Zhang Yuxi, Yang Xiongyi, Deng Xiaoqing, Yang Siyu, Li Qiumo, Xie Zhuohang, Hong Libing, Cao Mingzhe, Yi Guoguo, Fu Min
Zhujiang Hospital, Southern Medical University, Guangzhou, PR China; The Second Clinical School, Southern Medical University, Guangzhou, Guangdong, PR China.
Department of Ophthalmology, The Seventh Affiliated Hospital, Sun Yat-Sen University, Shenzhen, PR China.
Exp Neurol. 2023 Apr;362:114345. doi: 10.1016/j.expneurol.2023.114345. Epub 2023 Feb 2.
The retinal neurovascular unit (NVU) is paramount to maintaining the homeostasis of the retina and determines the progression of various diseases, including diabetic retinopathy (DR), glaucoma, and retinopathy of prematurity (ROP). Although some studies have investigated these diseases, a combined analysis of disease-wide etiology in the NUV at the single-cell level is lacking. Herein, we constructed an atlas of the NVU under inflammatory and hypoxic conditions by integrating single-cell transcriptome data from retinas from wild-type, AireKO, and NdpKO mice. Based on the heterogeneity of the NVU structure and transcriptome diversity under normal and pathological conditions, we discovered two subpopulations of Müller cells: Aqp4 and Aqp4 cells. Specifically, Aqp4 cells expresses phototransduction genes and represent a special type of Müller cell distinct from Aqp4 cells, classical Müller cells. AireKO mice exhibit experimental autoimmune uveitis (EAU) with severe damage to the NVU structure, mainly degeneration of Aqp4 cells. NdpKO mice exhibited familial exudative vitreoretinopathy (FEVR), with damage to the endothelial barrier, endothelial cell tight junction destruction and basement membrane thickening, accompanied by the reactive secretion of proangiogenic factors by Aqp4 cells. In both EAU and FEVR, Aqp4 cells are a key factor leading to NVU damage, and the mechanism by which they are generated is regulated by different transcription factors. By studying the pattern of immune cell infiltration in AireKO mice, we constructed a regulatory loop of "inflammatory cells/NVU - monocytes - APCs - Ifng T cells", providing a new target for blocking the inflammatory cascade. Our elucidation of the cell-specific molecular changes, cell-cell interactions and transcriptional mechanisms of the retinal NVU provides new insights to support the development of multipurpose drugs to block or even reverse NVU damage.
视网膜神经血管单元(NVU)对于维持视网膜的内环境稳定至关重要,并决定包括糖尿病视网膜病变(DR)、青光眼和早产儿视网膜病变(ROP)在内的各种疾病的进展。尽管一些研究已经对这些疾病进行了调查,但缺乏在单细胞水平上对NVU中全疾病病因的综合分析。在此,我们通过整合来自野生型、AireKO和NdpKO小鼠视网膜的单细胞转录组数据,构建了炎症和缺氧条件下NVU的图谱。基于正常和病理条件下NVU结构的异质性和转录组多样性,我们发现了Müller细胞的两个亚群:Aqp4+和Aqp4-细胞。具体而言,Aqp4+细胞表达光转导基因,代表一种不同于Aqp4-细胞(经典Müller细胞)的特殊类型的Müller细胞。AireKO小鼠表现出实验性自身免疫性葡萄膜炎(EAU),NVU结构严重受损,主要是Aqp4+细胞变性。NdpKO小鼠表现出家族性渗出性玻璃体视网膜病变(FEVR),伴有内皮屏障受损、内皮细胞紧密连接破坏和基底膜增厚,同时Aqp4-细胞有促血管生成因子的反应性分泌。在EAU和FEVR中,Aqp4+细胞都是导致NVU损伤的关键因素,其产生机制受不同转录因子调控。通过研究AireKO小鼠中免疫细胞浸润模式,我们构建了“炎症细胞/NVU - 单核细胞 - APCs - Ifng+ T细胞”的调节环路,为阻断炎症级联反应提供了新靶点。我们对视网膜NVU细胞特异性分子变化、细胞间相互作用和转录机制的阐明,为支持开发阻断甚至逆转NVU损伤的多用途药物提供了新见解。