Transcriptional coactivation of NRF2 signaling in cardiac fibroblasts promotes resistance to oxidative stress

氧化应激 细胞生物学 炎症 信号转导 心脏纤维化 转录组 纤维化 调解人 癌症研究 生物 化学 医学 免疫学 内分泌学 内科学 基因表达 生物化学 基因
作者
Lisa K. McClendon,Rainer B. Lanz,Anil K. Panigrahi,Kristan Gomez,Michael J. Bolt,Min Liu,Fabio Stossi,Michael A. Mancini,Clifford C. Dacso,David M. Lonard,Bert W. O’Malley
出处
期刊:Journal of Molecular and Cellular Cardiology [Elsevier BV]
卷期号:194: 70-84 被引量:2
标识
DOI:10.1016/j.yjmcc.2024.07.001
摘要

We recently discovered that steroid receptor coactivators (SRCs) SRCs-1, 2 and 3, are abundantly expressed in cardiac fibroblasts (CFs) and their activation with the SRC small molecule stimulator MCB-613 improves cardiac function and dramatically lowers pro-fibrotic signaling in CFs post-myocardial infarction. These findings suggest that CF-derived SRC activation could be beneficial in the mitigation of chronic heart failure after ischemic insult. However, the cardioprotective mechanisms by which CFs contribute to cardiac pathological remodeling are unclear. Here we present studies designed to identify the molecular and cellular circuitry that governs the anti-fibrotic effects of an MCB-613 derivative, MCB-613-10-1, in CFs. We performed cytokine profiling and whole transcriptome and proteome analyses of CF-derived signals in response to MCB-613-10-1. We identified the NRF2 pathway as a direct MCB-613-10-1 therapeutic target for promoting resistance to oxidative stress in CFs. We show that MCB-613-10-1 promotes cell survival of anti-fibrotic CFs exposed to oxidative stress by suppressing apoptosis. We demonstrate that an increase in HMOX1 expression contributes to CF resistance to oxidative stress-mediated apoptosis via a mechanism involving SRC co-activation of NRF2, hence reducing inflammation and fibrosis. We provide evidence that MCB-613-10-1 acts as a protectant against oxidative stress-induced mitochondrial damage. Our data reveal that SRC stimulation of the NRF2 transcriptional network promotes resistance to oxidative stress and highlights a mechanistic approach toward addressing pathologic cardiac remodeling.
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