IF 2.9 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Debasish Basak, Agm Mostofa, Hanumantha Rao Madala, Kalkunte S Srivenugopal
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引用次数: 0

摘要

背景:O6-甲基鸟嘌呤-DNA甲基转移酶(MGMT)是一种独特的抗突变DNA修复蛋白,在脑肿瘤治疗中对各种烷化剂的抗性起着至关重要的作用。在本研究中,我们利用了 MGMT 活性位点 Cys145 易受硫代化和亚硝基化作用的特性,这两种作用都会使酶失活。研究方法我们设计了一种氧化还原扰动谷胱甘肽模拟物--镀金同谷胱甘肽二硫化物(hGTX),加入少量顺铂(1000:10),并使用一氧化氮供体精胺 NONOate。N6022 是一种强效的 S-亚硝基谷胱甘肽还原酶抑制剂,用于延长亚硝基化 MGMT 在肿瘤细胞培养和皮下异种移植中的保留时间。结果:hGTX 和精胺 NONOate 都能抑制 HT29、SF188、T98G 和其他脑肿瘤细胞中 MGMT 的活性。当两种药物与烷化剂同时使用时,烷化诱导的 DNA 跨链交联、G2/M 细胞周期停滞、细胞毒性和细胞凋亡标志物水平都会显著增加。在携带 T98G 和 HT29-luc2 异种移植物的裸鼠中,hGTX 和精胺 NONOate 与烷化剂联合使用可显著减少 MGMT 蛋白,并使肿瘤生长延迟和消退。N6022 治疗会延长亚硝基化 MGMT 的存在时间,从而延长细胞培养和临床前环境中的 DNA 修复缺陷状态。结论我们的研究结果突出了氧化还原驱动的 MGMT 治疗策略的选择,并表明可以利用氧化和/或亚硝基失活 DNA 修复与烷化剂的结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel Pathways of Oxidative and Nitrosative Inactivation of the Human MGMT Protein in Colon Cancer and Glioblastoma Cells: Increased Efficacy of Alkylating Agents In Vitro and In Vivo.

Background: O6-Methylguanine-DNA methyltransferase (MGMT) is a unique antimutagenic DNA repair protein that plays a crucial role in conferring resistance to various alkylating agents in brain tumor therapy. In this study, we exploited the susceptibility of the active site Cys145 of MGMT for thiolation and nitrosylation, both of which inactivate the enzyme. Methods: We designed a redox perturbing glutathione mimetic, a platinated homoglutathione disulfide (hGTX) by adding small amounts of cisplatin (1000:10) and used a nitric oxide-donor spermine NONOate. N6022, a potent inhibitor of S-nitrosoglutathione reductase was used to extend the retention of nitrosylated MGMT in tumor cell culture and subcutaneous xenografts. Results: Both hGTX and spermine NONOate inhibited MGMT activity in HT29, SF188, T98G, and other brain tumor cells. There was a robust increase in the alkylation-induced DNA interstrand cross-linking, G2/M cell cycle arrest, cytotoxicity, and the levels of apoptotic markers when either of the agents was used with alkylating agents. In the nude mice bearing T98G and HT29-luc2 xenografts, combinations of hGTX and spermine NONOate with alkylating agents produced a marked reduction in MGMT protein and tumor growth delay and regressions. N6022 treatment increased the presence of nitrosylated MGMT for a longer time, thereby extending the DNA-repair deficient state both in cell culture and preclinical settings. Conclusions: Our findings highlight the options for redox-driven therapeutic strategies for MGMT and suggest that oxidative and/or nitrosative inactivation of DNA repair in combination with alkylating agents could be exploited.

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