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机械反馈对心脏螺旋波稳定性的影响:一项双域机电模拟研究。

Effects of mechanical feedback on the stability of cardiac scroll waves: A bidomain electro-mechanical simulation study.

作者信息

Colli Franzone P, Pavarino L F, Scacchi S

机构信息

Dipartimento di Matematica, Università di Pavia, Via Ferrata 1, 27100 Pavia, Italy.

Dipartimento di Matematica, Università di Milano, Via Saldini 50, 20133 Milano, Italy.

出版信息

Chaos. 2017 Sep;27(9):093905. doi: 10.1063/1.4999465.

DOI:10.1063/1.4999465
PMID:28964121
Abstract

In this work, we investigate the influence of cardiac tissue deformation on re-entrant wave dynamics. We have developed a 3D strongly coupled electro-mechanical Bidomain model posed on an ideal monoventricular geometry, including fiber direction anisotropy and stretch-activated currents (SACs). The cardiac mechanical deformation influences the bioelectrical activity with two main mechanical feedback: (a) the geometric feedback (GEF) due to the presence of the deformation gradient in the diffusion coefficients and in a convective term depending on the deformation rate and (b) the mechano-electric feedback (MEF) due to SACs. Here, we investigate the relative contribution of these two factors with respect to scroll wave stability. We extend the previous works [Keldermann et al., Am. J. Physiol. Heart Circ. Physiol. 299, H134-H143 (2010) and Hu et al., PLoS One 8(4), e60287 (2013)] that were based on the Monodomain model and a simple non-selective linear SAC, while here we consider the full Bidomain model and both selective and non-selective components of SACs. Our simulation results show that the stability of cardiac scroll waves is influenced by MEF, which in case of low reversal potential of non-selective SACs might be responsible for the onset of ventricular fibrillation; GEF increases the scroll wave meandering but does not determine the scroll wave stability.

摘要

在这项工作中,我们研究了心脏组织变形对折返波动力学的影响。我们开发了一个三维强耦合机电双域模型,该模型基于理想的单心室几何结构,包括纤维方向各向异性和牵张激活电流(SACs)。心脏机械变形通过两种主要的机械反馈影响生物电活动:(a)由于扩散系数中存在变形梯度以及对流项中存在依赖于变形率的对流项而产生的几何反馈(GEF),以及(b)由于SACs产生的机电反馈(MEF)。在此,我们研究这两个因素对涡旋波稳定性的相对贡献。我们扩展了之前基于单域模型和简单非选择性线性SAC的工作[Keldermann等人,《美国生理学杂志:心脏循环生理学》299卷,H134 - H143页(2010年)以及Hu等人,《公共科学图书馆·综合》8(4)卷,e60287(2013年)],而在此我们考虑完整的双域模型以及SACs的选择性和非选择性成分。我们的模拟结果表明,心脏涡旋波的稳定性受MEF影响,在非选择性SACs的反转电位较低的情况下,MEF可能是心室颤动发作的原因;GEF增加了涡旋波的蜿蜒程度,但并不决定涡旋波的稳定性。

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