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通过sFRP3启动子甲基化对线粒体分裂和心脏纤维化的表观遗传调控

Epigenetic regulation of mitochondrial fission and cardiac fibrosis via sFRP3 promoter methylation.

作者信息

Jiang Shun-Xiang, Zhou Ze-Yu, Tu Bin, Song Kai, Lin Li-Chan, Liu Zhi-Yan, Cao Wei, Zhao Jian-Yuan, Tao Hui

机构信息

Department of Thoracic Surgery, The Second Affiliated Hospital of Anhui Medical University, Hefei, 230601, People's Republic of China.

Institute for Developmental and Regenerative Cardiovascular Medicine, MOE-Shanghai Key Laboratory of Children's Environmental Health, Xinhua Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200092, China.

出版信息

Cell Mol Life Sci. 2024 Dec 7;81(1):483. doi: 10.1007/s00018-024-05516-5.

Abstract

In the process of cardiac fibrosis, the balance between the Wnt/β-catenin signalling pathway and Wnt inhibitory factor genes plays an important role. Secreted frizzled-related protein 3 (sFRP3), a Wnt inhibitory factor, has been linked to epigenetic mechanisms. However, the underlying role of epigenetic regulation of sFRP3, which is crucial in fibroblast proliferation and migration, in cardiac fibrosis have not been elucidated. Therefore, we aimed to investigate epigenetic and transcription of sFRP3 in cardiac fibrosis. Using clinical samples and animal models, we investigated the role of sFRP3 promoter methylation in potentially enhancing cardiac fibrosis. We also attempted to characterize the underlying mechanisms using an isoprenaline-induced cardiac fibrosis mouse model and cultured primary cardiac fibroblasts. Hypermethylation of sFRP3 was associated with perpetuation of fibroblast activation and cardiac fibrosis. Additionally, mitochondrial fission, regulated by the Drp1 protein, was found to be significantly altered in fibrotic hearts, contributing to fibroblast proliferation and cardiac fibrosis. Epigenetic modification of sFRP3 promoter methylation also influenced mitochondrial dynamics, linking sFRP3 repression to excessive mitochondrial fission. Moreover, sFRP3 hypermethylation was mediated by DNA methyltransferase 3A (DNMT3A) in cardiac fibrosis and fibroblasts, and DNMT3A knockdown demethylated the sFRP3 promoter, rescued sFRP3 loss, and ameliorated the isoprenaline-induced cardiac fibrosis and cardiac fibroblast proliferation, migration and mitochondrial fission. Mechanistically, DNMT3A was shown to epigenetically repress sFRP3 expression via promoter methylation. We describe a novel epigenetic mechanism wherein DNMT3A represses sFRP3 through promoter methylation, which is a critical mediator of cardiac fibrosis and mitochondrial fission. Our findings provide new insights for the development of preventive measures for cardiac fibrosis.

摘要

在心脏纤维化过程中,Wnt/β-连环蛋白信号通路与Wnt抑制因子基因之间的平衡起着重要作用。分泌型卷曲相关蛋白3(sFRP3)作为一种Wnt抑制因子,与表观遗传机制有关。然而,sFRP3的表观遗传调控在成纤维细胞增殖和迁移中至关重要,其在心脏纤维化中的潜在作用尚未阐明。因此,我们旨在研究心脏纤维化中sFRP3的表观遗传学和转录情况。我们使用临床样本和动物模型,研究sFRP3启动子甲基化在潜在增强心脏纤维化中的作用。我们还试图利用异丙肾上腺素诱导的心脏纤维化小鼠模型和培养的原代心脏成纤维细胞来阐明其潜在机制。sFRP3的高甲基化与成纤维细胞激活的持续和心脏纤维化有关。此外,由动力相关蛋白1(Drp1)蛋白调节的线粒体分裂在纤维化心脏中显著改变,促进成纤维细胞增殖和心脏纤维化。sFRP3启动子甲基化的表观遗传修饰也影响线粒体动力学,将sFRP3的抑制与过度的线粒体分裂联系起来。此外,sFRP3的高甲基化在心脏纤维化和成纤维细胞中由DNA甲基转移酶3A(DNMT3A)介导,DNMT3A的敲低使sFRP3启动子去甲基化,挽救sFRP3的缺失,并改善异丙肾上腺素诱导的心脏纤维化以及心脏成纤维细胞的增殖、迁移和线粒体分裂。从机制上讲,DNMT3A通过启动子甲基化在表观遗传上抑制sFRP3的表达。我们描述了一种新的表观遗传机制,即DNMT3A通过启动子甲基化抑制sFRP3,这是心脏纤维化和线粒体分裂的关键介质。我们的研究结果为心脏纤维化预防措施的开发提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad00/11625034/da256e369662/18_2024_5516_Fig1_HTML.jpg

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