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Novel insights into the role of HSP90 in cytoprotection of H2S against chemical hypoxia-induced injury in H9c2 cardiac myocytes

机译:HSP90在H2S对抗H2c2心肌细胞化学性缺氧所致损伤的H2S细胞保护中的作用的新见解

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The present study evaluated potential mechanisms of hydrogen sulfide (H2S)-mediated cardioprotection using an in?vitro chemical hypoxia-induced injury model. We have demonstrated that H2S protects H9c2 cardiomyoblasts (H9c2) against chemical hypoxia-induced injuries by suppressing oxidative stress and preserving mitochondrial function. The aim of this study was to investigate the role of heat shock protein 90 (HSP90) in cardioprotection of H2S in H9c2 cells. The findings of the present study showed that cobalt chloride (CoCl2), a chemical hypoxia agent, significantly enhanced the expression of HSP90 and that 17-allylamino-17-demethoxy geldanamycin (17-AAG), a selective inhibitor of HSP90, aggravated concentration-dependent cytotoxicity induced by CoCl2. Exogenous administration of NaHS (a donor of H2S) augmented not only HSP90 expression under normal conditions, but also CoCl2-induced overexpression of HSP90. Pre-treatment with 17-AAG significantly blocked the cardioprotection of H2S against CoCl2-induced injuries, leading to increases in cytotoxicity and apoptotic cells. Furthermore, pre-treatment with 17-AAG also antagonized the inhibitory effects of NaHS on overproduction of reactive oxygen species (ROS), a loss of mitochondrial membrane potential (MMP) and ATP depletion induced by CoCl2. In conclusion, these results demonstrate that the increased expression of HSP90 may be one of the endogenous defensive mechanisms for resisting chemical hypoxia-induced injury in H9c2 cells. We also provide novel evidence that HSP90 mediates the cardioprotection of H2S against CoCl2-induced injuries by its antioxidant effect and preservation of mitochondrial function in H9c2 cells.
机译:本研究使用体外化学性缺氧诱导的损伤模型评估了硫化氢(H2S)介导的心脏保护的潜在机制。我们已经证明,H2S通过抑制氧化应激并保持线粒体功能来保护H9c2心肌母细胞(H9c2)免受化学性低氧引起的伤害。这项研究的目的是研究热休克蛋白90(HSP90)在H9c2细胞对H2S的心脏保护中的作用。本研究的发现表明,化学缺氧剂氯化钴(CoCl2)显着增强了HSP90的表达,而HSP90的选择性抑制剂17-烯丙基氨基-17-去甲氧基格尔德霉素(17-AAG)则使HSP90的浓度增加。依赖于CoCl2诱导的细胞毒性。 NaHS(H2S的供体)的外源施用不仅在正常条件下增强了HSP90的表达,而且增强了CoCl2诱导的HSP90的过表达。用17-AAG预处理显着阻断了H2S对CoCl2诱导的损伤的心脏保护作用,从而导致细胞毒性和凋亡细胞的增加。此外,用17-AAG预处理还拮抗了NaHS对活性氧(ROS)过量产生,线粒体膜电位(MMP)损失和CoCl2诱导的ATP消耗的抑制作用。总之,这些结果表明,HSP90表达的增加可能是抵抗H9c2细胞化学低氧诱导的损伤的内源性防御机制之一。我们还提供了新的证据,表明HSP90通过其抗氧化作用和H9c2细胞中线粒体功能的保留来介导H2S对CoCl2诱导的损伤的心脏保护作用。

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