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使用 MRI 数据驱动的低秩基函数的 3D 个性化心肌细胞聚集体取向模型。

A 3D personalized cardiac myocyte aggregate orientation model using MRI data-driven low-rank basis functions.

机构信息

Institute for Biomedical Engineering, University and ETH Zurich, Zurich, Switzerland.

Laboratoire de Mécanique des Solides, École Polytechnique, Palaiseau, France; M3DISIM team, Inria / Université Paris-Saclay, Palaiseau, France; C.N.R.S./Université Paris-Saclay, Palaiseau, France.

出版信息

Med Image Anal. 2021 Jul;71:102064. doi: 10.1016/j.media.2021.102064. Epub 2021 Apr 9.

Abstract

Cardiac myocyte aggregate orientation has a strong impact on cardiac electrophysiology and mechanics. Studying the link between structural characteristics, strain, and stresses over the cardiac cycle and cardiac function requires a full volumetric representation of the microstructure. In this work, we exploit the structural similarity across hearts to extract a low-rank representation of predominant myocyte orientation in the left ventricle from high-resolution magnetic resonance ex-vivo cardiac diffusion tensor imaging (cDTI) in porcine hearts. We compared two reduction methods, Proper Generalized Decomposition combined with Singular Value Decomposition and Proper Orthogonal Decomposition. We demonstrate the existence of a general set of basis functions of aggregated myocyte orientation which defines a data-driven, personalizable, parametric model featuring higher flexibility than existing atlas and rule-based approaches. A more detailed representation of microstructure matching the available patient data can improve the accuracy of personalized computational models. Additionally, we approximate the myocyte orientation of one ex-vivo human heart and demonstrate the feasibility of transferring the basis functions to humans.

摘要

心肌细胞集合的方向对心脏的电生理和力学有很大的影响。研究结构特征、应变和心脏周期内的应力与心脏功能之间的联系,需要对微观结构进行全容积表示。在这项工作中,我们利用心脏之间的结构相似性,从猪心的高分辨率离体心脏磁共振扩散张量成像(cDTI)中提取左心室主要心肌细胞方向的低秩表示。我们比较了两种降维方法,广义正则分解与奇异值分解的结合和正则正交分解。我们证明了存在一组一般的心肌细胞集合方向的基函数,这些基函数定义了一个数据驱动的、可定制的参数模型,其灵活性比现有的图谱和基于规则的方法更高。与可用的患者数据更匹配的微观结构的更详细表示可以提高个性化计算模型的准确性。此外,我们还近似了一个离体人心肌细胞的方向,并证明了将基函数转移到人体上的可行性。

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