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A novel constitutive model for passive right ventricular myocardium: Evidence for myofiber-collagen fiber mechanical coupling

机译:被动右室心肌的新型本构模型:肌纤维-胶原纤维机械耦合的证据

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摘要

The function of right ventricle (RV) is recognized to play a key role in the development of many cardiopulmonary disorders, such as pulmonary arterial hypertension (PAH). Given the strong link between tissue structure and mechanical behavior, there remains a need for a myocardial constitutive model that accurately accounts for right ventricular myocardium architecture. Moreover, most available myocardial constitutive models approach myocardium at the length scale of mean fiber orientation, and do not explicitly account for different fibrous constituents and possible interactions among them. In the present work, we developed a fiber-level constitutive model for the passive mechanical behavior of the right ventricular free wall (RVFW) that explicitly distinguished between the mechanical contributions of myofiber and collagen fiber ensembles, and accounted for the fiber mechanical interactions. To obtain model parameters for the healthy passive RVFW, the model was informed by transmural orientation distribution measurements of myo- and collagen fibers, and was fit to the mechanical testing data, where both sets of data were obtained from recent experimental studies on non-contractile, but viable, murine RVFW specimens. Results supported the hypothesis that in the low strain regime the behavior of the RVFW is governed by myofiber response alone, which does not demonstrate any coupling between different myofiber ensembles. At higher strains, the collagen fibers and their interactions with myofibers begin to gradually contribute and dominate the behavior as recruitment proceeds. Due to the use of viable myocardial tissue, the contribution of myofibers was significant at all strains with the predicted tensile modulus of ~ 35 kPa. This was in contrast to earlier reports () where the contribution of myofibers was found to be insignificant. Also, we found that the interaction between myo- and collagen fibers was greatest under equibiaxial strain, with its contribution to the total stress not exceeding 20%. The present model can be applied to organlevel computational models of right ventricular dysfunction for efficient diagnosis and evaluation of pulmonary hypertension disorder.
机译:右心室(RV)的功能在许多心肺疾病(例如肺动脉高压(PAH))的发展中起着关键作用。考虑到组织结构和机械行为之间的紧密联系,仍然需要一种能够准确解释右心室心肌结构的心肌本构模型。而且,大多数可用的心肌本构模型以平均纤维取向的长度尺度接近心肌,并且没有明确考虑不同的纤维成分以及它们之间可能的相互作用。在当前的工作中,我们为右心室游离壁(RVFW)的被动机械行为开发了一个纤维级本构模型,该模型明确地区分了肌纤维和胶原纤维集合体的机械作用,并解释了纤维的机械相互作用。为了获得健康被动式RVFW的模型参数,该模型是通过肌和胶原纤维的透壁取向分布测量得出的,并适合于力学测试数据,其中两组数据均来自于最近的非收缩性实验研究,但可行的鼠类RVFW标本。结果支持这样的假设:在低应变状态下,RVFW的行为仅受肌纤维反应支配,这并不表明不同肌纤维集合体之间存在任何耦合。在较高的应变下,随着募集的进行,胶原纤维及其与肌纤维的相互作用开始逐渐起主导作用。由于使用了可行的心肌组织,因此在所有菌株中,肌纤维的贡献都很显着,预计拉伸模量约为35 kPa。这与早先的报告()相比,肌纤维的贡献微不足道。同样,我们发现在等双轴应变下,肌纤维和胶原纤维之间的相互作用最大,其对总应力的贡献不超过20%。本模型可应用于右心功能不全的器官水平计算模型,以有效诊断和评估肺动脉高压疾病。

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