Clark Brian S, Miesfeld Joel B, Flinn Michael A, Collery Ross F, Link Brian A
Department of Cell Biology, Neurobiology and Anatomy, Medical College of Wisconsin, Milwaukee, WI, United States.
Department of Physiology, Medical College of Wisconsin, Milwaukee, WI, United States.
Front Cell Dev Biol. 2021 Feb 9;8:608112. doi: 10.3389/fcell.2020.608112. eCollection 2020.
Interkinetic nuclear migration (IKNM) is the process in which pseudostratified epithelial nuclei oscillate from the apical to basal surface and in phase with the mitotic cycle. In the zebrafish retina, neuroepithelial retinal progenitor cells (RPCs) increase Notch activity with apical movement of the nuclei, and the depth of nuclear migration correlates with the probability that the next cell division will be neurogenic. This study focuses on the mechanisms underlying the relationships between IKNM, cell signaling, and neurogenesis. In particular, we have explored the role IKNM has on endosome biology within RPCs. Through genetic manipulation and live imaging in zebrafish, we find that early (Rab5-positive) and recycling (Rab11a-positive) endosomes polarize in a dynamic fashion within RPCs and with reference to nuclear position. Functional analyses suggest that dynamic polarization of recycling endosomes and their activity within the neuroepithelia modulates the subcellular localization of Crb2a, consequently affecting multiple signaling pathways that impact neurogenesis including Notch, Hippo, and Wnt activities. As nuclear migration is heterogenous and asynchronous among RPCs, Rab11a-affected signaling within the neuroepithelia is modulated in a differential manner, providing mechanistic insight to the correlation of IKNM and selection of RPCs to undergo neurogenesis.
核内运动(IKNM)是假复层上皮细胞核从顶端到基底表面振荡并与有丝分裂周期同步的过程。在斑马鱼视网膜中,神经上皮视网膜祖细胞(RPCs)随着细胞核的顶端移动增加Notch活性,并且核迁移的深度与下一次细胞分裂将是神经源性的概率相关。本研究聚焦于IKNM、细胞信号传导和神经发生之间关系的潜在机制。特别地,我们探究了IKNM在RPCs内对内体生物学的作用。通过斑马鱼中的基因操作和实时成像,我们发现早期(Rab5阳性)和循环(Rab11a阳性)内体在RPCs内并参照核位置以动态方式极化。功能分析表明,循环内体的动态极化及其在神经上皮内的活性调节Crb2a的亚细胞定位,从而影响包括Notch、Hippo和Wnt活性在内的多个影响神经发生的信号通路。由于核迁移在RPCs之间是异质且异步的,神经上皮内Rab11a影响的信号传导以不同方式被调节,为IKNM与RPCs进行神经发生选择之间的相关性提供了机制性见解。