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视网膜变性慢(Rds)蛋白的外段寡聚化:来自小鼠模型和亚细胞分级分离的证据

Outer segment oligomerization of Rds: evidence from mouse models and subcellular fractionation.

作者信息

Chakraborty Dibyendu, Ding Xi-Qin, Fliesler Steven J, Naash Muna I

机构信息

Department of Cell Biology, University of Oklahoma Health Sciences Center, Oklahoma City, Oklahoma 73126, USA.

出版信息

Biochemistry. 2008 Jan 29;47(4):1144-56. doi: 10.1021/bi701807c. Epub 2008 Jan 3.

Abstract

Retinal degeneration slow (Rds) is a photoreceptor-specific tetraspanin glycoprotein essential for photoreceptor outer segment (OS) morphogenesis. Over 80 mutations in this protein are associated with several different retinal diseases. Rds forms a mixture of disulfide-linked homomeric dimers, octamers, and higher-order oligomers, with Cys150 playing a crucial role in its oligomerization. Rds also forms noncovalent homo- and hetero-tetramers with its nonglycosylated homologue, Rom-1. Here, we evaluated the subcellular site of Rds oligomerization and the pattern of Rds/Rom-1 complex assembly in several types of knockout mice, including rhodopsin (Rho-/-, lacking rod OS), Rom-1 (Rom-1-/-), neural retina leucine zipper (Nrl-/-, cone-dominant), and in comparison with wild-type (WT, rod-dominant) mice. Oligomerization and the pattern of complex assembly were also evaluated in OS-enriched vs OS-depleted preparations from WT and Rom-1-/- retinas. Velocity sedimentation under reducing- and nonreducing conditions and co-immunoprecipitation experiments showed the presence of Rds mainly as homo- and hetero-tetramers with Rom-1 in the photoreceptor inner segment (IS), while higher-order, disulfide-linked intermediate complexes and oligomers were exclusively present in the photoreceptor OS. Rom-1-independent oligomerization of Rds was observed in Rom-1-/- retinas. The pattern of Rds complexes in cones from Nrl-/- mice was comparable to that in rods from WT mice. On the basis of these findings, we propose that Rds traffics from the IS to the OS as homo- and hetero-tetramers, with subsequent disulfide-linked oligomerization occurring concomitant with OS disc morphogenesis (at either the base of OS or the tip of the connecting cilium). These results suggest that Rds mutations that interfere with tetramer formation can block Rds trafficking to the OS, leading to loss-of-function defects.

摘要

视网膜变性慢蛋白(Rds)是一种光感受器特异性的四跨膜糖蛋白,对光感受器外段(OS)的形态发生至关重要。该蛋白上有80多种突变与几种不同的视网膜疾病相关。Rds形成二硫键连接的同型二聚体、八聚体和高阶寡聚体的混合物,其中半胱氨酸150在其寡聚化过程中起关键作用。Rds还与其非糖基化同源物Rom-1形成非共价的同型和异型四聚体。在此,我们评估了几种基因敲除小鼠中Rds寡聚化的亚细胞位点以及Rds/Rom-1复合物组装模式,包括视紫红质基因敲除小鼠(Rho-/-,缺乏视杆细胞OS)、Rom-1基因敲除小鼠(Rom-1-/-)、神经视网膜亮氨酸拉链基因敲除小鼠(Nrl-/-,以视锥细胞为主),并与野生型(WT,以视杆细胞为主)小鼠进行比较。还在来自WT和Rom-1-/-视网膜的富含OS与缺乏OS的制剂中评估了寡聚化和复合物组装模式。还原和非还原条件下的速度沉降以及共免疫沉淀实验表明,在光感受器内段(IS)中,Rds主要以与Rom-1形成的同型和异型四聚体形式存在,而高阶的、二硫键连接的中间复合物和寡聚体仅存在于光感受器OS中。在Rom-1-/-视网膜中观察到了Rds不依赖Rom-1的寡聚化。Nrl-/-小鼠视锥细胞中Rds复合物的模式与WT小鼠视杆细胞中的模式相当。基于这些发现,我们提出Rds以同型和异型四聚体形式从IS运输到OS,随后二硫键连接的寡聚化与OS盘膜形态发生(在OS基部或连接纤毛尖端)同时发生。这些结果表明,干扰四聚体形成的Rds突变可阻断Rds向OS的运输,导致功能丧失缺陷。

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Initiation of rod outer segment disc formation requires RDS.视杆细胞外段盘状结构的形成起始需要RDS。
PLoS One. 2014 Jun 4;9(6):e98939. doi: 10.1371/journal.pone.0098939. eCollection 2014.

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