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首页> 外文期刊>The Biochemical Journal >Engineering peroxidase activity in myoglobin: the haem cavity structure and peroxide activation in the T67R/S92D mutant and its derivative reconstituted with protohaemin-L-histidine
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Engineering peroxidase activity in myoglobin: the haem cavity structure and peroxide activation in the T67R/S92D mutant and its derivative reconstituted with protohaemin-L-histidine

机译:肌红蛋白中的工程过氧化物酶活性:T67R / S92D突变体及其衍生物与原血红蛋白-L-组氨酸重构后的血红素腔结构和过氧化物活化

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摘要

Protein engineering and cofactor replacement have been employed as tools to introduce/modulate peroxidase activity in sperm whale Mb (myoglobin). Based on the rationale that haem peroxidase active sites are characterized by specific charged residues, the Mb haem crevice has been modified to host a haemdistal Arg residue and a proximal Asp, yielding the T67R/S92D Mb mutant. To code extra conformational mobility around the haem, and to increase the peroxidase catalytic efficiency, the T67R/S92D Mb mutant has been subsequently reconstituted with protohaem-L-histidine methyl ester, yielding a stable derivative, T67R/S92D Mb-H. The crystal structure of T67R/S92D cyano-metMb (1.4 Angstrom resolution; R factor, 0.12) highlights a regular haem-cyanide binding mode, and the role for the mutated residues in affecting the haem propionates as well as the neighbouring water structure. The conformational disorder of the haem propionate-7 is evidenced by the NMR spectrum of the mutant. Ligand-binding studies show that the iron(III) centres of T67R/S92D Mb, and especially of T67R/S92D Mb-H, exhibit higher affinity for azide and imidazole than wild-type Mb. In addition, both protein derivatives react faster than wild-type Mb with hydrogen peroxide, showing higher peroxidase-like activity towards phenolic substrates. The catalytic efficiency of T67R/S92D Mb-H in these reactions is the highest so far reported for Mb derivatives. A model for the protein-substrate interaction is deduced based on the crystal structure and on the NMR spectra of protein-phenol complexes.
机译:蛋白质工程和辅助因子替代已被用作在抹香鲸Mb(肌红蛋白)中引入/调节过氧化物酶活性的工具。基于血红素过氧化物酶活性位点以特定的带电荷残基为特征的基本原理,对Mb血红素缝隙进行了修饰,以容纳血红素Arg残基和近端的Asp,从而产生T67R / S92D Mb突变体。为了编码围绕血红素的额外构象迁移率,并提高过氧化物酶的催化效率,T67R / S92D Mb突变体随后被原血L-组氨酸甲酯重建,生成了稳定的衍生物T67R / S92D Mb-H。 T67R / S92D cyano-metMb的晶体结构(1.4埃分辨率; R因子,0.12)突出显示了规则的血红素-氰化物结合模式,以及突变的残基在影响血红素丙酸酯以及附近水结构中的作用。血红素丙酸酯7的构象障碍由突变体的NMR光谱证明。配体结合研究表明,T67R / S92D Mb,特别是T67R / S92D Mb-H的铁(III)中心对叠氮化物和咪唑的亲和力高于野生型Mb。此外,两种蛋白衍生物与野生型Mb的过氧化氢反应速度都更快,对酚类底物表现出更高的过氧化物酶样活性。在这些反应中,T67R / S92D Mb-H的催化效率是迄今为止报道的Mb衍生物的最高催化效率。基于晶体结构和蛋白质-苯酚复合物的NMR光谱,推导了蛋白质-底物相互作用的模型。

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