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雷瑟纤维在体内高度动态,控制脊柱形态发生。

The Reissner Fiber Is Highly Dynamic In Vivo and Controls Morphogenesis of the Spine.

机构信息

Department of Pediatrics, Dell Pediatric Research Institute, University of Texas at Austin Dell Medical School, 1400 Barbara Jordan Boulevard, Austin, TX 78724, USA.

Department of Developmental Biology, Washington University School of Medicine, 660 S. Euclid Avenue, Campus Box 8103, St. Louis, MO 63110, USA.

出版信息

Curr Biol. 2020 Jun 22;30(12):2353-2362.e3. doi: 10.1016/j.cub.2020.04.015. Epub 2020 May 7.

Abstract

Cerebrospinal fluid (CSF) physiology is important for the development and homeostasis of the central nervous system, and its disruption has been linked to scoliosis in zebrafish [1, 2]. Suspended in the CSF is an extracellular structure called the Reissner fiber, which extends from the brain through the central canal of the spinal cord. Zebrafish scospondin-null mutants are unable to assemble a Reissner fiber and fail to form a straight body axis during embryonic development [3]. Here, we describe hypomorphic missense mutations of scospondin, which allow Reissner fiber assembly and extension of a straight axis. However, during larval development, these mutants display progressive Reissner fiber disassembly, which is concomitant with the emergence of axial curvatures and scoliosis in adult animals. Using a scospondin-GFP knockin zebrafish line, we demonstrate several dynamic properties of the Reissner fiber in vivo, including embryonic fiber assembly, the continuous rostral to caudal movement of the fiber within the brain and central canal, and subcommissural organ (SCO)-spondin-GFP protein secretion from the floor plate to merge with the fiber. Finally, we show that disassembly of the Reissner fiber is also associated with the progression of axial curvatures in distinct scoliosis mutant zebrafish models. Together, these data demonstrate a critical role for the Reissner fiber for the maintenance of a straight body axis and spine morphogenesis in adult zebrafish. Our study establishes a framework for future investigations to address the cellular effectors responsible for Reissner-fiber-dependent regulation of axial morphology. VIDEO ABSTRACT.

摘要

脑脊液(CSF)生理学对于中枢神经系统的发育和稳态至关重要,其紊乱与斑马鱼的脊柱侧凸有关[1,2]。悬浮在 CSF 中的是一种称为 Reissner 纤维的细胞外结构,它从大脑延伸穿过脊髓的中央管。斑马鱼 scospondin 缺失突变体无法组装 Reissner 纤维,在胚胎发育过程中无法形成直的体轴[3]。在这里,我们描述了 scospondin 的低功能错义突变,这些突变允许 Reissner 纤维组装并延长直轴。然而,在幼虫发育过程中,这些突变体显示出 Reissner 纤维的逐渐解体,这与成年动物出现轴向曲率和脊柱侧凸同时发生。使用 scospondin-GFP 敲入斑马鱼系,我们证明了 Reissner 纤维在体内的几种动态特性,包括胚胎纤维组装、纤维在大脑和中央管内连续向头侧到尾侧的运动,以及室下器官(SCO)-spondin-GFP 蛋白从基板分泌到与纤维融合。最后,我们表明 Reissner 纤维的解体也与不同脊柱侧凸突变斑马鱼模型中轴向曲率的进展有关。总之,这些数据表明 Reissner 纤维对于维持成年斑马鱼直体轴和脊柱形态发生具有重要作用。我们的研究为未来的研究建立了一个框架,以解决与 Reissner 纤维依赖性调节轴向形态有关的细胞效应物。视频摘要。

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