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周细胞功能障碍和周细胞间隧穿纳米管的缺失导致青光眼的神经血管缺损。

Pericyte dysfunction and loss of interpericyte tunneling nanotubes promote neurovascular deficits in glaucoma.

机构信息

Department of Neuroscience, Université de Montréal, Montréal, QC H3C 3J7, Canada;

Neuroscience Division, Centre de Recherche du Centre Hospitalier de l'Université de Montréal, Montréal, QC H2X 0A9, Canada.

出版信息

Proc Natl Acad Sci U S A. 2022 Feb 15;119(7). doi: 10.1073/pnas.2110329119.

Abstract

Reduced blood flow and impaired neurovascular coupling are recognized features of glaucoma, the leading cause of irreversible blindness worldwide, but the mechanisms underlying these defects are unknown. Retinal pericytes regulate microcirculatory blood flow and coordinate neurovascular coupling through interpericyte tunneling nanotubes (IP-TNTs). Using two-photon microscope live imaging of the mouse retina, we found reduced capillary diameter and impaired blood flow at pericyte locations in eyes with high intraocular pressure, the most important risk factor to develop glaucoma. We show that IP-TNTs are structurally and functionally damaged by ocular hypertension, a response that disrupted light-evoked neurovascular coupling. Pericyte-specific inhibition of excessive Ca influx rescued hemodynamic responses, protected IP-TNTs and neurovascular coupling, and enhanced retinal neuronal function as well as survival in glaucomatous retinas. Our study identifies pericytes and IP-TNTs as potential therapeutic targets to counter ocular pressure-related microvascular deficits, and provides preclinical proof of concept that strategies aimed to restore intrapericyte calcium homeostasis rescue autoregulatory blood flow and prevent neuronal dysfunction.

摘要

血流减少和神经血管耦联受损是青光眼的特征,青光眼是全球导致不可逆失明的主要原因,但这些缺陷的机制尚不清楚。视网膜周细胞通过周细胞间隧穿纳米管 (IP-TNTs) 调节微循环血流并协调神经血管耦联。通过对小鼠视网膜的双光子显微镜实时成像,我们发现眼压升高的眼睛中,周细胞位置的毛细血管直径减小,血流受损。眼压升高是导致青光眼发展的最重要危险因素。我们表明,眼高压会导致 IP-TNTs 的结构和功能受损,从而破坏光诱发的神经血管耦联。周细胞特异性抑制过度的 Ca 内流可挽救血液动力学反应,保护 IP-TNTs 和神经血管耦联,并增强青光眼视网膜中的神经元功能和存活。我们的研究将周细胞和 IP-TNTs 确定为潜在的治疗靶点,以对抗与眼内压相关的微血管缺陷,并提供了临床前概念验证,即旨在恢复细胞内钙稳态的策略可挽救自动调节血流并防止神经元功能障碍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f233/8851476/c1b883e31540/pnas.2110329119fig01.jpg

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