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本文引用的文献

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Modulation of Membrane Trafficking of AQP5 in the Lens in Response to Changes in Zonular Tension Is Mediated by the Mechanosensitive Channel TRPV1.机械敏感通道 TRPV1 介导了对悬韧带张力变化的响应中 AQP5 的膜转运的调节。
Int J Mol Sci. 2023 May 22;24(10):9080. doi: 10.3390/ijms24109080.
2
Aquaporin-5 Dynamic Regulation.水通道蛋白-5 的动态调控。
Int J Mol Sci. 2023 Jan 18;24(3):1889. doi: 10.3390/ijms24031889.
3
Regulation of lens water content: Effects on the physiological optics of the lens.晶状体含水量的调节:对晶状体生理光学的影响。
Prog Retin Eye Res. 2023 Jul;95:101152. doi: 10.1016/j.preteyeres.2022.101152. Epub 2022 Dec 5.
4
Lens Aquaporin-5 Inserts Into Bovine Fiber Cell Plasma Membranes Via Unconventional Protein Secretion.水通道蛋白-5 通过非常规蛋白分泌途径插入牛纤维细胞质膜。
Invest Ophthalmol Vis Sci. 2022 Jul 8;63(8):5. doi: 10.1167/iovs.63.8.5.
5
Mapping Glucose Uptake, Transport and Metabolism in the Bovine Lens Cortex.牛晶状体皮质中葡萄糖摄取、转运和代谢的图谱绘制
Front Physiol. 2022 May 31;13:901407. doi: 10.3389/fphys.2022.901407. eCollection 2022.
6
Lens Aquaporins in Health and Disease: Location is Everything!健康与疾病中的晶状体水通道蛋白:位置决定一切!
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7
Intracellular hydrostatic pressure regulation in the bovine lens: a role in the regulation of lens optics?牛晶状体中的细胞内静水压力调节:在晶状体光学调节中起作用?
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Spatially Resolved Proteomic Analysis of the Lens Extracellular Diffusion Barrier.空间分辨蛋白质组学分析晶状体细胞外扩散屏障。
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AQP5 regulates vimentin expression via miR-124-3p.1 to protect lens transparency.AQP5 通过 miR-124-3p.1 调节波形蛋白的表达以保护晶状体透明性。
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眼晶状体中水流的调节:水通道蛋白的新作用。

Regulation of water flow in the ocular lens: new roles for aquaporins.

作者信息

Donaldson Paul J, Petrova Rosica S, Nair Nikhil, Chen Yadi, Schey Kevin L

机构信息

Department of Physiology, School of Medical Sciences, New Zealand National Eye Center, University of Auckland, Auckland, New Zealand.

Department of Biochemistry, Vanderbilt University, Nashville, TN, USA.

出版信息

J Physiol. 2024 Jul;602(13):3041-3056. doi: 10.1113/JP284102. Epub 2023 Oct 16.

DOI:10.1113/JP284102
PMID:37843390
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11018719/
Abstract

The ocular lens is an important determinant of overall vision quality whose refractive and transparent properties change throughout life. The lens operates an internal microcirculation system that generates circulating fluxes of ions, water and nutrients that maintain the transparency and refractive properties of the lens. This flow of water generates a substantial hydrostatic pressure gradient which is regulated by a dual feedback system that uses the mechanosensitive channels TRPV1 and TRPV4 to sense decreases and increases, respectively, in the pressure gradient. This regulation of water flow (pressure) and hence overall lens water content, sets the two key parameters, lens geometry and the gradient of refractive index, which determine the refractive properties of the lens. Here we focus on the roles played by the aquaporin family of water channels in mediating lens water fluxes, with a specific focus on AQP5 as a regulated water channel in the lens. We show that in addition to regulating the activity of ion transporters, which generate local osmotic gradients that drive lens water flow, the TRPV1/4-mediated dual feedback system also modulates the membrane trafficking of AQP5 in the anterior influx pathway and equatorial efflux zone of the lens. Since both lens pressure and AQP5-mediated water permeability ( ) can be altered by changes in the tension applied to the lens surface via modulating ciliary muscle contraction we propose extrinsic modulation of lens water flow as a potential mechanism to alter the refractive properties of the lens to ensure light remains focused on the retina throughout life.

摘要

晶状体是整体视觉质量的重要决定因素,其屈光和透明特性在一生中都会发生变化。晶状体运作着一个内部微循环系统,该系统产生离子、水和营养物质的循环通量,以维持晶状体的透明度和屈光特性。这种水流会产生一个相当大的静水压力梯度,该梯度由一个双反馈系统调节,该系统分别利用机械敏感通道TRPV1和TRPV4来感知压力梯度的降低和增加。这种对水流(压力)以及晶状体整体含水量的调节,设定了两个关键参数,即晶状体几何形状和折射率梯度,它们决定了晶状体的屈光特性。在这里,我们重点关注水通道蛋白家族在介导晶状体水通量中所起的作用,特别关注AQP5作为晶状体中一种受调节的水通道。我们表明,除了调节离子转运体的活性(离子转运体产生驱动晶状体水流的局部渗透梯度)外,TRPV1/4介导的双反馈系统还调节AQP5在晶状体前向流入途径和赤道流出区的膜转运。由于通过调节睫状肌收缩施加在晶状体表面的张力变化可以改变晶状体压力和AQP5介导的水通透性( ),我们提出晶状体水流的外在调节是一种潜在机制,可改变晶状体的屈光特性,以确保光线在一生中始终聚焦在视网膜上。