Suppr超能文献

由乙二胺四乙酸锰络合物和巯基乙醇诱导的超氧化物驱动的NAD(P)H氧化。

Superoxide-driven NAD(P)H oxidation induced by EDTA-manganese complex and mercaptoethanol.

作者信息

Paoletti F, Mocali A, Aldinucci D

机构信息

Istituto di Patologia Generale, Universita di Firenze, Italy.

出版信息

Chem Biol Interact. 1990;76(1):3-18. doi: 10.1016/0009-2797(90)90030-q.

Abstract

A purely chemical system for NAD(P)H oxidation to biologically active NAD(P)+ has been developed and characterized. Suitable amounts of EDTA, manganous ions and mercaptoethanol, combined at physiological pH, induce nucleotide oxidation through a chain length also involving molecular oxygen, which eventually undergoes quantitative reduction to hydrogen peroxide. Mn2+ is specifically required for activity, while both EDTA and mercaptoethanol can be replaced by analogs. Optimal molar ratios of chelator/metal ion (2:1) yield an active coordination compound which catalyzes thiol autoxidation to thiyl radical. The latter is further oxidized to disulfide by molecular oxygen whose one-electron reduction generates superoxide radical. Superoxide dismutase (SOD) inhibits both thiol oxidation and oxygen consumption as well as oxidation of NAD(P)H if present in the mixture. A tentative scheme for the chain length occurring in the system is proposed according to stoichiometry of reactions involved. Two steps appear of special importance in nucleotide oxidation: (a) the supposed transient formation of NAD(P). from the reaction between NAD(P)H and thiyl radicals; (b) the oxidation of the reduced complex by superoxide to keep thiol oxidation cycling.

摘要

已开发并表征了一种将NAD(P)H氧化为具有生物活性的NAD(P)+的纯化学系统。在生理pH值下,适量的EDTA、锰离子和巯基乙醇相结合,通过一个也涉及分子氧的链长诱导核苷酸氧化,分子氧最终定量还原为过氧化氢。活性特别需要Mn2+,而EDTA和巯基乙醇都可以被类似物替代。螯合剂/金属离子的最佳摩尔比(2:1)产生一种活性配位化合物,该化合物催化硫醇自氧化为硫自由基。后者被分子氧进一步氧化为二硫键,分子氧的单电子还原产生超氧自由基。如果混合物中存在超氧化物歧化酶(SOD),则会抑制硫醇氧化、氧气消耗以及NAD(P)H的氧化。根据所涉及反应的化学计量学,提出了该系统中发生的链长的暂定方案。在核苷酸氧化过程中,有两个步骤显得尤为重要:(a)NAD(P)H与硫自由基之间反应推测形成的NAD(P)·;(b)超氧化物将还原复合物氧化以保持硫醇氧化循环。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验