Polarized desmosome and hemidesmosome shedding via small extracellular vesicles is an early indicator of outer blood-retina barrier dysfunction

Belinda J. Hernandez, Nikolai P. Skiba, Karolina Plössl, Madison Strain, Yutao Liu, Daniel Grigsby, Una Kelly, Martha A. Cady, Vikram Manocha, Arvydas Maminishkis, TeddiJo Watkins, Sheldon S. Miller, Allison Ashley-Koch, W. Daniel Stamer, Bernhard H. F. Weber, Catherine Bowes Rickman, Mikael Klingeborn
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Abstract

The retinal pigmented epithelium (RPE) constitutes the outer blood-retinal barrier, enables photoreceptor function of the eye, and is constantly exposed to oxidative stress. As such, dysfunction of the RPE underlies pathology leading to development of age-related macular degeneration (AMD), the leading cause of vision loss among the elderly in industrialized nations. A major responsibility of the RPE is to process photoreceptor outer segments, which relies on the proper functioning of its endocytic pathways and endosomal trafficking. Exosomes and other extracellular vesicles (EVs) from RPE are an essential part of these pathways and may be early indicators of cellular stress. To test the role of small EVs (sEVs) including exosomes, that may underlie the early stages of AMD, we used a polarized primary RPE cell culture model under chronic subtoxic oxidative stress. Unbiased proteomic analyses of highly purified basolateral sEVs from oxidatively stressed RPE cultures revealed changes in proteins involved in epithelial barrier integrity. There were also significant changes in proteins accumulating in the basal-side sub-RPE extracellular matrix during oxidative stress, that could be prevented with an inhibitor of sEV release. Thus, chronic subtoxic oxidative stress in primary RPE cultures induces changes in sEV content, including basal-side specific desmosome and hemidesmosome shedding via sEVs. These findings provide novel biomarkers of early cellular dysfunction and opportunity for therapeutic intervention in age-related retinal diseases (e.g., AMD).

Abstract Image

通过细胞外小泡脱落的极性桥粒和半桥粒是外血视网膜屏障功能障碍的早期指标
视网膜色素上皮(RPE)构成了外血视网膜屏障,使眼睛具有感光功能,并不断暴露于氧化应激中。因此,RPE功能障碍是导致年龄相关性黄斑变性(AMD)发展的病理学基础,AMD是工业化国家老年人视力下降的主要原因。RPE的主要职责是处理光感受器外段,这依赖于其内吞途径和内体运输的正常功能。RPE的外泌体和其他细胞外小泡(EV)是这些途径的重要组成部分,可能是细胞应激的早期指标。为了测试包括外泌体在内的小EV(sEV)的作用,这可能是AMD早期的基础,我们使用了慢性亚毒性氧化应激下的极化原代RPE细胞培养模型。来自氧化应激RPE培养物的高度纯化的基底外侧sEV的无偏蛋白质组学分析揭示了参与上皮屏障完整性的蛋白质的变化。在氧化应激过程中,RPE基底侧亚基细胞外基质中积累的蛋白质也发生了显著变化,这可以通过sEV释放抑制剂来预防。因此,原代RPE培养物中的慢性亚毒性氧化应激诱导sEV含量的变化,包括基底侧特异性桥粒和半桥粒通过sEV脱落。这些发现为早期细胞功能障碍提供了新的生物标志物,并为年龄相关视网膜疾病(如AMD)的治疗干预提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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