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组蛋白去乙酰化酶 9 通过表观遗传抑制 Klotho 加重高同型半胱氨酸血症中的足细胞损伤。

Histone deacetylase 9 exacerbates podocyte injury in hyperhomocysteinemia through epigenetic repression of Klotho.

机构信息

Department of Pharmacology, School of Basic Medical Sciences, Shandong University, Jinan 250012, China.

Department of Obstetrics, the Second Hospital, Cheeloo College of Medicine, Shandong University, Jinan 250033, China.

出版信息

Pharmacol Res. 2023 Dec;198:107009. doi: 10.1016/j.phrs.2023.107009. Epub 2023 Nov 22.

DOI:10.1016/j.phrs.2023.107009
PMID:37995896
Abstract

Although hyperhomocysteinemia (hHcys) has been recognized as an important independent risk factor in the progression of end-stage renal disease and the development of cardiovascular complications related to end-stage renal disease, the mechanisms triggering pathogenic actions of hHcys are not fully understood. The present study was mainly designed to investigate the role of HDACs in renal injury induced by hHcys. Firstly, we identified the expression patterns of HDACs and found that, among zinc-dependent HDACs, HDAC9 was preferentially upregulated in the kidney from mice with hHcys. Deficiency or pharmacological inhibition of HDAC9 ameliorated renal injury in mice with hHcys. Moreover, podocyte-specific deletion of HDAC9 significantly attenuated podocyte injury and proteinuria. In vitro, gene silencing of HDAC9 attenuated podocyte injury by inhibiting apoptosis, reducing oxidative stress and maintaining the expressions of podocyte slit diaphragm proteins. Mechanically, we proved for the first time that HDAC9 reduced the acetylation level of H3K9 in the promoter of Klotho, then inhibited gene transcription of Klotho, finally aggravating podocyte injury in hHcys. In conclusion, our results indicated that targeting of HDAC9 might be an attractive therapeutic strategy for the treatment of renal injury induced by hHcys.

摘要

尽管高同型半胱氨酸血症(hHcys)已被认为是终末期肾脏疾病进展和与终末期肾脏疾病相关的心血管并发症发展的重要独立危险因素,但触发 hHcys 致病作用的机制尚未完全阐明。本研究主要旨在探讨 HDACs 在 hHcys 诱导的肾脏损伤中的作用。首先,我们鉴定了 HDACs 的表达模式,发现在锌依赖性 HDACs 中,HDAC9 在 hHcys 小鼠肾脏中优先上调。HDAC9 的缺失或药理学抑制可改善 hHcys 小鼠的肾脏损伤。此外,足细胞特异性敲除 HDAC9 可显著减轻足细胞损伤和蛋白尿。在体外,HDAC9 的基因沉默通过抑制细胞凋亡、减少氧化应激和维持足细胞裂孔隔膜蛋白的表达来减轻足细胞损伤。在机制上,我们首次证明 HDAC9 降低了 Klotho 启动子上 H3K9 的乙酰化水平,从而抑制了 Klotho 的基因转录,最终加重了 hHcys 中的足细胞损伤。总之,我们的结果表明,靶向 HDAC9 可能是治疗 hHcys 诱导的肾脏损伤的一种有吸引力的治疗策略。

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