ITQB NOVA, Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Av. da República, 2780-157, Oeiras, Portugal.
Sci Rep. 2020 Jun 29;10(1):10540. doi: 10.1038/s41598-020-67494-5.
Hydrogenases are efficient biocatalysts for H production and oxidation with various potential biotechnological applications.[NiFe]-class hydrogenases are highly active in both production and oxidation processes-albeit primarily biased to the latter-but suffer from being sensitive to O.[NiFeSe] hydrogenases are a subclass of [NiFe] hydrogenases with, usually, an increased insensitivity to aerobic environments. In this study we aim to understand the structural causes of the low sensitivity of a [NiFeSe]-hydrogenase, when compared with a [NiFe] class enzyme, by studying the diffusion of O. To unravel the differences between the two enzymes, we used computational methods comprising Molecular Dynamics simulations with explicit O and Implicit Ligand Sampling methodologies. With the latter, we were able to map the free energy landscapes for O permeation in both enzymes. We derived pathways from these energy landscapes and selected the kinetically more relevant ones with reactive flux analysis using transition path theory. These studies evidence the existence of quite different pathways in both enzymes and predict a lower permeation efficiency for O in the case of the [NiFeSe]-hydrogenase when compared with the [NiFe] enzyme. These differences can explain the experimentally observed lower inhibition by O on [NiFeSe]-hydrogenases, when compared with [NiFe]-hydrogenases. A comprehensive map of the residues lining the most important O pathways in both enzymes is also presented.
氢化酶是高效的生物催化剂,可用于 H 的生产和氧化,具有多种潜在的生物技术应用。[NiFe]类氢化酶在生产和氧化过程中都具有很高的活性——尽管主要偏向于后者——但对 O 敏感。[NiFeSe]氢化酶是[NiFe]氢化酶的一个亚类,通常对有氧环境的敏感性增加。在这项研究中,我们旨在通过研究 O 的扩散来了解与[NiFe]类酶相比,[NiFeSe]-氢化酶低敏感性的结构原因。为了揭示两种酶之间的差异,我们使用了包含显式 O 和隐式配体采样方法的分子动力学模拟的计算方法。通过后者,我们能够绘制出两种酶中 O 渗透的自由能景观。我们从这些能量景观中导出途径,并使用过渡路径理论的反应通量分析选择更相关的动力学途径。这些研究证明了两种酶中存在非常不同的途径,并预测了[NiFeSe]-氢化酶中 O 的渗透效率比[NiFe]酶低。这些差异可以解释与[NiFe]氢化酶相比,O 对[NiFeSe]-氢化酶的抑制作用在实验中观察到的较低的原因。还呈现了两种酶中最重要的 O 途径所包含的残基的综合图谱。