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SIRT3 缺乏使血管紧张素Ⅱ诱导的肾纤维化敏感化。

SIRT3 Deficiency Sensitizes Angiotensin-II-Induced Renal Fibrosis.

机构信息

Department of Pharmacology and Toxicology, School of Medicine, University of Mississippi Medical Center, Jackson, MS 39216, USA.

出版信息

Cells. 2020 Nov 20;9(11):2510. doi: 10.3390/cells9112510.

Abstract

BACKGROUND

Sirtuin 3 (SIRT3) has a crucial role in the cardiovascular diseases. Our previous study revealed that SIRT3 knockout (SIRT3KO) promoted cardiac pericyte-fibroblast transition. In this study, we investigated the involvement of pericyte and iron in angiotensin II (Ang-II)-mediated renal fibrosis in the SIRT3KO mice.

METHODS AND RESULTS

NG2-DsRed mice and NG2-DsRed-SIRT3 knockout (SIRT3KO) mice were infused with saline or Ang-II (1000 ng/kg/min) for 4 weeks. Renal fibrosis, iron content and reactive oxygen species (ROS) were measured. Masson's trichrome staining showed that SIRT3KO enhanced Ang-II-induced renal fibrosis. Immunostaining showed that Ang-II treatment increased the number of NG2-DsRed+ cells in the kidney, and SIRT3KO further enhanced NG2-DsRed+ cells. Moreover, SIRT3KO promoted pericyte differentiation into fibroblasts as evidenced by co-staining NG2-DsRed/FSP-1. Furthermore, DsRed/FSP-1+ and DsRed/transforming growth factor-β1 (TGF-β1)+ fibroblasts were elevated by SIRT3KO after Ang-II infusion. Ang-II-induced collagen I and TGF-β1 expression was also enhanced in the SIRT3KO mice. SIRT3KO significantly exacerbated Ang-II-induced iron accumulation. This was accompanied by an increase in acetyl-p53, HO-1 and FPN expression. Further, SIRT3KO sensitized Ang-II-induced upregulation of p47phox and gp91phox together with increased ROS formation in the kidney.

CONCLUSION

Our study suggests that SIRT3 deficiency sensitized Ang-II-induced renal fibrosis by the mechanisms involved in promoting differentiation of pericytes into fibroblasts, exacerbating iron overload and accelerating NADPH oxidase-derived ROS formation.

摘要

背景

Sirtuin 3(SIRT3)在心血管疾病中起着至关重要的作用。我们之前的研究表明,SIRT3 敲除(SIRT3KO)促进了心脏周细胞-成纤维细胞转化。在这项研究中,我们研究了周细胞和铁在 SIRT3KO 小鼠血管紧张素 II(Ang-II)介导的肾纤维化中的作用。

方法和结果

用生理盐水或 Ang-II(1000ng/kg/min)对 NG2-DsRed 小鼠和 NG2-DsRed-SIRT3 敲除(SIRT3KO)小鼠进行 4 周输注。测量肾纤维化、铁含量和活性氧(ROS)。Masson 三色染色显示 SIRT3KO 增强了 Ang-II 诱导的肾纤维化。免疫染色显示 Ang-II 处理增加了肾脏中 NG2-DsRed+细胞的数量,而 SIRT3KO 进一步增加了 NG2-DsRed+细胞。此外,SIRT3KO 促进了周细胞向成纤维细胞的分化,这可以通过 NG2-DsRed/FSP-1 共染色来证明。此外,DsRed/FSP-1+和 DsRed/转化生长因子-β1(TGF-β1)+成纤维细胞在 Ang-II 输注后在 SIRT3KO 中升高。Ang-II 还增强了 SIRT3KO 小鼠中胶原 I 和 TGF-β1 的表达。SIRT3KO 显著加重了 Ang-II 诱导的铁积累。这伴随着乙酰化 p53、HO-1 和 FPN 表达的增加。此外,SIRT3KO 使 Ang-II 诱导的 p47phox 和 gp91phox 上调以及肾脏中 ROS 形成增加敏感化。

结论

我们的研究表明,SIRT3 缺乏通过促进周细胞向成纤维细胞分化、加剧铁过载和加速 NADPH 氧化酶衍生的 ROS 形成的机制,使 Ang-II 诱导的肾纤维化敏感化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/628b/7699810/8264018239ce/cells-09-02510-g001.jpg

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本文引用的文献

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Hypertension. 2018 Aug;72(2):350-360. doi: 10.1161/HYPERTENSIONAHA.118.10482. Epub 2018 Jun 18.

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