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神经胚形成的力学机制:从经典到当前视角探讨塑造、折叠和形成神经管的物理力学。

Mechanics of neurulation: From classical to current perspectives on the physical mechanics that shape, fold, and form the neural tube.

机构信息

Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh, Pennsylvania.

Department of Developmental Biology, School of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania.

出版信息

Birth Defects Res. 2017 Jan 30;109(2):153-168. doi: 10.1002/bdra.23557.

DOI:10.1002/bdra.23557
PMID:27620928
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9972508/
Abstract

Neural tube defects arise from mechanical failures in the process of neurulation. At the most fundamental level, formation of the neural tube relies on coordinated, complex tissue movements that mechanically transform the flat neural epithelium into a lumenized epithelial tube (Davidson, 2012). The nature of this mechanical transformation has mystified embryologists, geneticists, and clinicians for more than 100 years. Early embryologists pondered the physical mechanisms that guide this transformation. Detailed observations of cell and tissue movements as well as experimental embryological manipulations allowed researchers to generate and test elementary hypotheses of the intrinsic and extrinsic forces acting on the neural tissue. Current research has turned toward understanding the molecular mechanisms underlying neurulation. Genetic and molecular perturbation have identified a multitude of subcellular components that correlate with cell behaviors and tissue movements during neural tube formation. In this review, we focus on methods and conceptual frameworks that have been applied to the study of amphibian neurulation that can be used to determine how molecular and physical mechanisms are integrated and responsible for neurulation. We will describe how qualitative descriptions and quantitative measurements of strain, force generation, and tissue material properties as well as simulations can be used to understand how embryos use morphogenetic programs to drive neurulation. Birth Defects Research 109:153-168, 2017. © 2016 Wiley Periodicals, Inc.

摘要

神经管缺陷是神经管形成过程中的机械故障引起的。在最基本的水平上,神经管的形成依赖于协调的、复杂的组织运动,这些运动将扁平的神经上皮机械地转化为有腔的上皮管(Davidson,2012)。这种机械转化的性质让胚胎学家、遗传学家和临床医生困惑了 100 多年。早期的胚胎学家思考了指导这种转化的物理机制。对细胞和组织运动的详细观察以及实验胚胎学的操作使研究人员能够提出和测试作用于神经组织的内在和外在力的基本假设。目前的研究已经转向理解神经管形成的分子机制。遗传和分子扰动已经确定了许多与神经管形成过程中细胞行为和组织运动相关的亚细胞成分。在这篇综述中,我们重点介绍了应用于两栖动物神经管形成研究的方法和概念框架,这些方法和概念框架可用于确定分子和物理机制是如何整合并负责神经管形成的。我们将描述如何使用定性描述和定量测量应变、力的产生和组织材料特性以及模拟来理解胚胎如何使用形态发生程序来驱动神经管形成。出生缺陷研究 109:153-168, 2017. © 2016 Wiley Periodicals, Inc.

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