作为三维荧光光子散射直接结果的激波端虚电极极化调制。

M J Bishop, B Rodriguez, N Trayanova, D J Gavaghan
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引用次数: 2

摘要

由于强电作用后跨膜电位的跨壁变化较大,因此认为荧光光子的深度散射在冲击端光信号调制中起重要作用。这是第一次使用光子散射模型来精确合成在施加这种强冲击后兔子心室不规则几何形状上的荧光信号。电活动的双域表示与光子扩散方程的有限元解相结合,模拟了兔心室几何形状和纤维取向的解剖模型上的激发和发射过程。心外膜光学记录部位下方的三维体积内的光子散射显示出该体积内穿过心肌壁的跨膜电位的差异。这直接导致了与双域模拟预测的光信号响应的显著调制,扭曲了在冲击端产生的心外膜虚拟电极极化。此外,我们表明,这种程度的畸变是非常敏感的光学性质的组织,一个重要的变量,要考虑在实验映射设置。这些发现为帮助解释强除颤冲击后的实验光学测绘记录提供了重要的第一步。
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Modulation of shock-end virtual electrode polarisation as a direct result of 3D fluorescent photon scattering.

Due to the large transmural variation in transmembrane potential following the application of strong electric shocks, it is thought that fluorescent photon scattering from depth plays a significant role in optical signal modulation at shock-end. For the first time, a model of photon scattering is used to accurately synthesize fluorescent signals over the irregular geometry of the rabbit ventricles following the application of such strong shocks. A bidomain representation of electrical activity is combined with finite element solutions to the photon diffusion equation, simulating both the excitation and emission processes, over an anatomically-based model of rabbit ventricular geometry and fiber orientation. Photon scattering from within a 3D volume beneath the epicardial optical recording site is shown to transduce differences in transmembrane potential within this volume through the myocardial wall. This leads directly to a significantly modulated optical signal response with respect to that predicted by the bidomain simulations, distorting epicardial virtual electrode polarization produced at shock-end. Furthermore, we show that this degree of distortion is very sensitive to the optical properties of the tissue, an important variable to consider during experimental mapping set-ups. These findings provide an essential first-step in aiding the interpretation of experimental optical mapping recordings following strong defibrillation shocks.

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