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A Porcine Model of Acute Autologous Pulmonary Embolism
Published on: September 6, 2024
Generation, detection and prevention of gaseous microemboli during cardiopulmonary bypass procedure
Song Lou1, Bingyang Ji, Jinping Liu
1Department of Cardiopulmonary Bypass, Cardiovascular Institute & Fuwai Heart Hospital, PUMC & CAMS, Beijing, People's Republic of China.
Insights
Gaseous microemboli (GME) are a major cause of brain injury after cardiopulmonary bypass (CPB). Improved equipment and techniques have reduced GME, but awareness and further research are crucial to eliminate air bubbles during CPB.
Area of Science:
- Cardiovascular Surgery
- Neurology
- Biomedical Engineering
Background:
- Neuropsychological injury is a significant complication of cardiopulmonary bypass (CPB).
- Gaseous microemboli (GME) are strongly implicated as a primary cause of this injury.
- Sources of GME include surgical manipulation and extracorporeal circuit components.
Purpose of the Study:
- To review the causes and effects of GME during CPB.
- To highlight the role of Transcranial Doppler (TCD) in monitoring GME.
- To emphasize the need for improved techniques and equipment to reduce GME.
Main Methods:
- Review of literature on GME in CPB.
- Discussion of Transcranial Doppler (TCD) and Emboli Detection and Classification (EDAC) Quantifier applications.
- Analysis of GME sources and their impact on cerebral perfusion.
Main Results:
- GME can cause cerebral vascular endothelium damage, blood-brain barrier disruption, and inflammatory responses.
- TCD and EDAC Quantifier are effective tools for monitoring GME during CPB.
- Improvements in perfusion equipment and techniques have reduced GME occurrence.
Conclusions:
- While GME reduction strategies have been successful, vigilance is required.
- Further research into circuit component design and clinical practices is needed to eliminate GME.
- All personnel involved in CPB must be aware of GME risks and regulate clinical behavior.
Abstract:
Neuropsychological injury after cardiopulmonary bypass (CPB) is one of the most serious and costly complications arising from the procedure. Gaseous microemboli (GME) have long been implicated as one of the principal causes. There are two major sources of GME: surgical and manual manipulation of the heart and arteries; and the components of the extracorporeal circuit, including the type of pump, different perfusion modes, the design of the oxygenator and reservoir, and the use of vacuum assisted venous drainage (VAVD), all of which have a great impact on the delivery of existing GME to the patients. Transcranial cranial Doppler (TCD) has been used for more than two decades to assess and monitor the quality of extracorporeal perfusion with regard to the blood flow velocity of the middle cerebral arteries (MCA) and emboli detection, contributing to the achievement of better perfusion results. The Emboli Detection and Classification (EDAC) Quantifier has been able to detect and track microemboli in CPB circuits up to 1,000 microemboli per second at flow rates ranging from 0.2 L/min to 6.0 L/min. The deleterious effects of GME are multiple, including damage to the cerebral vascular endothelium, disruption of the blood-brain barrier, complement activation, leukocyte aggregation, increased platelet adherence, and fibrin deposition in the micro-vasculature. Improvements in perfusion equipment and in perfusion and surgical techniques have led to a dramatic reduction in the occurrence of GME during cardiac surgery. Although the clinical relevance of cerebral air embolization in causing neurological damage is unclear, every single person involved in perfusion and surgical technology should be aware of the risk of embolization and strictly regulate clinical behavior. Related research should also be done to improve the design of circuit components and clinical practice with a view to eliminating air bubbles during CPB procedure.
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