去泛素酶OTUD7B通过调节脂肪酸氧化和抑制铁下垂来稳定HNF4α减轻压力过载引起的心脏肥厚。

IF 9.5 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Rujie Zheng, Wenjuan Song, Che Wang, Xiaoyu Du, Chunlei Liu, Xiaotong Sun, Chengzhi Lu
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引用次数: 0

摘要

背景:心脏肥厚是心力衰竭的主要原因,威胁着全球公众健康。去泛素化酶(DUBs)通过调节蛋白质的稳定性、功能和降解在心脏病理生理中起关键作用。本研究探讨卵巢肿瘤结构域7B (OTUD7B)通过调节脂肪酸代谢在心肌肥厚中的作用及其调控机制。方法:采用横断主动脉收缩(TAC)小鼠和经苯肾上腺素(PE)处理的心肌细胞,探讨OTUD7B在心肌肥厚中的作用。通过转录组分析探索OTUD7B调控心肌肥厚的潜在分子机制,并在心肌细胞中进一步验证。结果:TAC术后肥厚心脏中OTUD7B表达降低。在体内和体外实验中,心脏特异性OTUD7B缺乏加剧,而OTUD7B过表达减轻了压力超载引起的肥厚和心功能障碍。OTUD7B敲低导致铁下垂,表现为线粒体嵴减少,Fe2+离子含量增加,脂质过氧化积累,而OTUD7B过表达抑制铁下垂。在机制上,转录组学分析发现OTUD7B在脂肪酸代谢和病理性心肌肥大的调节中发挥作用。研究发现OTUD7B可直接结合调节脂肪酸氧化相关基因的转录因子HNF4α。此外,OTUD7B通过去除k48连接的泛素链,发挥去泛素化活性来稳定HNF4α蛋白,从而阻止其通过蛋白酶体途径降解,并将HNF4α降解与铁死亡联系起来。最后,铁下垂抑制剂,铁抑素-1,减轻OTUD7B抑制诱导的铁下垂、脂肪酸代谢抑制和心肌肥大。结论:我们证实了OTUD7B参与了压力过载引起的心肌肥厚中铁下垂的调节,并强调了OTUD7B通过HNF4α的去泛素化和稳定来调节铁下垂和脂肪酸氧化,从而减轻心肌肥厚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deubiquitinase OTUD7B stabilizes HNF4α to alleviate pressure overload-induced cardiac hypertrophy by regulating fatty acid oxidation and inhibiting ferroptosis.

Background: Cardiac hypertrophy, a leading cause of heart failure, threatens global public health. Deubiquitinating enzymes (DUBs) are critical in cardiac pathophysiology by regulating protein stability, function, and degradation. Here, we investigated the role and regulating mechanism of ovarian tumor domain-containing 7B (OTUD7B) in cardiac hypertrophy by modulating fatty acid metabolism.

Methods: Mice subjected to transverse aortic constriction (TAC) and cardiomyocytes treated with phenylephrine (PE) were used to explore the role of OTUD7B in myocardial hypertrophy. The potential molecular mechanisms underlying OTUD7B's regulation of cardiac hypertrophy were explored through transcriptome analysis and further validated in cardiomyocytes.

Results: Reduced OTUD7B expression was observed in hypertrophic hearts following TAC surgery. Cardiac-specific OTUD7B deficiency exacerbated, while OTUD7B overexpression mitigated, pressure overload-induced hypertrophy and cardiac dysfunction both in vivo and in vitro. OTUD7B knockdown resulted in ferroptosis, as evidenced by decreased mitochondrial cristae, increased Fe2+ ion content, lipid peroxide accumulation, while OTUD7B overexpression inhibited ferroptosis. Mechanistically, transcriptomic analysis identified OTUD7B plays a role in the regulation of fatty acid metabolism and pathological cardiac hypertrophy. OTUD7B was found to directly bind to HNF4α, a transcription factor regulating fatty acid oxidation-related genes. Further, OTUD7B exerted deubiquitination activity to stabilize the HNF4α protein by removing K48-linked ubiquitin chains, thereby preventing its degradation via the proteasomal pathway and linking the HNF4α degradation and ferroptosis. Finally, ferroptosis inhibitors, ferrostatin-1, alleviated OTUD7B inhibition-induced ferroptosis, fatty acid metabolism suppression, and myocardial hypertrophy.

Conclusions: We confirmed that OTUD7B is involved in the regulation of ferroptosis in pressure overload-induced cardiac hypertrophy and highlighted that OTUD7B alleviates cardiac hypertrophy by regulating ferroptosis and fatty acid oxidation through deubiquitination and stabilization of HNF4α.

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来源期刊
Biomarker Research
Biomarker Research Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
15.80
自引率
1.80%
发文量
80
审稿时长
10 weeks
期刊介绍: Biomarker Research, an open-access, peer-reviewed journal, covers all aspects of biomarker investigation. It seeks to publish original discoveries, novel concepts, commentaries, and reviews across various biomedical disciplines. The field of biomarker research has progressed significantly with the rise of personalized medicine and individual health. Biomarkers play a crucial role in drug discovery and development, as well as in disease diagnosis, treatment, prognosis, and prevention, particularly in the genome era.
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