Laboratory for Living Systems Engineering, Department of Biomedical Engineering, USC Viterbi School of Engineering, University of Southern California , Los Angeles, California.
Department of Stem Cell Biology and Regenerative Medicine, Keck School of Medicine, University of Southern California , Los Angeles, California.
Am J Physiol Heart Circ Physiol. 2018 Oct 1;315(4):H771-H789. doi: 10.1152/ajpheart.00110.2018. Epub 2018 Jun 15.
Many cardiovascular diseases are associated with pathological remodeling of the extracellular matrix (ECM) in the myocardium. ECM remodeling is a complex, multifactorial process that often contributes to declines in myocardial function and progression toward heart failure. However, the direct effects of the many forms of ECM remodeling on myocardial cell and tissue function remain elusive, in part because conventional model systems used to investigate these relationships lack robust experimental control over the ECM. To address these shortcomings, microphysiological systems are now being developed and implemented to establish direct relationships between distinct features in the ECM and myocardial function with unprecedented control and resolution in vitro. In this review, we will first highlight the most prominent characteristics of ECM remodeling in cardiovascular disease and describe how these features can be mimicked with synthetic and natural biomaterials that offer independent control over multiple ECM-related parameters, such as rigidity and composition. We will then detail innovative microfabrication techniques that enable precise regulation of cellular architecture in two and three dimensions. We will also describe new approaches for quantifying multiple aspects of myocardial function in vitro, such as contractility, action potential propagation, and metabolism. Together, these collective technologies implemented as cardiac microphysiological systems will continue to uncover important relationships between pathological ECM remodeling and myocardial cell and tissue function, leading to new fundamental insights into cardiovascular disease, improved human disease models, and novel therapeutic approaches.
许多心血管疾病都与心肌细胞外基质(ECM)的病理性重塑有关。ECM 重塑是一个复杂的、多因素的过程,通常会导致心肌功能下降和心力衰竭的进展。然而,许多形式的 ECM 重塑对心肌细胞和组织功能的直接影响仍然难以捉摸,部分原因是用于研究这些关系的传统模型系统对 ECM 的实验控制缺乏稳健性。为了解决这些缺点,现在正在开发和实施微生理系统,以建立 ECM 中的不同特征与心肌功能之间的直接关系,在体外具有前所未有的控制和分辨率。在这篇综述中,我们将首先强调心血管疾病中 ECM 重塑的最突出特征,并描述如何用合成和天然生物材料来模拟这些特征,这些生物材料可以独立控制多个与 ECM 相关的参数,如硬度和组成。然后,我们将详细介绍创新的微制造技术,这些技术可以精确调节二维和三维的细胞结构。我们还将描述体外测量心肌功能的多个方面的新方法,如收缩性、动作电位传播和代谢。这些作为心脏微生理系统的集体技术将继续揭示病理性 ECM 重塑与心肌细胞和组织功能之间的重要关系,为心血管疾病提供新的基本见解、改进的人类疾病模型和新的治疗方法。