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轴向相互作用在混合价态的 CuA 活性部位中的作用和轴向蛋氨酸在电子转移中的作用。

Axial interactions in the mixed-valent CuA active site and role of the axial methionine in electron transfer.

机构信息

Department of Chemistry, Stanford University, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2013 Sep 3;110(36):14658-63. doi: 10.1073/pnas.1314242110. Epub 2013 Aug 20.

Abstract

Within Cu-containing electron transfer active sites, the role of the axial ligand in type 1 sites is well defined, yet its role in the binuclear mixed-valent CuA sites is less clear. Recently, the mutation of the axial Met to Leu in a CuA site engineered into azurin (CuA Az) was found to have a limited effect on E(0) relative to this mutation in blue copper (BC). Detailed low-temperature absorption and magnetic circular dichroism, resonance Raman, and electron paramagnetic resonance studies on CuA Az (WT) and its M123X (X = Q, L, H) axial ligand variants indicated stronger axial ligation in M123L/H. Spectroscopically validated density functional theory calculations show that the smaller ΔE(0) is attributed to H2O coordination to the Cu center in the M123L mutant in CuA but not in the equivalent BC variant. The comparable stabilization energy of the oxidized over the reduced state in CuA and BC (CuA ∼ 180 mV; BC ∼ 250 mV) indicates that the S(Met) influences E(0) similarly in both. Electron delocalization over two Cu centers in CuA was found to minimize the Jahn-Teller distortion induced by the axial Met ligand and lower the inner-sphere reorganization energy. The Cu-S(Met) bond in oxidized CuA is weak (5.2 kcal/mol) but energetically similar to that of BC, which demonstrates that the protein matrix also serves an entatic role in keeping the Met bound to the active site to tune down E(0) while maintaining a low reorganization energy required for rapid electron transfer under physiological conditions.

摘要

在含有铜的电子转移活性位点内,轴向配体在 1 型位点中的作用已得到很好的定义,但在双核混合价态的 CuA 位点中的作用尚不明确。最近,在天青蛋白(CuA Az)中构建的 CuA 位点中,轴向 Met 突变为 Leu 对 E(0)的影响相对较小,与蓝色铜(BC)中的突变相比。对 CuA Az(WT)及其 M123X(X = Q、L、H)轴向配体变体的详细低温吸收和磁圆二色性、共振拉曼和电子顺磁共振研究表明,M123L/H 的轴向配位更强。经过光谱验证的密度泛函理论计算表明,较小的ΔE(0)归因于在 CuA 中的 M123L 突变体中,而不是在等效的 BC 变体中,Cu 中心与 H2O 的配位。在 CuA 和 BC(CuA ∼ 180 mV;BC ∼ 250 mV)中,氧化态相对于还原态的稳定能相当,表明 S(Met)对两者的 E(0)影响相似。在 CuA 中,电子在两个 Cu 中心之间的离域被发现可以最小化轴向 Met 配体引起的 Jahn-Teller 畸变,并降低内球重排能。氧化态 CuA 中的 Cu-S(Met)键较弱(5.2 kcal/mol),但与 BC 的相似,这表明蛋白质基质也起着 entatic 作用,使 Met 结合到活性位点上,从而降低 E(0),同时保持在生理条件下进行快速电子转移所需的低重排能。

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