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在果蝇视网膜形态发生过程中,细胞间间质细胞构建了一个拉伸的胶原蛋白网络。

Interommatidial cells build a tensile collagen network during Drosophila retinal morphogenesis.

机构信息

Department of Biological Sciences, Purdue University, 915 West State Street, West Lafayette, IN 47907-2054, USA.

Department of Biological Sciences, Purdue University, 915 West State Street, West Lafayette, IN 47907-2054, USA.

出版信息

Curr Biol. 2023 Jun 5;33(11):2223-2234.e3. doi: 10.1016/j.cub.2023.04.066. Epub 2023 May 19.

Abstract

Drosophila compound eye morphogenesis transforms a simple epithelium into an approximate hollow hemisphere comprised of ∼700 ommatidia, packed as tapering hexagonal prisms between a rigid external array of cuticular lenses and a parallel, rigid internal floor, the fenestrated membrane (FM). Critical to vision, photosensory rhabdomeres are sprung between these two surfaces, grading their length and shape accurately across the eye and aligning them to the optical axis. Using fluorescently tagged collagen and laminin, we show that that the FM assembles sequentially, emerging in the larval eye disc in the wake of the morphogenetic furrow as the original collagen-containing basement membrane (BM) separates from the epithelial floor and is replaced by a new, laminin-rich BM, which advances around axon bundles of newly differentiated photoreceptors as they exit the retina, forming fenestrae in this new, laminin-rich BM. In mid-pupal development, the interommatidial cells (IOCs) autonomously deposit collagen at fenestrae, forming rigid, tension-resisting grommets. In turn, stress fibers assemble in the IOC basal endfeet, where they contact grommets at anchorages mediated by integrin linked kinase (ILK). The hexagonal network of IOC endfeet tiling the retinal floor couples nearest-neighbor grommets into a supracellular tri-axial tension network. Late in pupal development, IOC stress fiber contraction folds pliable BM into a hexagonal grid of collagen-stiffened ridges, concomitantly decreasing the area of convex FM and applying essential morphogenetic longitudinal tension to rapidly growing rhabdomeres. Together, our results reveal an orderly program of sequential assembly and activation of a supramolecular tensile network that governs Drosophila retinal morphogenesis.

摘要

果蝇复眼形态发生将简单的上皮组织转化为近似的中空半球,由约 700 个小眼组成,这些小眼排列在刚性外部角质透镜阵列和平行的刚性内部地板(窗膜)之间,呈逐渐变细的六边形棱柱体。对视觉至关重要的感光纤毛在这两个表面之间弹出,在整个眼睛中精确地调整它们的长度和形状,并将它们与光轴对齐。使用荧光标记的胶原蛋白和层粘连蛋白,我们发现窗膜依次组装,在幼虫眼盘中,随着形态发生沟的出现,原始含有胶原蛋白的基底膜(BM)与上皮地板分离,并被新的富含层粘连蛋白的 BM 取代,新的富含层粘连蛋白的 BM 围绕新分化的感光器的轴突束前进,在这个新的富含层粘连蛋白的 BM 中形成窗孔。在中期蛹发育过程中,细胞间细胞(IOC)自主在窗孔处沉积胶原蛋白,形成刚性、抵抗张力的索环。反过来,应力纤维在 IOC 基底部足聚集,在整合素连接激酶(ILK)介导的锚定点与索环接触。视网膜地板上 IOC 基底部足的六边形网络将相邻的索环连接成一个超细胞三轴张力网络。在蛹发育后期,IOC 应力纤维收缩将柔韧的 BM 折叠成一个由胶原蛋白加固的脊的六边形网格,同时减小凸窗膜的面积并向快速生长的纤毛施加必要的形态发生纵向张力。总之,我们的研究结果揭示了一个有序的顺序组装和激活超分子拉伸网络的程序,该网络控制果蝇视网膜形态发生。

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