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Optical Imaging of Ventricular Action Potentials in a Torso Tank: A New Platform for Non-Invasive Electrocardiographic Imaging Validation

机译:躯干罐中心室作用电位的光学成像:非侵入式心电图成像验证的新平台

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摘要

Background: Non-invasive electrocardiographic imaging (ECGI) is a promising tool to provide high-resolution panoramic imaging of cardiac electrical activity noninvasively from body surface potential measurements. Current experimental methods for ECGI validation are limited to comparison with unipolar electrograms and the relatively low spatial resolution of cardiac mapping arrays. We aim to develop a novel experimental set up combining a human shaped torso tank with high-resolution optical mapping allowing the validation of ECGI reconstructions.Methods: Langendorff-perfused pig hearts (n = 3) were suspended in a human torso-shaped tank, with the left anterior descending artery (LAD) cannulated on a separate perfusion. Electrical signals were recorded from an 108-electrode epicardial sock and 128 electrodes embedded in the tank surface. Simultaneously, optical mapping of the heart was performed through the anterior surface of the tank. Recordings were made in sinus rhythm and ventricular pacing (n = 55), with activation and repolarization heterogeneities induced by perfusion of hot and cold solutions as well as Sotalol through the LAD. Fluoroscopy provided 3D cardiac and electrode geometries in the tank that were transformed to the 2D optical mapping window using an optimization algorithm. Epicardial unipolar electrograms were reconstructed from torso potentials using ECGI and validated using optical activation and repolarization maps.Results: The transformation and alignment of the 3D geometries onto the 2D optical mapping window was good with an average correlation of 0.87 ± 0.10 and error of 7.7 ± 3.1 ms with activation derived from the sock. The difference in repolarization times were more substantial (error = 17.4 ± 3.7 ms) although the sock and optical repolarization patterns themselves were very similar (correlation = 0.83 ± 0.13). Validation of ECGI reconstructions revealed ECGI accurately captures the pattern of activation (correlation = 0.79 ± 0.11) and identified regions of late and/or early repolarization during different perfusions through LAD. ECGI also correctly demonstrated gradients in both activation and repolarization, although in some cases these were under or over-estimated or shifted slightly in space.Conclusion: A novel experimental setup has been developed, combining a human-shaped torso tank with optical mapping, which can be effectively used in the validation of ECGI techniques; including the reconstruction of activation and repolarization patterns and gradients.
机译:背景:非侵入式心电图成像(ECGI)是一种有前途的工具,可以从体表电位测量中非侵略地提供心脏电活动的高分辨率全景成像。 ECGI验证的当前试验方法仅限于与单极电图和心脏映射阵列的相对低的空间分辨率进行比较。我们的目标是开发一种与高分辨率光学绘制的人形躯干箱组合的新型实验设置,允许ECGI重建的验证。方法:Langendorff-灌注的猪心(n = 3)悬挂在人躯干形罐中,用左前期下降动脉(LAD)在单独的灌注上插管。从嵌入罐表面中的108电极外形袜子和128个电极记录电信号。同时,通过罐的前表面进行心脏的光学映射。在窦性节律和心室起搏(n = 55)中进行录音,其通过灌注热和冷溶液以及通过LAD灌注诱导的活化和再溶解异质性。透视提供3D心脏和电极几何在罐中使用优化算法转换为2D光学映射窗口。使用ECGI从躯干电位重建外皮病单极电图,并使用光学激活和复极性映射进行验证。结果:3D几何上的转换和对准在2D光学映射窗口上良好,平均相关性为0.87±0.10和7.7±误差3.1 MS激活源自袜子。虽然袜子和光学复极性曲线本身非常相似(相关= 0.83±0.13),但是复极化时间的差异更大(误差= 17.4±3.7ms)。 ECGI重建的验证显示ECGI精确地捕获激活模式(相关= 0.79±0.11),并通过LAD的不同灌注期间确定的晚期和/或早期复极性区域。 ECGI还在激活和复极化中正确展示了梯度,尽管在某些情况下,这些在空间中略微估计或略微估计或移位。结论:已经开发了一种新的实验设置,将人形的躯干箱与光学映射结合,其中可以有效地用于ECGI技术的验证;包括重建激活和倒波模式和梯度。

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