Amerikanische Gesellschaft für Hirudotherapie

Anticoagulation and anticoagulation reversal with cardiac surgery involving cardiopulmonary bypass: an update.

Review published in Journal of cardiothoracic and vascular anesthesia (1999)

Zuletzt aktualisiert: 18. Juni 2026Geprüft von: ASH Editorial Board
Forschungsartikel – EvidenzreviewArtikelreferenz
Evidence: Narrative reviewArzneimittelentwicklungSpeichel-PharmakologieDespotis et al. · Journal of cardiothoracic and vascular anesthesia, 1999

Abstract

Accelerated thrombin generation is central to the development of hemostatic abnormalities during cardiopulmonary bypass (CPB) that are associated with both thromboembolic complications and serious, abnormal bleeding. Thrombin not only converts fibrinogen to fibrin, but also activates platelets and coagulation factors V, VIII, and XI and causes release of von Willebrand factor from vascular endothelium. Thrombin can also downregulate the hemostatic system by inducing formation of platelet inhibitory agents, such as nitric oxide and prostacyclin, and release of tissue plasminogen activator, facilitating activation of protein C, and releasing tissue factor pathway inhibitor. Excessive thrombin activity may also result in substantial consumption of platelets, fibrinogen, and labile coagulation factors and abnormal bleeding. Elevated tissue plasminogen activator levels secondary to activation of the contact system and surgery catalyze the formation of plasmin, which also consumes or internalizes platelet glycoprotein receptors and coagulation factors V, VIII, and fibrinogen. Heparin can reduce the generation of and mediate neutralization of excessive and CPB-associated thrombin activity. Heparin anticoagulation is commonly monitored with the activated clotting time (ACT). However, the ACT may be prolonged by factors other than heparin during CPB, such as hemodilution and hypothermia, and therefore may not accurately reflect the extent of anticoagulation by heparin. Aprotinin, a nonspecific serine protease inhibitor used with CPB, can also prolong celite-based ACT values, rendering it less reliable for monitoring heparin anticoagulation. Therefore, several alternative anticoagulation strategies have been recommended when aprotinin is used, such as a higher celite ACT trigger (>750 seconds), monitoring of whole blood heparin concentrations (eg, >2.7 U/mL), or administration of heparin based on a CPB duration-dependent, fixed-dose regimen. Administration of heparin doses higher than those generally recommended, as guided by predetermined, patient-specific whole blood heparin concentration measurements during bypass, can reduce excessive thrombin-mediated consumption of platelets and coagulation factors as well as post-CPB blood loss and blood component transfusions. New modalities of improving suppression of excess thrombin generation during CPB include use of heparin-bonded CPB circuits, heparin cofactor II or related analogs, supplemental antithrombin III, direct thrombin inhibitors (eg, hirudin, argatroban), and inhibitors of the contact and tissue factor pathways. The safety and efficacy of these approaches remains to be established by additional, appropriately powered, prospective studies.

Abstract sourced from PubMed (NCBI) for the cited record. See the original publication for the authoritative version.

Publication typeJournal ArticleReview
Indexed MeSH termsAnticoagulantsBlood Coagulation TestsCardiac Surgical ProceduresCardiopulmonary BypassDrug MonitoringHeparinHeparin AntagonistsHumans

Zusammenfassung

Accelerated thrombin generation is central to the development of hemostatic abnormalities during cardiopulmonary bypass (CPB) that are associated with both thromboembolic complications and serious, abnormal bleeding. Thrombin not only converts fibrinogen to fibrin, but also activates platelets and...

Warum dies für die Hirudotherapie relevant ist

Dieses Review untersucht das Antikoagulationsmanagement während herzchirurgischer Eingriffe mit kardiopulmonalem Bypass, mit Fokus auf die Rolle von Heparin, das Monitoring mittels aktivierter Gerinnungszeit sowie die Herausforderungen durch Substanzen wie Aprotinin. Unter verschiedenen Strategien zur Verbesserung der Thrombinsuppression erwähnen die Autoren direkte Thrombininhibitoren einschließlich Hirudin und Argatroban als potenzielle Modalitäten, neben heparinbeschichteten Schlauchsystemen, Antithrombin-III-Supplementation und Kontakt-/Gewebefaktor-Signalweg-Inhibitoren. Für ASH erscheint Hirudin nur als ein Punkt in einer Liste potenzieller Alternativen für die chirurgische Antikoagulation; das Abstract liefert keine Daten zu dessen Leistung, Sicherheit oder Outcomes in diesem Setting. Das Review befasst sich nicht mit Hirudotherapie oder der Anwendung lebender Blutegel. Die Verbindung zum Gebiet der ASH ist minimal und ausschließlich pharmakologisch.

Zitation

Anticoagulation and anticoagulation reversal with cardiac surgery involving cardiopulmonary bypass: an update.

Despotis et al. · Journal of cardiothoracic and vascular anesthesia, 1999

Verwandter klinischer Kontext

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