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Published on: May 28, 2019
Balloon Deflation Strategy during Primary Percutaneous Coronary Intervention in Acute ST-Segment Elevation Myocardial
Jun Gu1, Yang Zhuo1, Tian-Jiao Liu1
1Department of Cardiology, Shanghai Ninth People's Hospital, Shanghai Jiaotong University School of Medicine, Shanghai, China.
Insights
Slow balloon deflation during primary percutaneous coronary intervention (PCI) for ST-segment elevation myocardial infarction (STEMI) improves coronary flow and reduces infarct size. This technique enhances outcomes by optimizing hemodynamics during stent deployment.
Area of Science:
- Cardiovascular Medicine
- Interventional Cardiology
- Biomedical Engineering
Background:
- Primary percutaneous coronary intervention (PCI) is the standard reperfusion therapy for ST-segment elevation myocardial infarction (STEMI).
- The no-reflow phenomenon complicates PCI, leading to adverse clinical outcomes.
- Optimizing procedural techniques during PCI is crucial for improving patient results.
Purpose of the Study:
- To compare the effects of rapid versus slow balloon deflation during primary PCI on coronary flow and cardiovascular events in STEMI patients.
- To investigate the influence of balloon deflation velocity on transient hemodynamic changes using in vitro experiments and computer modeling.
Main Methods:
- A randomized trial involving 211 STEMI patients assigned to rapid or slow balloon deflation during stent deployment.
- Assessment of coronary flow using corrected TIMI frame count (cTFC) as the primary endpoint.
- Evaluation of myocardial infarct size and transient hemodynamic changes via in vitro experiments and computational fluid dynamics.
Main Results:
- Slow balloon deflation resulted in significantly lower corrected TIMI frame count (cTFC) compared to rapid deflation.
- Patients in the slow deflation group exhibited a smaller myocardial infarct size.
- In vitro and computational models showed rapid deflation caused accelerated flow and increased wall shear stress (WSS) in the balloon-vessel gap.
Conclusions:
- Slow balloon deflation during stent implantation in primary PCI for STEMI improves coronary flow and reduces infarct size.
- Altered flow dynamics and wall shear stress (WSS) in the balloon-vessel gap due to deflation velocity may explain these beneficial effects.
Background:
Primary percutaneous coronary intervention (PCI) is the best available reperfusion strategy in patients with acute ST-segment elevation myocardial infarction (STEMI). However, PCI is associated with a serious problem known as no-reflow phenomenon, resulting in poor clinical and functional outcomes. This study aimed to compare the influences of different balloon deflation velocity on coronary flow and cardiovascular events during primary PCI in STEM as well as transient hemodynamic changes in in vitro experiments. Method and Results. 211 STEMI patients were randomly assigned to either a rapid or a slow balloon deflation group during stent deployment. The primary end point was coronary flow at the end of PCI procedure, and secondary end points included myocardial infarct size. Transient hemodynamic changes were evaluated through an in vitro experimental apparatus and a computer model. In clinical practice, the level of corrected TIMI frame count (cTFC) in slow balloon deflation after primary PCI was significantly lower than that of rapid balloon deflation, which was associated with smaller infarct size. Numerical simulations revealed that the rapid deflation led to a sharp acceleration of flow in the balloon-vessel gap and a concomitant abnormal rise in wall shear stress (WSS).
Conclusion:
This randomized study demonstrated that the slow balloon deflation during stent implantation improved coronary flow and reduced infarct size in reperfused STEMI. The change of flow in the balloon-vessel gap and WSS resulted from different balloon deflation velocity might be partly accounted for this results.
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