SIRT6 deficiency in endothelial cells exacerbates oxidative stress by enhancing HIF1α accumulation and H3K9 acetylation at the Ero1α promoter

Author:

Guo Zhenyang1,Yu Xueting1,Zhao Shuang2,Zhong Xin1,Huang Dong1,Feng Runyang1,Li Peng1ORCID,Fang Zheyan1,Hu Yiqing1ORCID,Zhang Zhentao1,Abdurahman Mukaddas1,Huang Lei3,Zhao Yun456,Wang Xiangdong7,Ge Junbo1891011,Li Hua1ORCID

Affiliation:

1. Department of Cardiology, Zhongshan Hospital Shanghai Institute of Cardiovascular Diseases, Fudan University Shanghai China

2. Department of Medical Examination Shanghai Xuhui District Central Hospital Shanghai China

3. Department of Molecular Cell and Cancer Biology Program in Molecular Medicine University of Massachusetts Medical School MA USA

4. School of Life Science and Technology ShanghaiTech University Shanghai China

5. State Key Laboratory of Cell Biology Center for Excellence in Molecular Cell Science Chinese Academy of Sciences Shanghai Institute of Biochemistry and Cell Biology, University of Chinese Academy of Sciences Shanghai China

6. Key Laboratory of Systems Health Science of Zhejiang Province School of Life Science Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences Hangzhou China

7. Department of Pulmonary and Critical Care Medicine Zhongshan Hospital Shanghai Medical College Fudan University Shanghai China

8. Department of Cardiology Zhongshan Hospital, Fudan University Shanghai China

9. National Clinical Research Center for Interventional Medicine Shanghai China

10. Shanghai Clinical Research Center for Interventional Medicine Shanghai China

11. Key Laboratory of Viral Heart Diseases National Health Commission Shanghai China

Abstract

AbstractBackgroundSIRT6, an important NAD+‐dependent protein, protects endothelial cells from inflammatory and oxidative stress injuries. However, the role of SIRT6 in cardiac microvascular endothelial cells (CMECs) under ischemia‒reperfusion injury (IRI) remains unclear.MethodsThe HUVECs model of oxygen–glucose deprivation/reperfusion (OGD/R) was established to simulate the endothelial IRI in vitro. Endoplasmic reticulum oxidase 1 alpha (Ero1α) mRNA and protein levels in SIRT6‐overexpressing or SIRT6‐knockdown cells were measured by qPCR and Western blotting. The levels of H2O2 and mitochondrial reactive oxygen species (ROS) were detected to evaluate the status of oxidative stress. The effects of SIRT6 deficiency and Ero1α knockdown on cellular endoplasmic reticulum stress (ERS), inflammation, apoptosis and barrier function were detected by a series of molecular biological experiments and functional experiments in vitro. Chromatin immunoprecipitation, Western blotting, qPCR, and site‐specific mutation experiments were used to examine the underlying molecular mechanisms. Furthermore, endothelial cell‐specific Sirt6 knockout (ecSirt6−/−) mice were subjected to cardiac ischemia‒reperfusion surgery to investigate the effects of SIRT6 in CMECs in vivo.ResultsThe expression of Ero1α was significantly upregulated in SIRT6‐knockdown endothelial cells, and high Ero1α expression correlated with the accumulation of H2O2 and mitochondrial ROS. In addition, SIRT6 deficiency increased ERS, inflammation, apoptosis and endothelial permeability, and these effects could be significantly attenuated by Ero1α knockdown. The deacetylase catalytic activity of SIRT6 was important in regulating Ero1α expression and these biological processes. Mechanistically, SIRT6 inhibited the enrichment of HIF1α and p300 at the Ero1α promoter through deacetylating H3K9, thereby antagonizing HIF1α/p300‐mediated Ero1α expression. Compared with SIRT6‐wild‐type (SIRT6‐WT) cells, cells expressing the SIRT6‐H133Y‐mutant and SIRT6‐R65A‐mutant exhibited increased Ero1α expression. Furthermore, ecSirt6−/− mice subjected to ischemia‒reperfusion surgery exhibited increased Ero1α expression and ERS in CMECs and worsened injuries to microvascular barrier function and cardiac function.ConclusionsOur results revealed an epigenetic mechanism associated with SIRT6 and Ero1α expression and highlighted the therapeutic potential of targeting the SIRT6‐HIF1α/p300‐Ero1α axis.

Publisher

Wiley

Subject

Molecular Medicine,Medicine (miscellaneous)

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