Role of mechanically-sensitive cation channels Piezo1 and TRPV4 in trabecular meshwork cell mechanotransduction.

IF 3.4 3区 生物学 Q3 CELL BIOLOGY
Human Cell Pub Date : 2024-03-01 Epub Date: 2024-02-05 DOI:10.1007/s13577-024-01035-4
Lingling Jing, Kexin Liu, Feng Wang, Ying Su
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引用次数: 0

Abstract

Glaucoma is one of the leading causes of irreversible blindness in developed countries, and intraocular pressure (IOP) is primary and only treatable risk factor, suggesting that to a significant extent, glaucoma is a disease of IOP disorder and pathological mechanotransduction. IOP-lowering ways are limited to decreaseing aqueous humour (AH) production or increasing the uveoscleral outflow pathway. Still, therapeutic approaches have been lacking to control IOP by enhancing the trabecular meshwork (TM) pathway. Trabecular meshwork cells (TMCs) have endothelial and myofibroblast properties and are responsible for the renewal of the extracellular matrix (ECM). Mechanosensitive cation channels, including Piezo1 and TRPV4, are abundantly expressed in primary TMCs and trigger mechanostress-dependent ECM and cytoskeletal remodelling. However, prolonged mechanical stimulation severely affects cellular biosynthesis through TMC mechanotransduction, including signaling, gene expression, ECM remodelling, and cytoskeletal structural changes, involving outflow facilities and elevating IOP. As for the functional coupling relationship between Piezo1 and TRPV4 channels, inspired by VECs and osteoblasts, we hypothesized that Piezo1 may also act upstream of TRPV4 in glaucomatous TM tissue, mediating the activation of TRPV4 via Ca2+ inflow or Ca2+ binding to phospholipase A2(PLA2), and thus be involved in increasing TM outflow resistance and elevated IOP. Therefore, this review aims to help identify new potential targets for IOP stabilization in ocular hypertension and primary open-angle glaucoma by understanding the mechanical transduction mechanisms associated with the development of glaucoma and may provide ideas into novel treatments for preventing the progression of glaucoma by targeting mechanotransduction.

Abstract Image

机械敏感阳离子通道 Piezo1 和 TRPV4 在小梁网细胞机械传导中的作用
在发达国家,青光眼是导致不可逆失明的主要原因之一,而眼压(IOP)是主要的也是唯一可治疗的危险因素,这表明青光眼在很大程度上是一种眼压紊乱和病理机械传导的疾病。降低眼压的方法仅限于减少泪液分泌或增加葡萄膜巩膜流出途径。然而,目前仍缺乏通过增强小梁网(TM)途径来控制眼压的治疗方法。小梁网细胞(TMC)具有内皮细胞和肌成纤维细胞的特性,负责更新细胞外基质(ECM)。包括 Piezo1 和 TRPV4 在内的机械敏感性阳离子通道在原代小梁网细胞中大量表达,并触发依赖于机械应力的 ECM 和细胞骨架重塑。然而,长时间的机械刺激会通过 TMC 机械传导严重影响细胞的生物合成,包括信号传导、基因表达、ECM 重塑和细胞骨架结构变化,并涉及外流设施和眼压升高。至于 Piezo1 与 TRPV4 通道之间的功能耦合关系,受血管内皮细胞和成骨细胞的启发,我们假设 Piezo1 也可能在青光眼 TM 组织中作用于 TRPV4 的上游,通过 Ca2+ 流入或 Ca2+ 与磷脂酶 A2(PLA2) 结合介导 TRPV4 的激活,从而参与增加 TM 流出阻力和眼压升高。因此,本综述旨在通过了解与青光眼发展相关的机械传导机制,帮助确定眼压过高和原发性开角型青光眼稳定眼压的潜在新靶点,并为通过靶向机械传导预防青光眼进展的新型治疗方法提供思路。
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来源期刊
Human Cell
Human Cell CELL BIOLOGY-
CiteScore
5.90
自引率
2.30%
发文量
176
审稿时长
4.5 months
期刊介绍: Human Cell is the official English-language journal of the Japan Human Cell Society. The journal serves as a forum for international research on all aspects of the human cell, encompassing not only cell biology but also pathology, cytology, and oncology, including clinical oncology. Embryonic stem cells derived from animals, regenerative medicine using animal cells, and experimental animal models with implications for human diseases are covered as well. Submissions in any of the following categories will be considered: Research Articles, Cell Lines, Rapid Communications, Reviews, and Letters to the Editor. A brief clinical case report focusing on cellular responses to pathological insults in human studies may also be submitted as a Letter to the Editor in a concise and short format. Not only basic scientists but also gynecologists, oncologists, and other clinical scientists are welcome to submit work expressing new ideas or research using human cells.
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