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心肌纤维方向对心外膜激动模式的影响。

Effect of Myocardial Fiber Direction on Epicardial Activation Patterns.

作者信息

Rupp Lindsay C, Good Wilson W, Bergquist Jake A, Zenger Brian, Gillette Karli, Plank Gernot, MacLeod Rob S

机构信息

Scientific Computing and Imaging Institute, University of Utah, SLC, UT, USA.

Nora Eccles Cardiovascular Research and Training Institute, University of Utah, SLC, UT, USA.

出版信息

Comput Cardiol (2010). 2020 Sep;47. doi: 10.22489/cinc.2020.399. Epub 2021 Feb 10.

DOI:10.22489/cinc.2020.399
PMID:33937432
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8084599/
Abstract

Fiber structure governs the spread of excitation in the heart, however, little is known about the effects of physiological variability in the fiber orientation on epicardial activation. To investigate these effects, we used computer simulation to compare ventricular activation sequences initiated from stimulus sites at regularly spaced depths within the myocardium under varying rule-based fiber ranges. We compared the effects using four characteristics of epicardial breakthrough (BKT): location, area, shape (calculated via the axis ratio of a fitted ellipse), and orientation. Our results showed changes in the BKT characteristics as pacing depth increased, e.g., the area increased, the shape became more circular, and the orientation rotated counterclockwise, regardless of the fiber orientation. Furthermore, the maximal differences in epicardial activation from a single pacing site for location, area, axis ratio, and orientation were 1.2 mm, 74 mm , 0.16, and 26°, respectively. Our results suggest that variability in fiber orientation has a negligible effect on the location, area, and shape of the BKT, while fluctuations were observed in the BKT orientation in response to the fiber fields, especially for epicardial stimulation sites. Our results suggest the fiber field orientation plays only a minor role in activation simulations of ectopic beats.

摘要

纤维结构控制着心脏中兴奋的传播,然而,关于纤维方向的生理变异性对心外膜激活的影响却知之甚少。为了研究这些影响,我们使用计算机模拟来比较在不同基于规则的纤维范围内,从心肌内规则间隔深度的刺激部位引发的心室激活序列。我们使用心外膜突破(BKT)的四个特征进行比较:位置、面积、形状(通过拟合椭圆的轴比计算)和方向。我们的结果表明,随着起搏深度增加,BKT特征发生变化,例如面积增加、形状变得更圆,并且方向逆时针旋转,与纤维方向无关。此外,从单个起搏部位的心外膜激活在位置、面积、轴比和方向上的最大差异分别为1.2毫米、74平方毫米、0.16和26°。我们的结果表明,纤维方向的变异性对BKT的位置、面积和形状影响可忽略不计,而在响应纤维场时,BKT方向会出现波动,特别是对于心外膜刺激部位。我们的结果表明,纤维场方向在异位搏动的激活模拟中仅起次要作用。

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