Canonical Question
Haemostasis, Coagulation, Fibrinolysis
Master answer
Haemostasis Pathway
- collective term for the mechanisms that stop blood loss
- balance of pro-coagulant + anticoagulant systems
- procoagulants system: promotes coagulation → bioamplification system involving activation of clotting cascade
- anticoagulant system → regulates or inhibits coagulation
3 main components involved in haemostasis (Virchows triad)
- platelets
- endothelium
- when damaged → rapidly initiates haemostatic response
- normal function = prevent haemostasis + promote blood flow
- inhibition of platelet adhesion:
- NO + prostacyclin (PGI2)
- production of adenosine diphosphate (degrades ADP)
- anticoagulant effects:
- due to 2 endothelial membrane bound proteins:
- heparin sulphate (activates ATIII → inactivates thrombin + FXa)
- thrombomodulin: directly binds thrombin + activates protein C (inactivates FVa + VIIIa)
- Fibrinolytic effects
- Secretes tissue plasminogen activator (t-PA) → cleaves proenzyme plasminogen → form plasmin → degrades fibrin clots from endothelial cell surface (fibrinolysis)
- inhibition of platelet adhesion:
- coagulation proteins
Steps involved in haemostasis
Initiation of haemostasis.
Damaged vessel → plasma exposed to:
- Von willebrand factor (vWF): binds platelets to sub-endothelial collagen fibres
- Collagen fibres: platelets bind to collagen + become activated
- Tissue factor (TF): activates plasma coagulation proteins through extrinsic pathway → thrombin
Clot formation
3 key steps:
- Vasoconstriction
- ↓ blood flow → ↓ platelet plug washed away + ↓ blood loss
- Platelet aggregation
- Adhesion: vessel damage exposes TF, collagen, vWF → platelet GPIb-V-IX binds to subendothelial collagen via vWF
- Activation: metabolic process; adhesion triggers GPIb/IIIa activation → irreversible binding to matrix ligands; change shape + activation. Activation results in:
- Exocytosis of granules: contain: 5-HT, TXA2, ADP, PAF, vWF, fibrinogen, thrombin, Ca2+, PDGF
- Dense granules: release ADP, adrenaline, 5-HT → reinforce platelet activation
- α granules: release fibrinogen, β thromboglobulin, PAF-4, FV, vWF, PDGF, thrombospondin → mediate + reinforce platelet aggregation + adhesion
- Activation of phospholipase A2 to form TXA2
- Deformation from disc to sphere with long projections
- Promotion of coagulation cascade
- Platelet contraction (with clot contraction)
- Exocytosis of granules: contain: 5-HT, TXA2, ADP, PAF, vWF, fibrinogen, thrombin, Ca2+, PDGF
- Aggregation: activated GPIIb/IIIa mediated aggregation via fibrinogen + vWF
- Haemostatic plug: plug of degranulated platelets, fibrin mesh, leukocytes, entrapped RBCs
- Coagulation
- coagulation cascade = biological amplification system involving plasma proteins → formation of thrombin
- Classical model: intrinsic + extrinsic → common pathway
- reflects in vitro lab tests but not in vivo haemostasis
- Exrinsic pathway: activated by TF → FVII → FIIa → activates FX → start of common pathway
- Intrinsic pathway: activated by contact with -vely charged substances e.g. subendothelial collagen
- Final common pathway: FXa → converts prothrombin (FII) to thrombin (FIIa) → thrombin
- New model: cell based
- Better represents in vivo mechanism of coagulation
- Initiation phase: coagulation triggered by vessel damage → exposes plasma to TF → FV + FVII activated → activate other nearby clotting factors → formation of thrombin
- Amplification: further activation of clotting factors + platelets
- Propagation: occurs on surface of activated platelet → catalyses formation of thrombin+++
- Thrombin:
- acts on fibrinogen mesh within platelet plug → hydrolyses soluble fibrinogen → produce insoluble fibrin strands
- Activation of FXIII: forms covalent crossbridges between fibrin strands in platelet plug → stable clot
- +ve feedback loop: activates FV + FVIII → feed into cascade to produce more thrombin
- activation of protein C by thrombin-thrombomodulin complex: inhibitor of coagulation → deactivates FVa and VIIIa
Fibrinolysis
- Physiological mechanism in which the fibrin within blood clots is slowly dissolved
- Normal part of wound healing + important mechanism to keep small vessels patent
- Key points:
- Plasminogen is a b-globulin (proenzyme synthesised by the liver) → becomes interwoven into the fibrin clot as it is formed → converted to plasmin (serum protease)
- Main physiological activator of plasminogen is t-PA, expressed by endothelial cells – helps to keep the endothelial cell surface free of fibrin deposits
- Fibrin cleaved by plasmin → produces fibrin degradation products (FDPs)
- One of the FDPs is the d-dimer – cleavage product of cross-linked fibrin

- Fibrinolysis pathway can be manipulated:
- Thrombolysis eg streptokinase promotes conversion of plasminogen to plasmin → ↑ fibrinolysis
- Inhibition of fibrinolysis: eg tranexamic acid inhibits activation of plasminogen
Kerr / Bianca 2016
Mechanism of action of Thrombolytics
“Thrombolytic agent” → drug that enhance body’s fibrinolytic system by acting on
plasminogen activators, which ↑ conversion of plasminogen into plasmin
- Streptokinase
- Binds non-covalently to plasminogen to form a “streptokinaseplasminogen activator complex” → ↑ conversion of plasminogen to plasmin → ↑ fibrinolysis
- It is NOT fibrin-specific → causes systemic fibrinolysis
- Urokinase:
- similar to streptokinase
- Alteplase (rt-PA):
- Glycoprotein that is activated when bound to fibrin (clot) only → then selectively converts fibrin-bound plasminogen to plasmin to cause fibrinolysis
- It is fibrin-specific → causes less systemic fibrinolysis (cf. streptokinase)
Kerr / Bianca 2016
Exam appearances
| Exam | Exact wording | Relationship | Success |
|---|---|---|---|
| 2010A Q03 | Outline the major clotting factors and steps in the haemostasis pathway (70% marks). Outline the mechanism of action of thrombolytics (30% marks). | historical_member | — |