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Scroll wave dynamics in a three-dimensional cardiac tissue model: roles of restitution thickness and fiber rotation.

机译:三维心脏组织模型中的涡旋波动力学:恢复厚度和纤维旋转的作用。

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摘要

Scroll wave (vortex) breakup is hypothesized to underlie ventricular fibrillation, the leading cause of sudden cardiac death. We simulated scroll wave behaviors in a three-dimensional cardiac tissue model, using phase I of the Luo-Rudy (LR1) action potential model. The effects of action potential duration (APD) restitution, tissue thickness, filament twist, and fiber rotation were studied. We found that APD restitution is the major determinant of scroll wave behavior and that instabilities arising from APD restitution are the main determinants of scroll wave breakup in this cardiac model. We did not see a "thickness-induced instability" in the LR1 model, but a minimum thickness is required for scroll breakup in the presence of fiber rotation. The major effect of fiber rotation is to maintain twist in a scroll wave, promoting filament bending and thus scroll breakup. In addition, fiber rotation induces curvature in the scroll wave, which weakens conduction and further facilitates wave break.
机译:涡旋波(涡旋)破裂被认为是心室纤颤的基础,这是心源性猝死的主要原因。我们使用Luo-Rudy(LR1)动作电位模型的第一阶段在三维心脏组织模型中模拟了涡旋波行为。研究了动作电位持续时间(APD)恢复,组织厚度,细丝扭曲和纤维旋转的影响。我们发现,APD归还是涡旋波行为的主要决定因素,而APD归还引起的不稳定性是此心脏模型中涡旋波破裂的主要决定因素。在LR1模型中,我们没有看到“厚度引起的不稳定性”,但是在纤维旋转的情况下,涡旋破裂所需的最小厚度是最小的。纤维旋转的主要作用是维持涡旋波的扭曲,促进长丝弯曲,从而破坏涡旋。此外,纤维的旋转会引起涡旋波的弯曲,从而削弱传导并进一步促进波的破裂。

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