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健康成年绵羊左右心室生物力学的多尺度对比及其转化意义

Multiscale Contrasts Between the Right and Left Ventricle Biomechanics in Healthy Adult Sheep and Translational Implications.

作者信息

Liu Wenqiang, Nguyen-Truong Michael, LeBar Kristen, Labus Kevin M, Gray Elisabeth, Ahern Matt, Neelakantan Sunder, Avazmohammadi Reza, McGilvray Kirk C, Puttlitz Christian M, Wang Zhijie

机构信息

Cardiovascular Biomechanics Laboratory, School of Biomedical Engineering, Colorado State University, Fort Collins, CO, United States.

Cardiovascular Biomechanics Laboratory, Department of Mechanical Engineering, Colorado State University, Fort Collins, CO, United States.

出版信息

Front Bioeng Biotechnol. 2022 Apr 21;10:857638. doi: 10.3389/fbioe.2022.857638. eCollection 2022.

Abstract

Cardiac biomechanics play a significant role in the progression of structural heart diseases (SHDs). SHDs alter baseline myocardial biomechanics leading to single or bi-ventricular dysfunction. But therapies for left ventricle (LV) failure patients do not always work well for right ventricle (RV) failure patients. This is partly because the basic knowledge of baseline contrasts between the RV and LV biomechanics remains elusive with limited discrepant findings. The aim of the study was to investigate the multiscale contrasts between LV and RV biomechanics in large animal species. We hypothesize that the adult healthy LV and RV have distinct passive anisotropic biomechanical properties. biaxial tests were performed in fresh sheep hearts. Histology and immunohistochemistry were performed to measure tissue collagen. The experimental data were then fitted to a Fung type model and a structurally informed model, separately. We found that the LV was stiffer in the longitudinal (outflow tract) than circumferential direction, whereas the RV showed the opposite anisotropic behavior. The anisotropic parameter from the Fung type model accurately captured contrasting anisotropic behaviors in the LV and RV. When comparing the elasticity in the same direction, the LV was stiffer than the RV longitudinally and the RV was stiffer than the LV circumferentially, suggesting different filling patterns of these ventricles during diastole. Results from the structurally informed model suggest potentially stiffer collagen fibers in the LV than RV, demanding further investigation. Finally, type III collagen content was correlated with the low-strain elastic moduli in both ventricles. In summary, our findings provide fundamental biomechanical differences between the chambers. These results provide valuable insights for guiding cardiac tissue engineering and regenerative studies to implement chamber-specific matrix mechanics, which is particularly critical for identifying biomechanical mechanisms of diseases or mechanical regulation of therapeutic responses. In addition, our results serve as a benchmark for image-based inverse modeling technologies to non-invasively estimate myocardial properties in the RV and LV.

摘要

心脏生物力学在结构性心脏病(SHD)的进展中起着重要作用。结构性心脏病会改变基线心肌生物力学,导致单心室或双心室功能障碍。但左心室(LV)衰竭患者的治疗方法对右心室(RV)衰竭患者并不总是有效。部分原因是右心室和左心室生物力学之间基线差异的基本知识仍然难以捉摸,相关的差异研究结果有限。本研究的目的是调查大型动物物种中左心室和右心室生物力学的多尺度差异。我们假设成年健康的左心室和右心室具有不同的被动各向异性生物力学特性。在新鲜羊心脏上进行了双轴测试。进行了组织学和免疫组织化学检测以测量组织胶原蛋白。然后将实验数据分别拟合到冯氏模型和结构信息模型。我们发现左心室在纵向(流出道)比圆周方向更硬,而右心室表现出相反的各向异性行为。冯氏模型的各向异性参数准确地捕捉到了左心室和右心室中相反的各向异性行为。当比较相同方向的弹性时,左心室在纵向比右心室更硬,而右心室在圆周方向比左心室更硬,这表明这些心室在舒张期有不同的充盈模式。结构信息模型的结果表明左心室的胶原纤维可能比右心室更硬,这需要进一步研究。最后,III型胶原蛋白含量与两个心室的低应变弹性模量相关。总之,我们的研究结果揭示了各腔室之间基本的生物力学差异。这些结果为指导心脏组织工程和再生研究以实施特定腔室的基质力学提供了有价值的见解,这对于识别疾病的生物力学机制或治疗反应的机械调节尤为关键。此外,我们的结果为基于图像的逆建模技术提供了一个基准,以无创地估计右心室和左心室的心肌特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6cc/9068898/4c831f053901/fbioe-10-857638-g001.jpg

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