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Exploring O2 Diffusion in A-Type Cytochrome c Oxidases: Molecular Dynamics Simulations Uncover Two Alternative Channels towards the Binuclear Site

机译:探索A型细胞色素c氧化酶中的O2扩散:分子动力学模拟揭示了通往双核位点的两个替代通道

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摘要

Cytochrome c oxidases (Ccoxs) are the terminal enzymes of the respiratory chain in mitochondria and most bacteria. These enzymes couple dioxygen (O2) reduction to the generation of a transmembrane electrochemical proton gradient. Despite decades of research and the availability of a large amount of structural and biochemical data available for the A-type Ccox family, little is known about the channel(s) used by O2 to travel from the solvent/membrane to the heme a3-CuB binuclear center (BNC). Moreover, the identification of all possible O2 channels as well as the atomic details of O2 diffusion is essential for the understanding of the working mechanisms of the A-type Ccox. In this work, we determined the O2 distribution within Ccox from Rhodobacter sphaeroides, in the fully reduced state, in order to identify and characterize all the putative O2 channels leading towards the BNC. For that, we use an integrated strategy combining atomistic molecular dynamics (MD) simulations (with and without explicit O2 molecules) and implicit ligand sampling (ILS) calculations. Based on the 3D free energy map for O2 inside Ccox, three channels were identified, all starting in the membrane hydrophobic region and connecting the surface of the protein to the BNC. One of these channels corresponds to the pathway inferred from the X-ray data available, whereas the other two are alternative routes for O2 to reach the BNC. Both alternative O2 channels start in the membrane spanning region and terminate close to Y288I. These channels are a combination of multiple transiently interconnected hydrophobic cavities, whose opening and closure is regulated by the thermal fluctuations of the lining residues. Furthermore, our results show that, in this Ccox, the most likely (energetically preferred) routes for O2 to reach the BNC are the alternative channels, rather than the X-ray inferred pathway.
机译:细胞色素c氧化酶(Ccoxs)是线粒体和大多数细菌中呼吸链的末端酶。这些酶将双氧(O2)还原与跨膜电化学质子梯度的产生耦合在一起。尽管进行了数十年的研究并且获得了A型Ccox家族可用的大量结构和生化数据,但对于O2从溶剂/膜到血红素a3-CuB的通道所知甚少双核中心(BNC)。此外,识别所有可能的O2通道以及O2扩散的原子细节对于理解A型Ccox的工作机理至关重要。在这项工作中,我们确定了球形球形红细菌在Ccox中的O2分布,处于完全还原状态,以便鉴定和表征通向BNC的所有假定O2通道。为此,我们使用了一种集成策略,将原子分子动力学(MD)模拟(有或没有显式O2分子)与隐式配体采样(ILS)计算相结合。根据Ccox内部O2的3D自由能图,确定了三个通道,所有通道均始于膜疏水区域,并将蛋白表面连接至BNC。这些通道之一对应于从可用X射线数据推断出的通道,而其他两个通道是O2到达BNC的替代路线。两个备用O2通道均始于跨膜区域,并终止于Y288I附近。这些通道是多个瞬态相互连接的疏水腔的组合,其打开和关闭受衬里残留物的热涨落调节。此外,我们的结果表明,在这种Ccox中,O2到达BNC的最可能的途径(在能量上优先)是替代途径,而不是X射线推断的途径。

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