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代谢失衡对视网膜穆勒神经胶质细胞重编程能力的影响:组蛋白去乙酰化酶SIRT6的作用

Metabolic Imbalance Effect on Retinal Müller Glial Cells Reprogramming Capacity: Involvement of Histone Deacetylase SIRT6.

作者信息

Sanhueza Salas L Francisco, García-Venzor Alfredo, Beltramone Natalia, Capurro Claudia, Toiber Debra, Silberman Dafne Magalí

机构信息

Centro de Estudios Farmacológicos y Botánicos (CEFYBO-UBA-CONICET), Facultad de Medicina, Universidad de Buenos Aires, Buenos Aires, Argentina.

Department of Life Sciences, Ben-Gurion University of the Negev, Beer Sheva, Israel.

出版信息

Front Genet. 2021 Nov 4;12:769723. doi: 10.3389/fgene.2021.769723. eCollection 2021.

Abstract

Retinal Müller glial cells (MGs) are among the first to demonstrate metabolic changes during retinal disease and are a potential source of regenerative cells. In response to a harmful stimulus, they can dedifferentiate acquiring neural stem cells properties, proliferate and migrate to the damaged retinal layer and differentiate into lost neurons. However, it is not yet known how this reprogramming process is regulated in mammals. Since glucose and oxygen are important regulatory elements that may help directing stem cell fate, we aimed to study the effect of glucose variations and oxidative stress in Müller cells reprogramming capacity and analyze the participation the histone deacetylase SIRT6, as an epigenetic modulator of this process. We found that the combination of high glucose and oxidative stress induced a decrease in the levels of the marker glutamine synthetase, and an increase in the migration capacity of the cells suggesting that these experimental conditions could induce some degree of dedifferentiation and favor the migration ability. High glucose induced an increase in the levels of the pluripotent factor SOX9 and a decrease in SIRT6 levels accompanied by the increase in the acetylation levels of H3K9. Inhibiting SIRT6 expression by siRNA rendered an increase in SOX9 levels. We also determined SOX9 levels in retinas from mice with a conditional deletion of SIRT6 in the CNS. To further understand the mechanisms that regulate MGs response under metabolic impaired conditions, we evaluated the gene expression profile and performed Gene Ontology enrichment analysis of Müller cells from a murine model of Diabetes. We found several differentially expressed genes and observed that the transcriptomic change involved the enrichment of genes associated with glucose metabolism, cell migration, development and pluripotency. We found that many functional categories affected in cells of diabetic animals were directly related to SIRT6 function. Transcription factors enrichment analysis allowed us to predict several factors, including SOX9, that may be involved in the modulation of the differential expression program observed in diabetic MGs. Our results underline the heterogeneity of Müller cells response and the challenge that the study of metabolic impairment represents.

摘要

视网膜穆勒神经胶质细胞(MGs)是视网膜疾病期间最早表现出代谢变化的细胞之一,并且是再生细胞的一个潜在来源。在对有害刺激作出反应时,它们可以去分化获得神经干细胞特性,增殖并迁移到受损的视网膜层,然后分化为丢失的神经元。然而,目前尚不清楚在哺乳动物中这种重编程过程是如何被调控的。由于葡萄糖和氧气是可能有助于指导干细胞命运的重要调控因子,我们旨在研究葡萄糖变化和氧化应激对穆勒细胞重编程能力的影响,并分析组蛋白脱乙酰酶SIRT6作为该过程的表观遗传调节剂的参与情况。我们发现高葡萄糖和氧化应激的组合导致标志物谷氨酰胺合成酶水平降低,细胞迁移能力增强,这表明这些实验条件可诱导一定程度的去分化并有利于迁移能力。高葡萄糖诱导多能因子SOX9水平升高,SIRT6水平降低,同时H3K9乙酰化水平升高。通过小干扰RNA抑制SIRT6表达导致SOX9水平升高。我们还测定了中枢神经系统中条件性缺失SIRT6的小鼠视网膜中的SOX9水平。为了进一步了解在代谢受损条件下调节MGs反应的机制,我们评估了基因表达谱,并对糖尿病小鼠模型中的穆勒细胞进行了基因本体富集分析。我们发现了几个差异表达基因,并观察到转录组变化涉及与葡萄糖代谢、细胞迁移、发育和多能性相关的基因富集。我们发现糖尿病动物细胞中受影响的许多功能类别与SIRT6功能直接相关。转录因子富集分析使我们能够预测几个可能参与调节糖尿病MGs中观察到的差异表达程序的因子,包括SOX9。我们的结果强调了穆勒细胞反应的异质性以及代谢损伤研究所带来的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b10e/8599966/a96b78de81c2/fgene-12-769723-g001.jpg

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