Chemical Engineering and Process Development Division, CSIR-National Chemical Laboratory, Pune, Maharashtra, India.
Academy of Scientific & Innovative Research (AcSIR), Ghaziabad, India.
PLoS One. 2020 Jun 25;15(6):e0235204. doi: 10.1371/journal.pone.0235204. eCollection 2020.
Manipulative strategies of ROS in cancer are often exhibited as changes in the redox and thiol ratio of the cells. Cellular responses to oxidative insults are generated in response to these changes which are triggered due to the rerouting of the metabolic framework to maintain survival under stress. However, mechanisms of these metabolic re-routing are not clearly understood and remained debatable. In the present work, we have designed a context-based dynamic metabolic model to establish that the coordinated functioning of glutathione peroxidase (GTHP), glutathione oxidoreductase (GTHO) and NADPH oxidase (NOX) is crucial in determining cancerous transformation, specifically in gliomas. Further, we propose that the puzzling duality of ROS (represented by changes in h2o2 in the present model) in exhibiting varying cellular fates can be determined by considering simultaneous changes in nadph/nadp+ and gsh/gssg that occur during the reprogramming of metabolic reactions. This will be helpful in determining the pro-apoptotic or anti-apoptotic fate of gliomas and can be useful in designing effective pro-oxidant and/or anti-oxidant therapeutic approaches against gliomas.
在癌症中,ROS 的操纵策略通常表现为细胞氧化还原和巯基比的变化。细胞对氧化应激的反应是由于代谢框架的重新布线而产生的,以在应激下维持生存。然而,这些代谢重新布线的机制尚不清楚,仍存在争议。在本工作中,我们设计了一个基于上下文的动态代谢模型,以确定谷胱甘肽过氧化物酶 (GTHP)、谷胱甘肽氧化还原酶 (GTHO) 和 NADPH 氧化酶 (NOX) 的协调作用对于确定癌症转化是至关重要的,特别是在神经胶质瘤中。此外,我们提出 ROS 的令人费解的二元性(在本模型中表现为 h2o2 的变化)在表现出不同的细胞命运时,可以通过考虑在代谢反应重新编程期间发生的 nadph/nadp+和 gsh/gssg 的同时变化来确定。这将有助于确定神经胶质瘤的促凋亡或抗凋亡命运,并可用于设计针对神经胶质瘤的有效促氧化剂和/或抗氧化剂治疗方法。