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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >How Biochemical Environments Fine-Tune a Redox Process: From Theoretical Models to Practical Applications
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How Biochemical Environments Fine-Tune a Redox Process: From Theoretical Models to Practical Applications

机译:生物化学环境如何微调氧化还原过程:从理论模型到实际应用

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In this study, we give a new physical insight into how enzymatic environments influence a redox process. This is particularly important in a biochemical context, in which oxidoreductase enzymes and low-molecular-weight cofactors create a microenvironment, fine-tuning their specific redox potential. We present a new theoretical model, quantitatively backed up by quantum chemically calculated data obtained for key biological sulfur-based model reactions involved in preserving the cellular redox homeostasis during oxidative stress. We show that environmental effects can be quantitatively predicted from the thermodynamic cycle linking Delta Delta G(OX/RED)(ref-ligand )values to the differential interaction energy Delta Delta G(int )of the reduced and oxidized species with the environment. Our obtained data can be linked to hydrogen-bond patterns found in protein active sites. The thermodynamic model is further understood in the framework of molecular orbital theory. The key insight of this work is that the intrinsic properties of neither a redox couple nor the interacting environment (e.g., ligand) are enough by themselves to uniquely predict reduction potentials. Instead, system-environment interactions need to be considered. This study is of general interest as redox processes are pivotal to empower, protect, or damage organisms. Our presented thermodynamic model allows a pragmatically evaluation on the expected influence of a particular environment on a redox process, necessary to fully understand how redox processes take place in living organisms.
机译:在这项研究中,我们对酶环境如何影响氧化还原过程,提供了新的身体洞察。这在生化背景中尤其重要,其中氧化还原酶酶和低分子量辅因子产生微环境,微调其特定的氧化还原潜力。我们提出了一种新的理论模型,由Qualtual化学计算的数据量备份,用于在氧化应激期间在保留细胞氧化还原性稳态中涉及的关键生物硫基模型反应获得。我们表明,可以从热力学周期将Δδ(Ox / Riz)(Ref-Ligand)值与环境的差动相互作用Δ值与环境的差分相互作用ΔV(Int)一起定量预测环境效应。我们获得的数据可以与蛋白质活性位点中发现的氢键模式相关联。在分子轨道理论的框架中进一步理解了热力学模型。这项工作的关键洞察力是,既不氧化还原耦合也不是交互环境(例如,配体)的内在特性足以使自己唯一预测减少电位。相反,需要考虑系统环境相互作用。这项研究是一般兴趣,因为氧化还原过程是赋予,保护或损害生物的枢转。我们所提出的热力学模型允许务实地评估特定环境对氧化还原过程的预期影响,以完全了解氧化还原过程如何发生在生物体中。

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