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高效且一致地从人眼生成用于组织学分析的视网膜色素上皮/脉络膜平铺标本。

Efficient and Consistent Generation of Retinal Pigment Epithelium/Choroid Flatmounts from Human Eyes for Histological Analysis.

机构信息

Ocular and Stem Cell Translational Research Section, National Eye Institute, National Institutes of Health (NIH);

Ocular and Stem Cell Translational Research Section, National Eye Institute, National Institutes of Health (NIH).

出版信息

J Vis Exp. 2022 Oct 28(188). doi: 10.3791/64761.

Abstract

The retinal pigment epithelium (RPE) and retina are functionally and structurally connected tissues that work together to regulate light perception and vision. Proteins on the RPE apical surface are tightly associated with proteins on the photoreceptor outer segment surface, making it difficult to consistently separate the RPE from the photoreceptors/retina. We developed a method to efficiently separate the retina from the RPE of human eyes to generate complete RPE/choroid and retina flatmounts for separate cellular analysis of the photoreceptors and RPE cells. An intravitreal injection of a high-osmolarity solution of D-mannitol, a sugar not transported by the RPE, induced the separation of the RPE and retina across the entire posterior chamber without causing damage to the RPE cell junctions. No RPE patches were observed attached to the retina. Phalloidin labeling of actin showed RPE shape preservation and allowed morphometric analysis of the entire epithelium. An artificial intelligence (AI)-based software was developed to accurately recognize and segment the RPE cell borders and quantify 30 different shape metrics. This dissection method is highly reproducible and can be easily extended to other animal models.

摘要

视网膜色素上皮(RPE)和视网膜是功能和结构上相连的组织,共同调节光感知和视觉。RPE 顶表面的蛋白质与光感受器外节表面的蛋白质紧密相关,这使得很难将 RPE 与光感受器/视网膜一致地分离。我们开发了一种从人眼有效分离视网膜和 RPE 的方法,以生成完整的 RPE/脉络膜和视网膜平面贴附物,用于对光感受器和 RPE 细胞进行单独的细胞分析。向玻璃体腔注射高渗透压的 D-甘露醇溶液,D-甘露醇是一种 RPE 不转运的糖,可诱导 RPE 和视网膜在整个后房分离,而不会对 RPE 细胞连接造成损伤。没有观察到 RPE 斑块附着在视网膜上。鬼笔环肽标记肌动蛋白显示 RPE 形态保持,并允许对整个上皮进行形态计量分析。开发了一种基于人工智能(AI)的软件,用于准确识别和分割 RPE 细胞边界,并量化 30 种不同的形状度量。这种解剖方法具有高度的可重复性,并且可以很容易地扩展到其他动物模型。

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