Anisotropic Müller glial scaffolding supports a multiplex lattice mosaic of photoreceptors in zebrafish retina.

IF 4 3区 生物学 Q1 DEVELOPMENTAL BIOLOGY
Mikiko Nagashima, Jeremy Hadidjojo, Linda K Barthel, David K Lubensky, Pamela A Raymond
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引用次数: 16

Abstract

Background: The multiplex, lattice mosaic of cone photoreceptors in the adult fish retina is a compelling example of a highly ordered epithelial cell pattern, with single cell width rows and columns of cones and precisely defined neighbor relationships among different cone types. Cellular mechanisms patterning this multiplex mosaic are not understood. Physical models can provide new insights into fundamental mechanisms of biological patterning. In earlier work, we developed a mathematical model of photoreceptor cell packing in the zebrafish retina, which predicted that anisotropic mechanical tension in the retinal epithelium orients planar polarized adhesive interfaces to align the columns as cone photoreceptors are generated at the retinal margin during post-embryonic growth.

Methods: With cell-specific fluorescent reporters and in vivo imaging of the growing retinal margin in transparent juvenile zebrafish we provide the first view of how cell packing, spatial arrangement, and cell identity are coordinated to build the lattice mosaic. With targeted laser ablation we probed the tissue mechanics of the retinal epithelium.

Results: Within the lattice mosaic, planar polarized Crumbs adhesion proteins pack cones into a single cell width column; between columns, N-cadherin-mediated adherens junctions stabilize Müller glial apical processes. The concentration of activated pMyosin II at these punctate adherens junctions suggests that these glial bands are under tension, forming a physical barrier between cone columns and contributing to mechanical stress anisotropies in the epithelial sheet. Unexpectedly, we discovered that the appearance of such parallel bands of Müller glial apical processes precedes the packing of cones into single cell width columns, hinting at a possible role for glia in the initial organization of the lattice mosaic. Targeted laser ablation of Müller glia directly demonstrates that these glial processes support anisotropic mechanical tension in the planar dimension of the retinal epithelium.

Conclusions: These findings uncovered a novel structural feature of Müller glia associated with alignment of photoreceptors into a lattice mosaic in the zebrafish retina. This is the first demonstration, to our knowledge, of planar, anisotropic mechanical forces mediated by glial cells.

Abstract Image

Abstract Image

Abstract Image

各向异性神经胶质支架支持斑马鱼视网膜中光感受器的多重晶格马赛克。
背景:成年鱼视网膜中视锥光感受器的多重晶格马赛克是高度有序上皮细胞模式的一个引人注目的例子,具有单细胞宽度的视锥细胞行和列,以及不同视锥细胞类型之间精确定义的邻居关系。这种多重镶嵌的细胞机制尚不清楚。物理模型可以为生物模式的基本机制提供新的见解。在早期的工作中,我们建立了斑马鱼视网膜中光感受器细胞堆积的数学模型,该模型预测在胚胎后生长期间,视网膜上皮中的各向异性机械张力定向平面极化粘附界面,使锥体光感受器在视网膜边缘产生,使柱对齐。方法:利用细胞特异性荧光报告和透明斑马鱼幼鱼生长视网膜边缘的体内成像,我们提供了细胞包装、空间排列和细胞身份如何协调构建晶格马赛克的第一个视图。我们利用激光靶向消融技术研究视网膜上皮的组织力学。结果:在晶格镶嵌中,平面极化的碎屑粘附蛋白将锥体包裹成单细胞宽度柱;在柱间,n-钙粘蛋白介导的粘附连接稳定了神经胶质的顶端突。活化的pMyosin II在这些点状粘附连接处的浓度表明,这些胶质带处于张力状态,在锥体柱之间形成物理屏障,并导致上皮片的机械应力各向异性。出乎意料的是,我们发现这种平行带的出现是在视锥细胞堆积成单细胞宽度柱之前,这暗示了胶质细胞在晶格马赛克的初始组织中可能起的作用。靶向激光消融勒神经胶质细胞直接表明,这些胶质过程支持视网膜上皮平面尺寸的各向异性机械张力。结论:这些发现揭示了斑马鱼视网膜中与光感受器排列成晶格马赛克相关的突触神经胶质的一种新的结构特征。据我们所知,这是由神经胶质细胞介导的平面、各向异性机械力的第一次演示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neural Development
Neural Development 生物-发育生物学
CiteScore
6.60
自引率
0.00%
发文量
11
审稿时长
>12 weeks
期刊介绍: Neural Development is a peer-reviewed open access, online journal, which features studies that use molecular, cellular, physiological or behavioral methods to provide novel insights into the mechanisms that underlie the formation of the nervous system. Neural Development aims to discover how the nervous system arises and acquires the abilities to sense the world and control adaptive motor output. The field includes analysis of how progenitor cells form a nervous system during embryogenesis, and how the initially formed neural circuits are shaped by experience during early postnatal life. Some studies use well-established, genetically accessible model systems, but valuable insights are also obtained from less traditional models that provide behavioral or evolutionary insights.
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