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Strategies to reduce hemostatic activation during cardiopulmonary bypass
Michael J Eisses1, Tomas Velan, Gabriel S Aldea
1Department of Anesthesiology, Children's Hospital and Regional Medical Center, University of Washington, Seattle, USA.
Insights
A modified cardiopulmonary bypass (CPB) protocol significantly reduced systemic hemostatic activation. This new protocol normalizes thrombin generation and suppresses excessive fibrin degradation during cardiac surgery.
Area of Science:
- Cardiovascular Surgery
- Hemostasis and Thrombosis
- Biomedical Engineering
Background:
- Cardiopulmonary bypass (CPB) is associated with significant systemic hemostatic activation.
- Standard CPB protocols can lead to excessive thrombin and plasmin generation, and increased fibrin degradation.
Purpose of the Study:
- To evaluate a modified CPB protocol designed to reduce systemic hemostatic activation.
- To compare the hemostatic effects of standard versus modified CPB protocols.
Main Methods:
- In vivo hemostatic factor generation rates (thrombin, fibrin, plasmin, D-dimer) were measured.
- A computer model of cardiovascular and hemostatic systems was used for analysis.
- Standard CPB (uncoated circuits, standard heparin, direct reinfusion) was compared to modified CPB (heparin-coated circuits, washed reinfusion, lower heparin, epsilon-amino-caproic acid).
Main Results:
- Standard CPB increased thrombin generation 9-fold, plasmin 11-fold, and fibrin/D-dimer 19-fold.
- Modified CPB maintained thrombin generation at surgical levels and suppressed fibrin degradation.
- Fibrin degradation was significantly reduced in the modified CPB group (4% vs. 34% of formed fibrin, p<0.0001).
Conclusions:
- A modified CPB protocol effectively reduces excessive thrombin generation and fibrinolysis.
- This modified approach helps restore hemostatic regulation closer to normal during CPB.
- The findings suggest a potential for improved patient outcomes with modified CPB protocols.
Introduction:
We evaluated whether a modified protocol for cardiopulmonary bypass (CPB) could reduced the systemic hemostatic activation associated with this procedure.
Materials And Methods:
The in vivo rates of thrombin, fibrin, plasmin and D-dimer generation were determined in each subject during CPB using measured levels of hemostatic factors combined with a computer model of the cardiovascular and hemostatic systems. A standard CPB group using uncoated circuits, standard heparin levels and direct shed blood reinfusion (n=9) was compared to a modified CPB group using heparin-coated circuits, shed blood collection, washing and reinfusion post-operatively, lower heparin levels and epsilon-amino-caproic acid (n=10).
Results And Conclusions:
Standard CPB increased average thrombin generation 9-fold, decreased fibrin generation 2-fold, increased plasmin generation 11-fold and increased fibrin degradation and D-dimer generation 19-fold. During CPB in the modified group thrombin generation was not increased beyond surgical levels, lower heparin concentrations allowed each thrombin to make more fibrin prior to inhibition, while fibrin degradation was suppressed by epsilon-amino-caproic acid. At baseline for every 100 fibrins formed only 1-2 were degraded to D-dimer. During standard CPB for every 100 fibrins generated on average 34 fibrins were degraded with some subjects showing a net fibrin loss. In contrast, in the modified CPB group for every 100 fibrins formed only 4 fibrins were degraded (p<0.0001 vs. standard group). Kinetic modeling of hemostasis in individual patients showed that a modified CPB protocol could reduce excessive thrombin generation during CPB and suppress fibrin degradation moving hemostatic regulation back towards normal.
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