氰化物在有氧呼吸中的急性毒性:理论和实验支持默本的解释。

Q2 Biochemistry, Genetics and Molecular Biology Biomolecular Concepts Pub Date : 2020-03-17 DOI:10.1515/bmc-2020-0004
Kelath Murali Manoj, Surjith Ramasamy, Abhinav Parashar, Daniel Andrew Gideon, Vidhu Soman, Vivian David Jacob, Kannan Pakshirajan
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引用次数: 0

摘要

通过对热力学、动力学和抑制常数的评估,证明了氰化物/氯化萘(CN)与血红素蛋白结合的低效性(在生理状态下)。毒性的急性发作和氯化萘的毫克/千克半数致死剂量(μM致死浓度)表明,基于血红素铁结合的经典抑制理论无法解释氯化萘的毒性。作为线粒体氧化磷酸化(mOxPhos)的 murburn 模型,对氯化萘介导的血红素铁还原系统抑制作用进行了体外机理探究。氯化萘在卤过氧化物酶催化下将氯分子转移到小分子有机物中的作用被视为 mOxPhos 中磷酸基团转移的类似探针。同样,在过氧化物酶介导的小有机物单电子氧化过程中加入氯化萘,也可用于探索 mOxPhos 中电子转移的结果,从而导致水的形成。Hammett 研究和 IC50/Hill 斜率分析得出的自由能相关性以及与配体 ( CO/ H 2 S/ N 3 - ) 的比较 $\left({\text{CO}}/{{{{\text{H}}_{2}}\text{S}}/{\text{N}_{3}}^{\text{-}}\;}; \right)$提供了关于可扩散自由基和质子平衡参与的见解,解释了 mOxPhos 化学中的类似结果。此外,我们还证明了超氧化物(可扩散的活性氧,DROS)能够在体外通过 ADP+ 磷酸合成 ATP,并表明这一反应受到 CN 的抑制。因此,CN 离子与基质中的 DROS 几乎瞬间发生相互作用,催化破坏了 mOxPhos,从而解释了 CN 的急性致死效应。
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Acute toxicity of cyanide in aerobic respiration: Theoretical and experimental support for murburn explanation.

The inefficiency of cyanide/HCN (CN) binding with heme proteins (under physiological regimes) is demonstrated with an assessment of thermodynamics, kinetics, and inhibition constants. The acute onset of toxicity and CN's mg/Kg LD50 (μM lethal concentration) suggests that the classical hemeFe binding-based inhibition rationale is untenable to account for the toxicity of CN. In vitro mechanistic probing of CN-mediated inhibition of hemeFe reductionist systems was explored as a murburn model for mitochondrial oxidative phosphorylation (mOxPhos). The effect of CN in haloperoxidase catalyzed chlorine moiety transfer to small organics was considered as an analogous probe for phosphate group transfer in mOxPhos. Similarly, inclusion of CN in peroxidase-catalase mediated one-electron oxidation of small organics was used to explore electron transfer outcomes in mOxPhos, leading to water formation. The free energy correlations from a Hammett study and IC50/Hill slopes analyses and comparison with ligands ( CO/ H 2 S/ N 3 - ) $\left( {\text{CO}}/{{{{\text{H}}_{2}}\text{S}}/{\text{N}_{3}^{\text{-}}}\;}\; \right)$ provide insights into the involvement of diffusible radicals and proton-equilibriums, explaining analogous outcomes in mOxPhos chemistry. Further, we demonstrate that superoxide (diffusible reactive oxygen species, DROS) enables in vitro ATP synthesis from ADP+phosphate, and show that this reaction is inhibited by CN. Therefore, practically instantaneous CN ion-radical interactions with DROS in matrix catalytically disrupt mOxPhos, explaining the acute lethal effect of CN.

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来源期刊
Biomolecular Concepts
Biomolecular Concepts Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
5.30
自引率
0.00%
发文量
27
审稿时长
12 weeks
期刊介绍: BioMolecular Concepts is a peer-reviewed open access journal fostering the integration of different fields of biomolecular research. The journal aims to provide expert summaries from prominent researchers, and conclusive extensions of research data leading to new and original, testable hypotheses. Aspects of research that can promote related fields, and lead to novel insight into biological mechanisms or potential medical applications are of special interest. Original research articles reporting new data of broad significance are also welcome. Topics: -cellular and molecular biology- genetics and epigenetics- biochemistry- structural biology- neurosciences- developmental biology- molecular medicine- pharmacology- microbiology- plant biology and biotechnology.
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