Sigman J A, Pond A E, Dawson J H, Lu Y
Department of Chemistry, University of Illinois at Urbana-Champaign 61801, USA.
Biochemistry. 1999 Aug 24;38(34):11122-9. doi: 10.1021/bi990815o.
In an effort to investigate factors required to stabilize heme-thiolate ligation, key structural components necessary to convert cytochrome c peroxidase (CcP) into a thiolate-ligated cytochrome P450-like enzyme have been evaluated and the H175C/D235L CcP double mutant has been engineered. The UV-visible absorption, magnetic circular dichroism (MCD) and electron paramagnetic resonance (EPR) spectra for the double mutant at pH 8.0 are reported herein. The close similarity between the spectra of ferric substrate-bound cytochrome P450cam and those of the exogenous ligand-free ferric state of the double mutant with all three techniques support the conclusion that the latter has a pentacoordinate, high-spin heme with thiolate ligation. Previous efforts to prepare a thiolate-ligated mutant of CcP with the H175C single mutant led to Cys oxidation to cysteic acid [Choudhury et al. (1994) J. Biol. Chem. 267, 25656-25659]. Therefore it is concluded that changing the proximal Asp235 residue to Leu is critical in forming a stable heme-thiolate ligation in the resting state of the enzyme. To further probe the versatility of the CcP double mutant as a ferric P450 model, hexacoordinate low-spin complexes have also been prepared. Addition of the neutral ligand imidazole or of the anionic ligand cyanide results in formation of hexacoordinate adducts that retain thiolate ligation as determined by spectral comparison to the analogous derivatives of ferric P450cam. The stability of these complexes and their similarity to the analogous forms of P450cam illustrates the potential of the H175C/D235L CcP double mutant as a model for ferric P450 enzymes. This study marks the first time a stable cyanoferric complex of a model P450 has been made and demonstrates the importance of the environment around the primary coordination ligands in stabilizing metal-ligand ligation.
为了研究稳定血红素 - 硫醇盐配位所需的因素,已对将细胞色素c过氧化物酶(CcP)转化为硫醇盐配位的细胞色素P450样酶所必需的关键结构成分进行了评估,并构建了H175C/D235L CcP双突变体。本文报道了该双突变体在pH 8.0时的紫外 - 可见吸收光谱、磁圆二色性(MCD)光谱和电子顺磁共振(EPR)光谱。通过这三种技术,结合底物的铁细胞色素P450cam的光谱与双突变体的无外源配体的铁状态光谱之间的高度相似性支持了这样的结论:后者具有一个五配位的高自旋血红素,其与硫醇盐配位。之前用H175C单突变体制备硫醇盐配位的CcP突变体的尝试导致半胱氨酸氧化为半胱氨酸酸[乔杜里等人(1994年)《生物化学杂志》267, 25656 - 25659]。因此可以得出结论,将近端的天冬氨酸235残基变为亮氨酸对于在酶的静止状态下形成稳定的血红素 - 硫醇盐配位至关重要。为了进一步探究CcP双突变体作为铁细胞色素P450模型的通用性,还制备了六配位低自旋配合物。加入中性配体咪唑或阴离子配体氰化物会导致形成六配位加合物,通过与铁细胞色素P450cam的类似衍生物进行光谱比较确定,这些加合物保留了硫醇盐配位。这些配合物的稳定性及其与细胞色素P450cam类似形式的相似性说明了H175C/D235L CcP双突变体作为铁细胞色素P450酶模型的潜力。这项研究标志着首次制备了模型细胞色素P450的稳定氰化铁配合物,并证明了一级配位配体周围的环境在稳定金属 - 配体配位中的重要性。