Jussila Maria, Ciruna Brian
Program in Developmental & Stem Cell Biology, The Hospital for Sick Children, Toronto, Canada.
Department of Molecular Genetics, The University of Toronto, Toronto, Canada.
Wiley Interdiscip Rev Dev Biol. 2017 May;6(3). doi: 10.1002/wdev.267. Epub 2017 Mar 17.
Planar cell polarity (PCP) coordinates the uniform orientation, structure and movement of cells within the plane of a tissue or organ system. It is beautifully illustrated in the polarized arrangement of bristles and hairs that project from specialized cell surfaces of the insect abdomen and wings, and pioneering genetic studies using the fruit fly, Drosophila melanogaster, have defined a core signalling network underlying PCP. This core PCP/non-canonical Wnt signalling pathway is evolutionarily conserved, and studies in zebrafish have helped transform our understanding of PCP from a peculiarity of polarized epithelia to a more universal cellular property that orchestrates a diverse suite of polarized cell behaviors that are required for normal vertebrate development. Furthermore, application of powerful genetics, embryonic cell-transplantation, and live-imaging capabilities afforded by the zebrafish model have yielded novel insights into the establishment and maintenance of vertebrate PCP, over the course of complex and dynamic morphogenetic events like gastrulation and neural tube morphogenesis. Although key questions regarding vertebrate PCP remain, with the emergence of new genome-editing technologies and the promise of endogenous labeling and Cre/LoxP conditional targeting strategies, zebrafish remains poised to deliver fundamental new insights into the function and molecular dynamic regulation of PCP signalling from embryonic development through to late-onset phenotypes and adult disease states. WIREs Dev Biol 2017, 6:e267. doi: 10.1002/wdev.267 For further resources related to this article, please visit the WIREs website.
平面细胞极性(PCP)协调组织或器官系统平面内细胞的统一取向、结构和运动。从昆虫腹部和翅膀的特化细胞表面伸出的刚毛和毛发的极化排列很好地说明了这一点,并且利用果蝇进行的开创性遗传学研究已经确定了PCP背后的核心信号网络。这种核心PCP/非经典Wnt信号通路在进化上是保守的,斑马鱼研究有助于将我们对PCP的理解从极化上皮的特性转变为一种更普遍的细胞特性,这种特性协调了正常脊椎动物发育所需的一系列不同的极化细胞行为。此外,斑马鱼模型所具备的强大遗传学、胚胎细胞移植和活体成像能力,在诸如原肠胚形成和神经管形态发生等复杂动态形态发生事件过程中,为脊椎动物PCP的建立和维持提供了新的见解。尽管关于脊椎动物PCP的关键问题仍然存在,但随着新的基因组编辑技术的出现以及内源性标记和Cre/LoxP条件靶向策略的前景,斑马鱼仍有望为从胚胎发育到迟发表型和成年疾病状态的PCP信号功能和分子动态调控提供根本性的新见解。WIREs发育生物学2017年,6:e267。doi:10.1002/wdev.267 有关本文的更多资源,请访问WIREs网站。