硫代谢是治疗心力衰竭的新靶点

IF 3 3区 医学 Q2 PHARMACOLOGY & PHARMACY Journal of pharmacological sciences Pub Date : 2024-04-23 DOI:10.1016/j.jphs.2024.04.005
Akiyuki Nishimura , Xiaokang Tang , Liuchenzi Zhou , Tomoya Ito , Yuri Kato , Motohiro Nishida
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引用次数: 0

摘要

长期以来,硫基氧化还原信号作为心脏疾病和心力衰竭发生的关键机制一直备受关注。特别是蛋白质中半胱氨酸(Cys)硫醇的翻译后修饰介导了氧化应激依赖性心脏重塑,包括心肌肥厚、衰老和间质纤维化。然而,我们最近发现细胞和组织中存在Cys过硫化物和Cys多硫化物,它们显示出比Cys更高的氧化还原活性,对氧化还原信号转导和能量代谢有重大贡献。我们建立了简便的评估方法,可以检测蛋白质中的多硫化物和细胞中的无机多硫化物,并发现正常心脏中大量表达的多硫化物会在缺血/缺氧和环境亲电应激下发生急剧分解,从而导致心脏在机械负荷下的脆弱性。硫化氢是过硫化物/多硫化物的亲核分解物,它的积累可能导致缺血心脏的还原应激,而扰乱多硫化物的分解可改善小鼠心肌梗死后的慢性心力衰竭。这篇综述重点探讨了硫代谢在心脏中的生理(病理)作用,并提出缺血/缺氧应激过程中的硫代谢作为治疗缺血性心力衰竭的新疗法具有巨大潜力。
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Sulfur metabolism as a new therapeutic target of heart failure

Sulfur-based redox signaling has long attracted attention as critical mechanisms underlying the development of cardiac diseases and resultant heart failure. Especially, post-translational modifications of cysteine (Cys) thiols in proteins mediate oxidative stress-dependent cardiac remodeling including myocardial hypertrophy, senescence, and interstitial fibrosis. However, we recently revealed the existence of Cys persulfides and Cys polysulfides in cells and tissues, which show higher redox activities than Cys and substantially contribute to redox signaling and energy metabolism. We have established simple evaluation methods that can detect polysulfides in proteins and inorganic polysulfides in cells and revealed that polysulfides abundantly expressed in normal hearts are dramatically catabolized by exposure to ischemic/hypoxic and environmental electrophilic stress, which causes vulnerability of the heart to mechanical load. Accumulation of hydrogen sulfide, a nucleophilic catabolite of persulfides/polysulfides, may lead to reductive stress in ischemic hearts, and perturbation of polysulfide catabolism can improve chronic heart failure after myocardial infarction in mice. This review focuses on the (patho)physiological role of sulfur metabolism in hearts, and proposes that sulfur catabolism during ischemic/hypoxic stress has great potential as a new therapeutic strategy for the treatment of ischemic heart failure.

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来源期刊
CiteScore
6.20
自引率
2.90%
发文量
104
审稿时长
31 days
期刊介绍: Journal of Pharmacological Sciences (JPS) is an international open access journal intended for the advancement of pharmacological sciences in the world. The Journal welcomes submissions in all fields of experimental and clinical pharmacology, including neuroscience, and biochemical, cellular, and molecular pharmacology for publication as Reviews, Full Papers or Short Communications. Short Communications are short research article intended to provide novel and exciting pharmacological findings. Manuscripts concerning descriptive case reports, pharmacokinetic and pharmacodynamic studies without pharmacological mechanism and dose-response determinations are not acceptable and will be rejected without peer review. The ethnopharmacological studies are also out of the scope of this journal. Furthermore, JPS does not publish work on the actions of biological extracts unknown chemical composition.
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