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Revisiting cobalt chloride preconditioning to prevent hypobaric hypoxia-induced damage: identification of global proteomic alteration and key networks

机译:复习氯化钴预处理以预防低压缺氧引起的损害:确定总体蛋白质组学改变和关键网络

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Several studies have supported the hypoxia mimetic roles and cytoprotective properties of cobalt chloride in vitro and in vivo. However, a clear understanding of biological process-based mechanism that integrates the available information remains unknown. This study was aimed to explore the potential mechanism of cobalt chloride deciphering its benefits and well-known physiological challenge caused by hypobaric hypoxia that reportedly affects nearly 24 % of the global population. In order to explore the mechanism of CoCl2, we used global proteomic and systems biology approach in rat model to provide a deeper insight into molecular mechanisms of preconditioning. Furthermore, key conclusions were drawn based on biological network analysis and their enrichment with ontological overlaps. The study was further strengthened by consistent identification of validation of proteins using immunoblotting. CoCl2-pretreated animals exposed to hypoxia showed two significant networks, one lipid metabolism and other cell cycle associated, with a total score of 23 and eight focus molecules. In this study, we delineated two primary routes: one, by direct modulation of reactive oxygen species metabolism and, second, by regulation of lipid metabolism which was not known until now. The previously known benefits of cobalt chloride during physiological challenge by hypobaric hypoxia are convincing and could be explained by some basic set of metabolic and molecular reorganization within the hypoxia model. Interestingly, we also observed some of the completely unknown roles of cobalt chloride such as regulation of lipid that could undulate the translational roles of cobalt chloride supplementation beyond hypoxia preconditioning.
机译:几项研究支持了体外和体内氯化钴的低氧模拟作用和细胞保护特性。然而,对整合可用信息的基于生物过程的机制的清晰理解仍然未知。这项研究旨在探讨氯化钴破译其益处的潜在机制,以及由低压缺氧引起的众所周知的生理挑战,据报道,缺氧影响了全球24%的人口。为了探索CoCl2的机制,我们在大鼠模型中使用了全局蛋白质组学和系统生物学方法,以提供对预处理的分子机制的更深入了解。此外,基于生物网络分析及其在本体论重叠中的丰富性,得出了重要结论。通过使用免疫印迹对蛋白质验证的一致性鉴定,进一步加强了该研究。暴露于缺氧状态的经CoCl2处理的动物显示出两个重要的网络,一个与脂质代谢相关,另一个与细胞周期相关,总分23和8个焦点分子。在这项研究中,我们描述了两个主要途径:一是通过直接调节活性氧的代谢,二是通过调节脂质代谢,而这是目前为止未知的。在低压缺氧的生理挑战中,氯化钴的先前已知益处令人信服,并且可以通过缺氧模型中的一些代谢和分子重组的基本集合来解释。有趣的是,我们还观察到了氯化钴的某些完全未知的作用,例如脂质调节,可能会使缺氧预处理以外的氯化钴补充物的翻译作用起伏。

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