Functions of TRPs in retinal tissue in physiological and pathological conditions.

IF 3.5 3区 医学 Q2 NEUROSCIENCES Frontiers in Molecular Neuroscience Pub Date : 2024-09-25 eCollection Date: 2024-01-01 DOI:10.3389/fnmol.2024.1459083
Thaianne Hanah Oliveira do Nascimento, Danniel Pereira-Figueiredo, Louise Veroneze, Amanda Alves Nascimento, Francesco De Logu, Romina Nassini, Paula Campello-Costa, Adriana da Cunha Faria-Melibeu, Daniel Souza Monteiro de Araújo, Karin Costa Calaza
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Abstract

The Transient Receptor Potential (TRP) constitutes a family of channels subdivided into seven subfamilies: Ankyrin (TRPA), Canonical (TRPC), Melastatin (TRPM), Mucolipin (TRPML), no-mechano-potential C (TRPN), Polycystic (TRPP), and Vanilloid (TRPV). Although they are structurally similar to one another, the peculiarities of each subfamily are key to the response to stimuli and the signaling pathway that each one triggers. TRPs are non-selective cation channels, most of which are permeable to Ca2+, which is a well-established second messenger that modulates several intracellular signaling pathways and is involved in physiological and pathological conditions in various cell types. TRPs depolarize excitable cells by increasing the influx of Ca2+, Na+, and other cations. Most TRP families are activated by temperature variations, membrane stretching, or chemical agents and, therefore, are defined as polymodal channels. All TPRs are expressed, at some level, in the central nervous system (CNS) and ocular-related structures, such as the retina and optic nerve (ON), except the TRPP in the ON. TRPC, TRPM, TRPV, and TRPML are found in the retinal pigmented cells, whereas only TRPA1 and TRPM are detected in the uvea. Accordingly, several studies have focused on the search to unravel the role of TRPs in physiological and pathological conditions related to the eyes. Thus, this review aims to shed light on endogenous and exogenous modulators, triggered cell signaling pathways, and localization and roles of each subfamily of TRP channels in physiological and pathological conditions in the retina, optic nerve, and retinal pigmented epithelium of vertebrates.

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生理和病理条件下视网膜组织中 TRPs 的功能。
瞬态受体电位(TRP)是一个通道家族,细分为七个亚家族:Ankyrin (TRPA)、Canonical (TRPC)、Melastatin (TRPM)、Mucolipin (TRPML)、no-mechano-potential C (TRPN)、Polycystic (TRPP) 和 Vanilloid (TRPV)。虽然它们在结构上彼此相似,但每个亚家族的特殊性是它们对刺激做出反应和触发信号通路的关键。TRPs是非选择性阳离子通道,其中大多数对Ca2+具有通透性,而Ca2+是一种公认的第二信使,可调节多种细胞内信号通路,并参与各类细胞的生理和病理状态。TRPs 通过增加 Ca2+、Na+ 和其他阳离子的流入,使可兴奋细胞去极化。大多数 TRP 家族都能被温度变化、膜伸展或化学试剂激活,因此被定义为多模式通道。除了在视网膜和视神经(ON)中的 TRPP 外,所有 TRP 在中枢神经系统(CNS)和眼部相关结构(如视网膜和视神经)中都有一定程度的表达。视网膜色素细胞中存在 TRPC、TRPM、TRPV 和 TRPML,而葡萄膜中只检测到 TRPA1 和 TRPM。因此,一些研究集中于揭示 TRPs 在与眼睛有关的生理和病理状况中的作用。因此,本综述旨在阐明脊椎动物视网膜、视神经和视网膜色素上皮中的内源性和外源性调节剂、触发的细胞信号传导途径以及各 TRP 通道亚家族在生理和病理情况下的定位和作用。
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来源期刊
CiteScore
5.70
自引率
2.10%
发文量
669
审稿时长
14 weeks
期刊介绍: Frontiers in Molecular Neuroscience is a first-tier electronic journal devoted to identifying key molecules, as well as their functions and interactions, that underlie the structure, design and function of the brain across all levels. The scope of our journal encompasses synaptic and cellular proteins, coding and non-coding RNA, and molecular mechanisms regulating cellular and dendritic RNA translation. In recent years, a plethora of new cellular and synaptic players have been identified from reduced systems, such as neuronal cultures, but the relevance of these molecules in terms of cellular and synaptic function and plasticity in the living brain and its circuits has not been validated. The effects of spine growth and density observed using gene products identified from in vitro work are frequently not reproduced in vivo. Our journal is particularly interested in studies on genetically engineered model organisms (C. elegans, Drosophila, mouse), in which alterations in key molecules underlying cellular and synaptic function and plasticity produce defined anatomical, physiological and behavioral changes. In the mouse, genetic alterations limited to particular neural circuits (olfactory bulb, motor cortex, cortical layers, hippocampal subfields, cerebellum), preferably regulated in time and on demand, are of special interest, as they sidestep potential compensatory developmental effects.
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