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对一种模拟锰过氧化物酶的工程化细胞色素c过氧化物酶的血红素活性位点结构进行质子核磁共振研究。

Proton NMR investigation of the heme active site structure of an engineered cytochrome c peroxidase that mimics manganese peroxidase.

作者信息

Wang X, Lu Y

机构信息

Department of Chemistry, University of Illinois at Urbana-Champaign 61801, USA.

出版信息

Biochemistry. 1999 Jul 13;38(28):9146-57. doi: 10.1021/bi990235r.

DOI:10.1021/bi990235r
PMID:10413489
Abstract

The heme active site structure of an engineered cytochrome c peroxidase [MnCcP; see Yeung, B. K., et al. (1997) Chem. Biol. 4, 215-221] that closely mimics manganese peroxidase (MnP) has been characterized by both one- and two-dimensional NMR spectroscopy. All hyperfine-shifted resonances from the heme pocket as well as resonances from catalytically relevant amino acid residues in the congested diamagnetic envelope have been assigned. From the NMR spectral assignment and the line broadening pattern of specific protons in NOESY spectra of MnCcP, the location of the engineered Mn(II) center is firmly identified. Furthermore, we found that the creation of the Mn(II)-binding site in CcP resulted in no detectable structural changes on the distal heme pocket of the protein. However, notable structural changes are observed at the proximal side of the heme cavity. Both CepsilonH shift of the proximal histidine and (15)N shift of the bound C(15)N(-) suggest a weaker heme Fe(III)-N(His) bond in MnCcP compared to WtCcP. Our results indicate that the engineered Mn(II)-binding site in CcP resulted in not only a similar Mn(II)-binding affinity and improved MnP activity, but also weakened the Fe(III)-N(His) bond strength of the template protein CcP so that its bond strength is similar to that of the target protein MnP. The results presented here help elucidate the impact of designing a metal-binding site on both the local and global structure of the enzyme, and provide a structural basis for engineering the next generation of MnCcP that mimics MnP more closely.

摘要

一种经过改造的细胞色素c过氧化物酶[MnCcP;见Yeung,B.K.等人(1997年)《化学生物学》4,215 - 221]的血红素活性位点结构,该结构紧密模拟锰过氧化物酶(MnP),已通过一维和二维核磁共振光谱进行了表征。已确定了来自血红素口袋的所有超精细位移共振以及来自拥挤的抗磁性包络中催化相关氨基酸残基的共振。根据MnCcP的核磁共振光谱归属以及NOESY光谱中特定质子的线宽展宽模式,确定了改造后的Mn(II)中心的位置。此外,我们发现,在CcP中创建Mn(II)结合位点并未导致蛋白质远端血红素口袋出现可检测到的结构变化。然而,在血红素腔的近端观察到了显著的结构变化。近端组氨酸的CεH位移以及结合的C(15)N(-)的(15)N位移表明,与野生型CcP相比,MnCcP中的血红素Fe(III)-N(His)键较弱。我们的结果表明,在CcP中改造后的Mn(II)结合位点不仅导致了相似的Mn(II)结合亲和力和提高的MnP活性,还削弱了模板蛋白CcP的Fe(III)-N(His)键强度,使其键强度与目标蛋白MnP相似。此处呈现的结果有助于阐明设计金属结合位点对酶的局部和整体结构的影响,并为设计更紧密模拟MnP的下一代MnCcP提供结构基础。

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