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Modified Reactivity Towards O2 in First Shell Variants of Fet3p: Geometric and Electronic Structure Requirements for a Functioning Trinuclear Copper Cluster

机译:Fet3p的第一个外壳变形中对O2的改性反应性:功能性三核铜簇的几何和电子结构要求

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摘要

Multicopper Oxidases (MCOs) carry out the most energy efficient reduction of O2 to H2O known, i.e. with the lowest overpotential. This four-electron process requires an electron mediating type 1 (T1) Cu site, and an oxygen reducing trinuclear Cu cluster (TNC), consisting of a binuclear type 3 (T3)- and a mononuclear type 2 (T2) Cu center. The rate-determining step in O2 reduction is the first two-electron transfer from one of the T3 Cu’s (T3β) and the T2 Cu, forming a bridged peroxide intermediate (PI). This reaction has been investigated in T3β Cu variants of the Fet3p, where a first shell His ligand is mutated to Glu or Gln. This converts the fast two-electron reaction of the wild-type (WT) enzyme to a slow one-electron oxidation of the TNC. Both variants initially react to form a common T3β Cu(II) intermediate, that converts to the Glu or Gln bound resting state. From spectroscopic evaluation, the non-mutated His ligands coordinate linearly to the T3β Cu in the reduced TNCs in the two variants, in contrast to the trigonal arrangement observed in the WT enzyme. This structural perturbation is found to significantly alter the electronic structure of the reduced TNC, which is no longer capable of rapidly transferring two electrons to the two perpendicular half occupied π*- orbitals of O2, in contrast to the WT enzyme. This study provides new insight into the geometric and electronic structure requirements of a fully functional TNC for the rate determining two-electron reduction of O2 in the MCOs.
机译:已知多铜氧化酶(MCO)可以将O2的能源效率最高地还原为H2O,即最低的过电势。这种四电子过程需要一个电子介导的1型(T1)Cu中心和一个氧还原三核Cu团簇(TNC),该簇由双核3型(T3)和单核2型(T2)Cu中心组成。减少O2的速率决定步骤是从T3 Cu(T3β)和T2Cu中的一个开始的第一个电子转移,形成桥联的过氧化物中间体(PI)。已经在Fet3p的T3βCu变体中研究了该反应,其中第一个壳His配体突变为Glu或Gln。这将野生型(WT)酶的快速两电子反应转变为TNC的缓慢一电子氧化。两种变体最初反应形成共同的T3βCu(II)中间体,该中间体转化为Glu或Gln结合的静止状态。通过光谱评估,与野生型酶中观察到的三角形排列相反,在两个变体中,未突变的His配体与还原的TNC中的T3βCu线性线性匹配。发现该结构扰动显着改变了还原的TNC的电子结构,与WT酶相反,该TNC不再能够将两个电子迅速转移至O 2的两个垂直的半占据的π*轨道。这项研究提供了对功能齐全的TNC的几何和电子结构要求的新见解,以便确定MCO中O2的两电子还原率。

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