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杆状细胞和锥状细胞差异的分子基础。

Molecular bases of rod and cone differences.

机构信息

Graduate School of Frontier Biosciences, Osaka University, Yamada-oka 1-3, Suita, Osaka, 565-0871, Japan; Department of Biological Sciences, Graduate School of Science, Osaka University, Yamada-oka 1-3, Suita, Osaka, 565-0871, Japan.

出版信息

Prog Retin Eye Res. 2022 Sep;90:101040. doi: 10.1016/j.preteyeres.2021.101040. Epub 2021 Dec 31.

DOI:10.1016/j.preteyeres.2021.101040
PMID:34974196
Abstract

In the vertebrate retina, rods and cones both detect light, but they differ in functional aspects such as light sensitivity and temporal resolution, and in some cell biological aspects. For functional aspects, both types of photoreceptors use a phototransduction cascade, consisting of a series of enzymatic reactions, to convert photon capture to an electrical signal. To understand the mechanisms underlying the functional differences between rods and cones at the molecular level, we compared biochemically, each of the reactions in the phototransduction cascades of rods and cones using the cells isolated and purified from carp retina. Although the cascade proteins are identical or are functionally similar between rods and cones, their activities together with their expression levels are mostly different. In general, reactions that generate a response are somewhat less effective in cones than in rods, but each of the reactions for termination and recovery of a response are much more effective in cones. These findings explain lower light sensitivity and briefer light responses in cones than in rods. In addition, our considerations suggest that a Ca-binding protein, S-modulin or recoverin, has a currently unnoticed role in shaping light responses. Upon comparison of the expression levels of proteins and/or mRNAs using purified cells, several proteins were found to be specifically or predominantly expressed in cones. These proteins will be of interest in future studies aimed at characterizing the differences between rods and cones.

摘要

在脊椎动物的视网膜中,视杆细胞和视锥细胞都能检测光线,但它们在功能方面(如光敏感度和时间分辨率)和某些细胞生物学方面存在差异。对于功能方面,这两种类型的光感受器都使用光转导级联反应,由一系列酶促反应组成,将光子捕获转化为电信号。为了在分子水平上理解视杆细胞和视锥细胞之间功能差异的机制,我们使用从鲤鱼视网膜中分离和纯化的细胞,对光转导级联反应中的每个反应进行了比较生化分析。尽管级联蛋白在视杆细胞和视锥细胞之间是相同的或具有功能相似性,但它们的活性及其表达水平大多不同。一般来说,在视锥细胞中,产生反应的反应稍低于视杆细胞,但每个用于终止和恢复反应的反应都在视锥细胞中更为有效。这些发现解释了视锥细胞的光敏感度较低和光反应时间较短的原因。此外,我们的考虑表明,一种钙结合蛋白,S-调制素或恢复蛋白,在塑造光反应方面具有当前未被注意到的作用。在用纯化细胞比较蛋白质和/或 mRNA 的表达水平时,发现几种蛋白质在视锥细胞中特异性或主要表达。这些蛋白质将在未来旨在表征视杆细胞和视锥细胞之间差异的研究中具有重要意义。

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