Biomedical Engineering, School of Medicine, Oregon Health & Science University, Portland OR, USA.
Biomedical Engineering, School of Medicine, Oregon Health & Science University, Portland OR, USA.
Prog Biophys Mol Biol. 2018 Sep;137:95-110. doi: 10.1016/j.pbiomolbio.2018.05.005. Epub 2018 May 24.
The role of hemodynamics in cardiovascular development is not well understood. Indeed, it would be remarkable if it were, given the dauntingly complex array of intricately synchronized genetic, molecular, mechanical, and environmental factors at play. However, with congenital heart defects affecting around 1 in 100 human births, and numerous studies pointing to hemodynamics as a factor in cardiovascular morphogenesis, this is not an area in which we can afford to remain in the dark. This review seeks to present the case for the importance of research into the biomechanics of the developing cardiovascular system. This is accomplished by i) illustrating the basics of some of the highly complex processes involved in heart development, and discussing the known influence of hemodynamics on those processes; ii) demonstrating how altered hemodynamic environments have the potential to bring about morphological anomalies, citing studies in multiple animal models with a variety of perturbation methods; iii) providing examples of widely used technological innovations which allow for accurate measurement of hemodynamic parameters in embryos; iv) detailing the results of studies in avian embryos which point to exciting correlations between various hemodynamic manipulations in early development and phenotypic defect incidence in mature hearts; and finally, v) stressing the relevance of uncovering specific biomechanical pathways involved in cardiovascular formation and remodeling under adverse conditions, to the potential treatment of human patients. The time is ripe to unravel the contributions of hemodynamics to cardiac development, and to recognize their frequently neglected role in the occurrence of heart malformation phenotypes.
血流动力学在心血管发育中的作用尚不清楚。事实上,如果考虑到错综复杂的基因、分子、机械和环境因素的复杂组合,这是非常值得注意的。然而,由于先天性心脏病影响了大约每 100 例人类出生中的 1 例,并且许多研究指出血流动力学是心血管形态发生的一个因素,因此我们不能在这个领域继续保持盲目。本综述旨在阐述研究发育中心血管系统生物力学的重要性。这是通过以下方式实现的:i)举例说明心脏发育过程中涉及的一些高度复杂的过程的基础知识,并讨论血流动力学对这些过程的已知影响;ii)证明改变血流动力学环境有可能导致形态异常,并引用多种动物模型和各种扰动方法的研究;iii)提供广泛使用的技术创新的示例,这些创新允许在胚胎中准确测量血流动力学参数;iv)详细介绍鸟类胚胎研究的结果,这些结果表明早期发育中各种血流动力学操作与成熟心脏表型缺陷发生率之间存在令人兴奋的相关性;最后,v)强调在不利条件下揭示心血管形成和重塑中涉及的特定生物力学途径的相关性,以潜在治疗人类患者的重要性。现在是揭示血流动力学对心脏发育的贡献并认识到它们在心脏畸形表型发生中的经常被忽视的作用的时候了。