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舒张期二尖瓣功能与左心室血流之间的协同作用有助于收缩期瓣膜关闭和血液输送。

Synergy between Diastolic Mitral Valve Function and Left Ventricular Flow Aids in Valve Closure and Blood Transport during Systole.

机构信息

Department of Biomedical Engineering, The University of Iowa, Iowa City, IA, USA.

Division of Cardiovascular Medicine, Department of Internal Medicine, The University of Texas McGovern Medical School, Houston, TX, USA.

出版信息

Sci Rep. 2018 Apr 18;8(1):6187. doi: 10.1038/s41598-018-24469-x.

Abstract

Highly resolved three-dimensional (3D) fluid structure interaction (FSI) simulation using patient-specific echocardiographic data can be a powerful tool for accurately and thoroughly elucidating the biomechanics of mitral valve (MV) function and left ventricular (LV) fluid dynamics. We developed and validated a strongly coupled FSI algorithm to fully characterize the LV flow field during diastolic MV opening under physiologic conditions. Our model revealed that distinct MV deformation and LV flow patterns developed during different diastolic stages. A vortex ring that strongly depended on MV deformation formed during early diastole. At peak E wave, the MV fully opened, with a local Reynolds number of ~5500, indicating that the flow was in the laminar-turbulent transitional regime. Our results  showed that during diastasis, the vortex structures caused the MV leaflets to converge, thus increasing mitral jet's velocity. The vortex ring became asymmetrical, with the vortex structures on the anterior side being larger than on the posterior side. During the late diastolic stages, the flow structures advected toward the LV outflow tract, enhancing fluid transport to the aorta. This 3D-FSI study demonstrated the importance of leaflet dynamics, their effect on the vortex ring, and their influence on MV function and fluid transport within the LV during diastole.

摘要

使用特定于患者的超声心动图数据进行高分辨率的三维(3D)流固耦合(FSI)模拟,可以成为准确而全面阐明二尖瓣(MV)功能和左心室(LV)流体动力学的有力工具。我们开发并验证了一种强耦合的 FSI 算法,以充分描述生理条件下舒张期 MV 开放期间的 LV 流场。我们的模型揭示了不同舒张阶段期间 MV 变形和 LV 流模式的独特发展。在早期舒张期形成了强烈依赖 MV 变形的涡环。在 E 波峰值时,MV 完全打开,局部雷诺数约为 5500,表明流动处于层流-湍流过渡区。我们的结果表明,在舒张期,涡旋结构导致 MV 瓣叶收敛,从而增加了二尖瓣射流的速度。涡环变得不对称,前侧的涡旋结构比后侧的大。在舒张晚期,流结构向 LV 流出道迁移,增强了向主动脉的流体输送。这项 3D-FSI 研究表明了瓣叶动力学的重要性,它们对涡环的影响,以及它们对舒张期 MV 功能和 LV 内流体输送的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d095/5906696/c20dd0f32477/41598_2018_24469_Fig1_HTML.jpg

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