Specialized Retinal Endothelial Cells Modulate Blood-Retina Barrier in Diabetic Retinopathy

Author:

Yao Xuyang1ORCID,Zhao Ziyan2,Zhang Wenhui2,Liu Ruixin2,Ni Tianwen1,Cui Bohao3,Lei Yi3,Du Jie4,Ai Ding2ORCID,Jiang Hongfeng4,Lv Huizhen12,Li Xiaorong1

Affiliation:

1. 1Tianjin Key Laboratory of Retinal Functions and Diseases, Tianjin Branch of National Clinical Research Centre for Ocular Disease, Eye Institute and School of Optometry, Tianjin Medical University Eye Hospital, Tianjin Medical University, Tianjin, China

2. 2Department of Physiology and Pathophysiology, Tianjin Medical University, Tianjin, China

3. 3Department of Ophthalmology, Tianjin Medical University General Hospital, Tianjin, China

4. 4Experimental Research Center, Beijing Institute of Heart Lung and Blood Vessel Disease, Beijing Anzhen Hospital, Capital Medical University, Beijing, China

Abstract

Endothelial cells (EC) play essential roles in retinal vascular homeostasis. This study aimed to characterize retinal EC heterogeneity and functional diversity using single-cell RNA sequencing. Systematic analysis of cellular compositions and cell-cell interaction networks identified a unique EC cluster with high inflammatory gene expression in diabetic retina; sphingolipid metabolism is a prominent aspect correlated with changes in retinal function. Among sphingolipid-related genes, alkaline ceramidase 2 (ACER2) showed the most significant increase. Plasma samples of patients with nonproliferative diabetic retinopathy (NPDR) with diabetic macular edema (DME) or without DME (NDME) and active proliferative DR (PDR) were collected for mass spectrometry analysis. Metabolomic profiling revealed that the ceramide levels were significantly elevated in NPDR-NDME/DME and further increased in active PDR compared with control patients. In vitro analyses showed that ACER2 overexpression retarded endothelial barrier breakdown induced by ceramide, while silencing of ACER2 further disrupted the injury. Moreover, intravitreal injection of the recombinant ACER2 adeno-associated virus rescued diabetes-induced vessel leakiness, inflammatory response, and neurovascular disease in diabetic mouse models. Together, this study revealed a new diabetes-specific retinal EC population and a negative feedback regulation pathway that reduces ceramide content and endothelial dysfunction by upregulating ACER2 expression. These findings provide insights into cell-type targeted interventions for diabetic retinopathy. Article Highlights

Funder

the Science&Technology Development Fund of Tianjin Education Commission for Higher Education

Open Project of Tianjin Key Laboratory of Retinal Functions and Diseases

National Natural Science Foundation of China

Tianjin Key Medical Discipline (Specialty) Construction Project

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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