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首页> 外文期刊>藥學雜誌 >Establishment of a Novel Therapeutic Strategy for Heart Failure Based on the Mechanism Underlying Maintenance of Redox Homeostasis by Reactive Sulfur Species
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Establishment of a Novel Therapeutic Strategy for Heart Failure Based on the Mechanism Underlying Maintenance of Redox Homeostasis by Reactive Sulfur Species

机译:基于反应性硫物种维持氧化还原稳态的机制建立新的心力衰竭治疗策略

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摘要

Cardiac redox homeostasis is precisely regulated by reactive oxygen species (ROS) or electrophilic molecules that are formed by ROS reacting with intracellular substrates, and their eliminating systems. We have focused on the role of nitric oxide (NO) generated from inducible NO synthase (iNOS) that is continuously upregulated from early stage of heart failure, and revealed that iNOS-derived NO acts as a protective factor in the early stage of heart failure, whereas it contributes to induction of cardiac early senescence in later stages. The switching mechanism of NO-mediated signaling includes formation of endogenous NO-derived electrophilic byproducts such as 8-nitroguanosine 3',5'-cyclic monophosphate (8-nitro-cGMP), which selectively targets an oncogenic small GTPase H-Ras at Cys-184, leading to cardiac cell senescence via covalent modification (S-guanylation) and activation of H-Ras. We also found that hydrogen sulfide-related reactive sulfur species (RSS) function as potent nucleophiles to eliminate electrophilic modification of H-Ras and suppress the onset of chronic heart failure after myocardial infarction. Our results strongly suggest a new concept of redox biology in which suppression of electrophilic irreversible modification of protein cysteine thiols by RSS may be a new therapeutic strategy of cardiovascular diseases.
机译:心脏的氧化还原稳态是由活性氧(ROS)或由ROS与细胞内底物及其消除系统反应形成的亲电分子精确调节的。我们集中研究了从心力衰竭的早期阶段持续上调的诱导型一氧化氮合酶(iNOS)生成的一氧化氮(NO)的作用,并揭示了源自iNOS的一氧化氮在心力衰竭的早期阶段起保护作用,但有助于后期诱导心脏早期衰老。 NO介导信号的转换机制包括内源性NO衍生的亲电子副产物的形成,例如8-硝基鸟苷3',5'-环一磷酸(8-nitro-cGMP),其选择性靶向Cys上的致癌性小GTPase H-Ras -184,通过共价修饰(S-鸟苷酸化)和H-Ras激活导致心脏细胞衰老。我们还发现,硫化氢相关的活性硫物质(RSS)作为有效的亲核试剂,可消除H-Ras的亲电修饰并抑制心肌梗塞后慢性心力衰竭的发作。我们的结果有力地提出了一种新的氧化还原生物学概念,其中通过RSS抑制蛋白质半胱氨酸硫醇的亲电不可逆修饰可能是心血管疾病的新治疗策略。

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