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功能性 cGMP 信号转导导致小鼠年龄相关性视网膜血管改变和星形胶质细胞重塑。

Dysfunctional cGMP Signaling Leads to Age-Related Retinal Vascular Alterations and Astrocyte Remodeling in Mice.

机构信息

Vanderbilt Eye Institute, Vanderbilt University Medical Center, Nashville, TN 37232, USA.

出版信息

Int J Mol Sci. 2022 Mar 12;23(6):3066. doi: 10.3390/ijms23063066.

Abstract

The nitric oxide-guanylyl cyclase-1-cyclic guanylate monophosphate (NO-GC-1-cGMP) pathway is integral to the control of vascular tone and morphology. Mice lacking the alpha catalytic domain of guanylate cyclase () develop retinal ganglion cell (RGC) degeneration with age, with only modest fluctuations in intraocular pressure (IOP). Increasing the bioavailability of cGMP in mice prevents neurodegeneration independently of IOP, suggesting alternative mechanisms of retinal neurodegeneration. In continuation to these studies, we explored the hypothesis that dysfunctional cGMP signaling leads to changes in the neurovascular unit that may contribute to RGC degeneration. We assessed retinal vasculature and astrocyte morphology in young and aged and wild type mice. mice exhibit increased peripheral retinal vessel dilation and shorter retinal vessel branching with increasing age compared to Wt mice. Astrocyte cell morphology is aberrant, and glial fibrillary acidic protein (GFAP) density is increased in young and aged mice, with areas of dense astrocyte matting around blood vessels. Our results suggest that proper cGMP signaling is essential to retinal vessel morphology with increasing age. Vascular changed are preceded by alterations in astrocyte morphology which may together contribute to retinal neurodegeneration and loss of visual acuity observed in mice.

摘要

一氧化氮-鸟苷酸环化酶-1-环鸟苷酸单磷酸(NO-GC-1-cGMP)途径是血管张力和形态控制的重要组成部分。缺乏鸟苷酸环化酶的α催化结构域()的小鼠随着年龄的增长会发生视网膜神经节细胞(RGC)变性,而眼内压(IOP)仅有适度波动。增加 小鼠中环鸟苷酸(cGMP)的生物利用度可独立于 IOP 预防神经退行性变,表明存在视网膜神经退行性变的其他机制。在这些研究的基础上,我们探讨了假设,即功能失调的 cGMP 信号转导导致神经血管单元发生变化,这可能导致 RGC 变性。我们评估了年轻和老年 和野生型小鼠的视网膜血管和星形胶质细胞形态。与野生型小鼠相比,随着年龄的增长, 小鼠的周边视网膜血管扩张和视网膜血管分支变短。年轻和老年 小鼠的星形胶质细胞形态异常,神经胶质纤维酸性蛋白(GFAP)密度增加,血管周围有密集的星形胶质细胞融合区。我们的结果表明,适当的 cGMP 信号转导对于年龄增长时的视网膜血管形态至关重要。血管变化先于星形胶质细胞形态的改变,这可能共同导致 小鼠中观察到的视网膜神经退行性变和视力丧失。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d61d/8954518/6e68774496cd/ijms-23-03066-g001.jpg

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