solid tumors, leukemias, lymphomas | Vincristine → peripheral neuropathy, constipation; vinblastine → myelosuppression |
Hormonal Therapy — Tamoxifen
- Selective estrogen receptor modulator with tissue-specific behavior: blocks estrogen receptors in breast tissue (antagonist) while partially activating them in the endometrium and bone (agonist)
- Clinical use: prevention and treatment of estrogen-receptor-positive breast cancer
- Notable toxicity: hot flashes, thromboembolic events, and an increased risk of endometrial cancer from its partial-agonist effect on the uterine lining
Antibody-Drug Conjugates
- A cytotoxic chemotherapy payload is chemically linked to a monoclonal antibody directed against a tumor-specific surface antigen
- The antibody delivers the drug selectively into tumor cells via receptor-mediated endocytosis, sparing healthy tissue — higher efficacy with less systemic toxicity than the free drug alone
- Example: ado-trastuzumab emtansine, which pairs anti-HER2 targeting with a microtubule-disrupting payload for HER2-positive breast cancer
Targeted Therapy — Monoclonal Antibodies
| Agent | Target | Clinical Use |
|---|---|---|
| Rituximab | CD20 on B cells | Non-Hodgkin lymphoma, CLL, several autoimmune diseases |
| Trastuzumab | HER2 | HER2-positive breast and gastric cancer (watch for cardiotoxicity) |
| Bevacizumab | VEGF | Colorectal, renal cell, and lung cancer — inhibits new blood vessel formation feeding the tumor |
| Cetuximab | EGFR | Metastatic colorectal and head/neck cancer |
| Alemtuzumab | CD52 | CLL |
| Checkpoint inhibitors (pembrolizumab/nivolumab → PD-1; atezolizumab → PD-L1; ipilimumab → CTLA-4) | Immune checkpoint proteins | Melanoma, non-small cell lung cancer, renal cell carcinoma, and others — release the "brakes" on the immune system, raising the risk of autoimmune-type side effects (dermatitis, colitis, hepatitis, pneumonitis, endocrine dysfunction) |
Checkpoint inhibitors work by an opposite logic from every other antibody in this table — instead of tagging a tumor antigen for destruction, they release the patient's own T cells from inhibition, which is exactly why their toxicity profile is autoimmune rather than the myelosuppression typical of cytotoxic therapy.
Targeted Therapy — Small-Molecule Inhibitors
| Agent | Target | Clinical Use |
|---|---|---|
| Imatinib (and dasatinib, nilotinib) | BCR-ABL tyrosine kinase | CML, Philadelphia-chromosome-positive ALL, GI stromal tumors |
| Ruxolitinib | JAK1/2 | Polycythemia vera, myelofibrosis |
| Vemurafenib (and related -rafenib drugs) | BRAF | Melanoma |
| Palbociclib | Cyclin-dependent kinase 4/6 | Breast cancer |
| Olaparib | PARP (blocks DNA repair) | BRCA-mutated breast, ovarian, and other cancers |
| Bortezomib | Proteasome | Multiple myeloma, mantle cell lymphoma (watch for peripheral neuropathy and herpes zoster reactivation) |
Supportive Care Around Chemotherapy
| Agent | Purpose |
|---|---|
| Mesna | Binds the toxic metabolite of cyclophosphamide/ifosfamide, preventing hemorrhagic cystitis |
| Dexrazoxane | Iron-chelating cardioprotectant used alongside anthracyclines |
| Leucovorin (folinic acid) | Rescues normal cells from methotrexate toxicity; also potentiates 5-FU |
| Amifostine | Free radical scavenger that limits platinum-related nephrotoxicity |
| Rasburicase / allopurinol | Lower uric acid production/levels to prevent tumor lysis syndrome |
| Filgrastim (G-CSF) | Stimulates neutrophil recovery after chemotherapy-induced neutropenia |
| Epoetin alfa | Recombinant erythropoietin for chemotherapy-related anemia |
| 5-HT₃ antagonists (ondansetron) / NK₁ antagonists (aprepitant) | Antiemetics for acute and delayed chemotherapy-induced nausea, respectively |
Tumor Lysis Syndrome
- ↑ potassium → arrhythmia
- ↑ phosphate → reactive ↓ calcium (calcium-phosphate precipitation) → tetany, seizures
- ↑ uric acid → acute kidney injury from urate crystal deposition
Key Chemotoxicities to Memorize
- Ototoxicity → platinum compounds
- Cardiotoxicity → anthracyclines, trastuzumab
- Pulmonary fibrosis → bleomycin, busulfan
- Hemorrhagic cystitis → cyclophosphamide, ifosfamide
- Peripheral neuropathy → vincristine, taxanes, platinum compounds
- Nephrotoxicity → platinum compounds
🔴 Red Blood Cells
PhysiologyPolycythemia vera, one of the four polycythemia types distinguished later in this section by EPO level, has its JAK2-driven mechanism and treatment covered in full in Chronic Myeloproliferative Neoplasms.
Structure & Function
- Anucleate, no organelles → cytoplasm devoted almost entirely to hemoglobin
- Biconcave disc shape
- Maximizes surface-area-to-volume ratio
- Improves gas diffusion efficiency
- Allows deformation through narrow capillaries
- Membrane skeleton
- Spectrin + ankyrin + band 3 maintain shape and flexibility
- Defects → hereditary spherocytosis, elliptocytosis
- Average circulating lifespan ≈ 120 days
- Energy metabolism
- No mitochondria → glycolysis is the only ATP source
- ~90% glucose → glycolysis
- ~10% glucose → hexose monophosphate (pentose phosphate) shunt
- HMP shunt generates NADPH → maintains reduced glutathione → protects against oxidative stress
- Enzyme deficiencies
- Pyruvate kinase deficiency → impaired ATP production → hemolysis
- G6PD deficiency → impaired NADPH production → oxidative hemolysis
The RBC's total dependence on glycolysis and the HMP shunt (no mitochondria to fall back on) is exactly why enzyme defects in just these two pathways — PK and G6PD — are the main enzymatic causes of intrinsic hemolysis; there's no backup system to compensate.
Blood Group Systems
| Group | Surface Antigen | Plasma Antibody | Clinical Note |
|---|---|---|---|
| A | A | Anti-B | — |
| B | B | Anti-A | — |
| AB | A and B | None | Universal plasma recipient of RBCs |
| O | Neither | Anti-A and Anti-B | Universal RBC donor |
Rh Antigen System
| Rh+ (Rh D antigen present) | Rh– (Rh D antigen absent) | |
|---|---|---|
| Surface antigen | Rh (D) | None |
| Plasma antibody | None | None normally — anti-D IgG only forms after sensitizing exposure to Rh+ blood |
Hemolytic Disease of the Fetus and Newborn
Also called erythroblastosis fetalis. Maternal antibodies cross the placenta and attack fetal/newborn RBCs — but the ABO and Rh forms differ in timing and severity.
| ABO Hemolytic Disease | Rh Hemolytic Disease | |
|---|---|---|
| Setup | Type O mother, type A or B fetus | Rh– mother, Rh+ fetus |
| Mechanism | Mother's pre-existing anti-A/anti-B IgG crosses the placenta and attacks fetal RBCs — no prior sensitizing pregnancy needed | First pregnancy sensitizes the mother (fetal RBCs enter maternal blood, often at delivery) → anti-D IgG forms → crosses the placenta in a later Rh+ pregnancy → fetal hemolysis |
| Timing | Can affect the first pregnancy; typically mild jaundice within 24 hours of birth | First pregnancy usually spared; risk rises with each subsequent Rh+ pregnancy |
| Severity | Usually mild | Can be severe — hydrops fetalis, kernicterus |
| Treatment/prevention | Phototherapy or exchange transfusion if needed | Anti-D immunoglobulin given to Rh– mothers antenatally and after delivery (also after miscarriage, ectopic pregnancy, or trauma) to prevent maternal sensitization |
- Host antibodies attack A/B antigens on transfused RBCs
- Can precipitate hemolysis, acute kidney injury, and shock
ABO antibodies are pre-formed (from gut bacterial exposure) so ABO hemolytic disease can strike the very first pregnancy; anti-D only appears after a sensitizing exposure, so Rh disease almost always spares the first pregnancy and worsens with each Rh+ pregnancy after.
RBC Terminology
- Anisocytosis: variation in RBC size
- Poikilocytosis: variation in RBC shape
Polycythemia — Telling the Types Apart
| Type | Plasma Volume | RBC Mass | EPO Level | Typical Cause |
|---|---|---|---|---|
| Relative | ↓ (contracted) | Unchanged | Unchanged | Dehydration, burns |
| Appropriate absolute | Unchanged | ↑ | ↑ | Chronic hypoxia — lung disease, congenital heart disease, high altitude, sleep apnea |
| Inappropriate absolute | Unchanged | ↑ | ↑ | Ectopic/exogenous EPO — renal cell or hepatocellular carcinoma, blood doping, androgen use |
| Polycythemia vera | ↑ | ↑↑ | ↓ | JAK2-mutated marrow overproduction; EPO is suppressed by negative feedback |
EPO level is the pivot that separates these: high EPO means something outside the marrow is driving RBC production (hypoxia or ectopic secretion), while low EPO in the face of high RBC mass means the marrow is proliferating autonomously and shutting off its own feedback signal — that's polycythemia vera.
Erythropoiesis — Where Blood Cells Are Made
- Infancy/childhood: hematopoiesis occurs in both flat bones (sternum, pelvis, skull, vertebrae) and the long bones of the legs
- Adulthood: hematopoiesis retreats to the flat bones of the axial skeleton only (vertebrae, sternum, ribs, pelvis) — long bone marrow becomes fatty and largely inactive
Abnormal RBC Morphology — Quick Reference
| Morphology | Classically Associated With |
|---|---|
| Spherocytes | Hereditary spherocytosis, warm autoimmune hemolysis |
| Schistocytes (fragments) | Microangiopathic/macroangiopathic hemolysis, mechanical valves |
| Target cells | Thalassemia, liver disease, hemoglobin C disease, asplenia |
| Sickle cells | Sickle cell disease |
| Bite/degmacytes | G6PD deficiency (after Heinz body removal by spleen) |
| Heinz bodies | Precipitated, oxidized hemoglobin clumps inside RBCs; seen in G6PD deficiency before splenic removal produces bite cells |
| Teardrop cells | Myelofibrosis, marrow infiltration |
| Elliptocytes (oval-shaped) | Hereditary elliptocytosis |
| Macro-ovalocytes (large, oval) | Megaloblastic anemia |
| Acanthocytes (spiky, irregular) | Liver disease, abetalipoproteinemia |
| Echinocytes (small, regular spikes) | Uremia, artifact |
| Basophilic stippling | Lead poisoning, thalassemia, sideroblastic states (residual ribosomal precipitates, no iron) |
| Pappenheimer bodies | Sideroblastic anemias — iron-containing granules within RBCs, distinct from basophilic stippling |
| Howell-Jolly bodies | Asplenia/hyposplenism — nuclear remnants normally removed by the spleen |
Heinz bodies and bite cells are the same G6PD process at two timepoints (precipitated hemoglobin, then its splenic removal), while basophilic stippling and Pappenheimer bodies look similar but differ in what's inside — ribosomal remnants versus iron — so don't conflate them just because both show up in sideroblastic/lead-related states.
🧬 Hemoglobin & Heme Synthesis
BiochemistryHemoglobin Composition
- Tetramer of 2 globin chain pairs, each carrying one iron-containing heme group
- Hemoglobin A (adult, majority): 2 alpha + 2 beta chains
- Hemoglobin F (fetal): 2 alpha + 2 gamma chains
- Gamma chains bind 2,3-BPG more weakly → higher O₂ affinity
- Favors oxygen transfer from maternal to fetal circulation across the placenta
- Even earlier in development, the embryo relies on zeta and epsilon globin chains before switching to the alpha/gamma combination that makes up HbF
HbF's higher oxygen affinity comes down to one biochemical difference — gamma chains bind 2,3-BPG more weakly than beta chains — and that single feature is what lets the fetus pull oxygen across the placenta from maternal blood.
Hemoglobin Variants — Quick Reference
| Variant | Chain Composition | Context |
|---|---|---|
| Hemoglobin A | 2 alpha + 2 beta | Normal adult hemoglobin (majority) |
| Hemoglobin A2 | 2 alpha + 2 delta | Small normal adult fraction; rises in beta-thalassemia trait |
| Hemoglobin F | 2 alpha + 2 gamma | Normal fetal hemoglobin; persists/rises in thalassemias and sickle cell disease |
| Hemoglobin S | Beta-chain glutamic acid → valine substitution | Sickle cell disease |
| Hemoglobin C | Beta-chain glutamic acid → lysine substitution | Hemoglobin C disease — crystallizes intracellularly |
| Hemoglobin Bart's | 4 gamma chains | Severe alpha-thalassemia (hydrops fetalis) |
| Hemoglobin H | 4 beta chains | Alpha-thalassemia with 3 gene deletions |
Bart's (4 gamma) and H (4 beta) are mirror-image consequences of the same problem — with too few alpha chains available, whichever partner chain is in excess (gamma in the fetus, beta after birth) forms a useless homotetramer instead of functional hemoglobin.
Hemoglobin Electrophoresis
- Hemoglobin variants are separated by their net charge as they migrate through a gel toward the positive electrode (anode)
- Migration order from slowest to fastest: HbC → HbS → HbF → HbA — because the amino acid substitutions in HbS and HbC (valine and lysine, respectively, replacing glutamic acid) make those variants more positively charged and therefore migrate less toward the anode
- A patient's genotype can be read directly off the banding pattern (e.g., bands at both S and A positions = sickle cell trait; a single band at S with no A = sickle cell disease)
Heme Synthesis Pathway (Simplified Logic)
| Condition | Enzyme Blocked | Distinguishing Features | Management |
|---|---|---|---|
| Acute intermittent porphyria | Porphobilinogen deaminase | Abdominal pain, neuropsychiatric symptoms, dark/port-wine urine; triggered by certain drugs | Glucose and hematin — both help suppress ALA synthase activity |
| Porphyria cutanea tarda | Uroporphyrinogen decarboxylase | Most common porphyria; blistering, photosensitivity, facial hyperpigmentation; linked to hepatitis C, alcohol | Sun avoidance, stop alcohol/tobacco, phlebotomy, low-dose antimalarial therapy |
| Lead poisoning | ALA dehydratase & ferrochelatase | Microcytic anemia, basophilic stippling, abdominal pain, peripheral neuropathy, gum lines, cognitive symptoms in children | Chelation (e.g., EDTA, succimer); dimercaprol added in severe pediatric toxicity |
ALA synthase is the rate-limiting, negatively-feedback-regulated step of the whole pathway — which is exactly why glucose and hematin work for acute intermittent porphyria: both suppress ALA synthase and cut off flux through the already-blocked downstream steps.
Iron Poisoning
| Acute | Chronic | |
|---|---|---|
| Typical setting | Accidental ingestion, classically in young children (iron tablets can resemble candy) | Repeated transfusions (e.g., thalassemia, sickle cell disease) or hereditary hemochromatosis |
| Findings | Abdominal pain, vomiting, GI bleeding, radiopaque tablets on x-ray; severe cases progress to metabolic acidosis and multiorgan failure, with later GI scarring/obstruction | Joint pain, cirrhosis, cardiomyopathy, diabetes, skin bronzing, hypogonadism |
| Mechanism | Free iron catalyzes free-radical formation and lipid peroxidation of cell membranes | |
| Treatment | Chelation (deferoxamine or deferasirox), gastric lavage if early | Chelation, therapeutic phlebotomy when not otherwise contraindicated |
🌳 Hematopoiesis & Blood Cell Lines
AnatomyAplastic anemia — marrow failure that drives neutropenia and lymphopenia below — is covered with its causes and presentation in Normocytic Anemia → Nonhemolytic Causes.
From Stem Cell to Mature Cell
- All blood cells trace back to one bone marrow stem cell population; the myeloid vs. lymphoid split is the first branch point
- Erythroid line matures through the erythroblast → reticulocyte → erythrocyte sequence
- Platelets bud off from megakaryocytes as anucleate cytoplasmic fragments
- Granulocytes (neutrophils, eosinophils, basophils) and monocytes share a common myeloblast/monoblast precursor pool before diverging
The myeloid/lymphoid split is the first and most consequential branch point in hematopoiesis — nearly every leukemia and lymphoma classification downstream (ALL vs. AML, B-cell vs. T-cell neoplasms) ultimately traces back to which lineage the malignant clone arose from.
Granulocytes & Mast Cells — Quick Reference
| Cell | Main Role | Distinguishing Features |
|---|---|---|
| Neutrophil | First responder in acute bacterial infection; phagocytic | Multilobed nucleus; specific granules carry lysozyme and lactoferrin, azurophilic granules carry myeloperoxidase and proteinases; a left shift (rise in immature bands/metamyelocytes) signals a strong marrow response to infection or inflammation; a hypersegmented nucleus (5+ lobes) instead suggests B12/folate deficiency |
| Eosinophil | Defense against parasitic/helminthic infection; modulates allergic reactions | Bilobed nucleus, large orange-red granules; elevated in parasitic disease, allergy/atopy, adrenal insufficiency, myeloproliferative disorders, certain neoplasms (e.g., Hodgkin lymphoma), and eosinophilic granulomatosis with polyangiitis |
| Basophil | Mediates systemic allergic responses | Densely basophilic granules containing heparin and histamine; rare in circulation, and persistently elevated counts raise concern for a myeloproliferative process (especially CML) |
| Mast cell | Mediates local tissue allergic/anaphylactic responses | Tissue-resident relative of the basophil; degranulates when surface-bound IgE is cross-linked by antigen (or directly by triggers like vancomycin, opioids, and radiocontrast dye), releasing histamine and other mediators |
Leukopenias
| Cell Type | Threshold | Common Causes |
|---|---|---|
| Neutropenia | Absolute neutrophil count < 1500/mm³ (severe infection risk rises sharply below 500/mm³) | Sepsis/post-infection, chemotherapy and other drugs, aplastic anemia, autoimmune disease (e.g., SLE), radiation, congenital disorders |
| Lymphopenia | Absolute lymphocyte count < 1500/mm³ (< 3000/mm³ in children) | HIV, DiGeorge syndrome, SCID, SLE, glucocorticoids, radiation, sepsis, postoperative state |
| Eosinopenia | Absolute eosinophil count < 30/mm³ | Cushing syndrome, glucocorticoids |
Monocyte-Derived Cells
| Cell | Main Role | Notes |
|---|---|---|
| Monocyte | Circulates in blood before entering tissue | Kidney-shaped nucleus; matures into a macrophage or dendritic cell once it leaves the vasculature |
| Macrophage | Phagocytoses debris, senescent cells, and pathogens; presents antigen | Tissue-specific names include Kupffer cells (liver), osteoclasts (bone), and microglia (brain); central to granuloma formation |
| Dendritic cell | Most efficient antigen-presenting cell; bridges innate and adaptive immunity | High surface MHC class II expression; activates naive T cells |
Monocyte, macrophage, and dendritic cell are the same lineage at different stages/locations, not three separate cell types — the tissue-specific names (Kupffer cell, osteoclast, microglia) describe where a macrophage settled, not a different origin.
Lymphoid Cells
| Cell | Surface Markers | Main Role | Notes |
|---|---|---|---|
| B lymphocyte | CD19, CD20, CD21 | Humoral immunity | Matures in bone marrow; differentiates into antibody-secreting plasma cells and memory cells after antigen exposure |
| Helper T cell | CD3, CD4, CD28 | Coordinates immune response via cytokine release | Recognizes antigen on MHC class II; primary target of HIV |
| Cytotoxic T cell | CD3, CD8 | Kills virally infected or abnormal cells | Recognizes antigen on MHC class I |
| Natural killer cell | CD16, CD56 | Innate immunity against virally infected and malignant cells | Kills targets that have downregulated MHC class I, without needing prior antigen exposure |
| Plasma cell | — | Terminal B-cell product; mass-produces antibody | Eccentric "clock-face" nucleus, abundant rough ER; resides in bone marrow rather than circulating |
⭐ High-Yield Clinical Pearls
Review- Haptoglobin falls in intravascular hemolysis (binds free Hb for clearance)
- Unconjugated bilirubin rises predominantly in extravascular hemolysis
- Reticulocyte count rises whenever the marrow compensates appropriately for hemolysis or blood loss
- Iron studies are the fastest way to separate iron deficiency from anemia of chronic disease
- A positive direct Coombs test implicates antibody-mediated (immune) hemolysis
- Elevated D-dimer with falling fibrinogen and schistocytes strongly suggests DIC
- Isolated PTT elevation with normal PT points toward the intrinsic pathway (hemophilias, vWD)
- Isolated PT elevation points toward early vitamin K deficiency or liver synthetic dysfunction