Inria Epione Team, Université Côte d'Azur, Biot, France.
Johann Radon Institute for Computational and Applied Mathematics, Austrian Academy of Sciences, Linz, Austria.
Am J Physiol Heart Circ Physiol. 2022 Jun 1;322(6):H936-H952. doi: 10.1152/ajpheart.00050.2022. Epub 2022 Mar 18.
Cardiac fiber direction is an important factor determining the propagation of electrical activity, as well as the development of mechanical force. In this article, we imaged the ventricles of several species with special attention to the intraventricular septum to determine the functional consequences of septal fiber organization. First, we identified a dual-layer organization of the fiber orientation in the intraventricular septum of ex vivo sheep hearts using diffusion tensor imaging at high field MRI. To expand the scope of the results, we investigated the presence of a similar fiber organization in five mammalian species (rat, canine, pig, sheep, and human) and highlighted the continuity of the layer with the moderator band in large mammalian species. We implemented the measured septal fiber fields in three-dimensional electromechanical computer models to assess the impact of the fiber orientation. The downward fibers produced a diamond activation pattern superficially in the right ventricle. Electromechanically, there was very little change in pressure volume loops although the stress distribution was altered. In conclusion, we clarified that the right ventricular septum has a downwardly directed superficial layer in larger mammalian species, which can have modest effects on stress distribution. A dual-layer organization of the fiber orientation in the intraventricular septum was identified in ex vivo hearts of large mammals. The RV septum has a downwardly directed superficial layer that is continuous with the moderator band. Electrically, it produced a diamond activation pattern. Electromechanically, little change in pressure volume loops were noticed but stress distribution was altered. Fiber distribution derived from diffusion tensor imaging should be considered for an accurate strain and stress analysis.
心肌纤维方向是决定电活动传播以及机械力发展的重要因素。在本文中,我们特别关注心室间隔,对几种物种的心室进行成像,以确定间隔纤维组织的功能后果。首先,我们使用高场 MRI 的扩散张量成像,在离体绵羊心脏中识别出心室内隔纤维方向的双层组织。为了扩展结果的范围,我们研究了五种哺乳动物(大鼠、犬、猪、绵羊和人)中是否存在类似的纤维组织,并强调了在大型哺乳动物中,该层与节制带的连续性。我们将测量的间隔纤维场实施到三维机电计算机模型中,以评估纤维方向的影响。下向纤维在右心室表面产生钻石状激活模式。尽管应力分布发生了变化,但压力-容积环几乎没有变化。总之,我们阐明了在较大的哺乳动物中,右心室间隔具有向下指向的浅层,这可能对应力分布产生适度影响。在大型哺乳动物的离体心脏中确定了心室内隔的纤维方向的双层组织。RV 间隔具有向下指向的浅层,与节制带连续。电生理上,它产生了钻石状激活模式。机电方面,注意到压力-容积环几乎没有变化,但应力分布发生了变化。应考虑从扩散张量成像中得出的纤维分布,以进行准确的应变和应力分析。