Bergquist Jake A, Lange Matthias, Zenger Brian, Orkild Ben, Paccione Eric, Kwan Eugene, Hunt Bram, Dong Jiawei, MacLeod Rob S, Narayan Akil, Ranjan Ravi
Scientific Computing and Imaging Institute, University of Utah, SLC, UT, USA.
Nora Eccles Treadwell CVRTI, University of Utah, SLC, UT, USA.
Comput Cardiol (2010). 2023 Oct;50. doi: 10.22489/cinc.2023.141. Epub 2023 Dec 26.
Ventricular tachycardia (VT) is a life-threatening cardiac arrhythmia for which a common treatment pathway is electroanatomical mapping and ablation. Recent advances in both noninvasive ablation techniques and computational modeling have motivated the development of patient-specific computational models of VT. Such models are parameterized by a wide range of inputs, each of which is associated with an often unknown amount of error and uncertainty. Uncertainty quantification (UQ) is a technique to assess how variability in the inputs to a model affects its outputs. UQ has seen increased attention in computational cardiology as an avenue to further improve, understand, and develop patient-specific models. In this study we applied polynomial chaos-based UQ to explore the effect of varying the tissue conductivity of fibrotic border zones in a patient-specific model on the resulting VT simulation. We found that over a range of inputs, the model was most sensitive to fibrotic sheet direction, and uncertainty in fibrotic conductivity resulted in substantial variability in the VT reentry duration and cycle length. Overall, this study paves the way for future UQ applications to improve and understand VT models.
室性心动过速(VT)是一种危及生命的心律失常,其常见的治疗途径是电解剖标测和消融。无创消融技术和计算建模的最新进展推动了室性心动过速患者特异性计算模型的发展。此类模型由大量输入参数化,每个参数都与通常未知的误差和不确定性相关。不确定性量化(UQ)是一种评估模型输入的变异性如何影响其输出的技术。作为进一步改进、理解和开发患者特异性模型的途径,不确定性量化在计算心脏病学中受到了越来越多的关注。在本研究中,我们应用基于多项式混沌的不确定性量化来探索在患者特异性模型中改变纤维化边界区域的组织电导率对所得室性心动过速模拟的影响。我们发现,在一系列输入范围内,该模型对纤维化片层方向最为敏感,并且纤维化电导率的不确定性导致室性心动过速折返持续时间和周期长度存在显著变异性。总体而言,本研究为未来不确定性量化应用以改进和理解室性心动过速模型铺平了道路。