Taneyhill Lisa A, Schiffmacher Andrew T
Department of Animal and Avian Sciences, University of Maryland, College Park, Maryland, 20742.
Genesis. 2017 Jun;55(6). doi: 10.1002/dvg.23028. Epub 2017 Mar 20.
Our increasing comprehension of neural crest cell development has reciprocally advanced our understanding of cadherin expression, regulation, and function. As a transient population of multipotent stem cells that significantly contribute to the vertebrate body plan, neural crest cells undergo a variety of transformative processes and exhibit many cellular behaviors, including epithelial-to-mesenchymal transition (EMT), motility, collective cell migration, and differentiation. Multiple studies have elucidated regulatory and mechanistic details of specific cadherins during neural crest cell development in a highly contextual manner. Collectively, these results reveal that gradual changes within neural crest cells are accompanied by often times subtle, yet important, alterations in cadherin expression and function. The primary focus of this review is to coalesce recent data on cadherins in neural crest cells, from their specification to their emergence as motile cells soon after EMT, and to highlight the complexities of cadherin expression beyond our current perceptions, including the hypothesis that the neural crest EMT is a transition involving a predominantly singular cadherin switch. Further advancements in genetic approaches and molecular techniques will provide greater opportunities to integrate data from various model systems in order to distinguish unique or overlapping functions of cadherins expressed at any point throughout the ontogeny of the neural crest.
我们对神经嵴细胞发育的理解不断加深,这反过来又促进了我们对钙黏蛋白表达、调控及功能的认识。作为对脊椎动物身体结构有重大贡献的多能干细胞的一个短暂群体,神经嵴细胞经历多种转变过程,并表现出许多细胞行为,包括上皮-间充质转化(EMT)、运动性、集体细胞迁移和分化。多项研究以高度情境化的方式阐明了神经嵴细胞发育过程中特定钙黏蛋白的调控和机制细节。总体而言,这些结果表明,神经嵴细胞内的逐渐变化往往伴随着钙黏蛋白表达和功能的细微但重要的改变。本综述的主要重点是整合神经嵴细胞中钙黏蛋白的最新数据,从其特化到EMT后不久作为运动细胞出现,并强调钙黏蛋白表达的复杂性超出了我们目前的认知,包括神经嵴EMT是一种主要涉及单一钙黏蛋白转换的转变这一假说。遗传方法和分子技术的进一步发展将提供更多机会整合来自各种模型系统的数据,以区分神经嵴个体发育过程中任何阶段表达的钙黏蛋白的独特或重叠功能。