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Collision-Based Spiral Acceleration in Cardiac Media: Roles of Wavefront Curvature and Excitable Gap

机译:心脏介质中基于碰撞的螺旋加速:波前曲率和兴奋间隙的作用

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摘要

We have previously shown in experimental cardiac cell monolayers that rapid point pacing can convert basic functional reentry (single spiral) into a stable multiwave spiral that activates the tissue at an accelerated rate. Here, our goal is to further elucidate the biophysical mechanisms of this rate acceleration without the potential confounding effects of microscopic tissue heterogeneities inherent to experimental preparations. We use computer simulations to show that, similar to experimental observations, single spirals can be converted by point stimuli into stable multiwave spirals. In multiwave spirals, individual waves collide, yielding regions with negative wavefront curvature. When a sufficient excitable gap is present and the negative-curvature regions are close to spiral tips, an electrotonic spread of excitatory currents from these regions propels each colliding spiral to rotate faster than the single spiral, causing an overall rate acceleration. As observed experimentally, the degree of rate acceleration increases with the number of colliding spiral waves. Conversely, if collision sites are far from spiral tips, excitatory currents have no effect on spiral rotation and multiple spirals rotate independently, without rate acceleration. Understanding the mechanisms of spiral rate acceleration may yield new strategies for preventing the transition from monomorphic tachycardia to polymorphic tachycardia and fibrillation.
机译:我们先前在实验性心脏细胞单层中显示,快速起搏可以将基本的功能折返(单螺旋)转换为稳定的多波螺旋,从而以加速的速度激活组织。在这里,我们的目标是进一步阐明这种速率加速的生物物理机制,而不会引起实验制剂固有的微观组织异质性的潜在混淆作用。我们使用计算机模拟来表明,类似于实验观察,单螺旋可以通过点刺激转换为稳定的多波螺旋。在多波螺旋中,单个波发生碰撞,产生波前曲率为负的区域。当存在足够的励磁间隙并且负曲率区域靠近螺旋尖端时,来自这些区域的励磁电流的电声扩散会促使每个碰撞螺旋比单个螺旋旋转得更快,从而导致总体速率加速。如实验观察到的,速率加速程度随碰撞螺旋波数量的增加而增加。相反,如果碰撞部位远离螺旋尖端,则励磁电流对螺旋旋转没有影响,并且多个螺旋独立旋转,而没有速率加速。了解螺旋速率加速的机制可能会产生新的策略,以防止从单形心动过速过渡到多形心动过速和原纤维形成。

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