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Basic and applied features of multicopper oxidases, CueO, bilirubin oxidase, and laccase

机译:多种铜氧化酶,CueO,胆红素氧化酶和漆酶的基本和应用特征

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摘要

Multicopper oxidases (MCOs) such as CuvO, bilirubin oxidase, and laccase contain four Cu centers, type 1 Cu, type II Cu, and a pair of type III Cu's in a protein molecule consisting of three domains with homologous structure to cupredoxin containing only type I Cu. Type I Cu mediates electron transfer between the substrate and the trinuclear Cu center formed by a type II Cu and a pair of type III Cu's, where the final electron acceptor O-2 is converted to H2O without releasing activated oxygen species. During the process; 0, is reduced by MCOs such as lacquer laccase and bilirubin oxidase; the reaction intermediate II with a possible doubly OH--bridged structure in the trinuclear Cu center has been detected. The preceding reaction intermediate I has been detected by the reaction of the lacquer laccase in a mixed valence state, at which type I Cu was cuprous and the trinuclear Cu center was fully reduced, and by the reaction of the Cys -> Ser mutant for the type I Cu site in bilirubin oxidase and CueO. An acidic amino acid residue located adjacent to the trinuclear Cu center was proved to function as a proton donor to these reaction intermediates. The substrate specificity of MCO for organic substrates is produced by the integrated effects of the shape of the substrate-binding site and the specific interaction of the substrate with the amino acid located adjacent to the His residue coordinating to the type I Cu. In contrast, the substrate specificity of the cuprous oxidase, CueO, is produced by the segment covering the Cu(I)-binding site so as to obstruct the access of organic substrates. Truncating the segment spanning helix 5 to helix 7 greatly reduced the specificity of CueO for Cu(I) and prominently enhanced the low oxidizing activity for the organic substrates, indicating the success of protein engineering to modify the substrate specificity of MCO. 2007 The Japan Chemical Journal Forum and Wiley Periodicals, Inc.
机译:诸如CuvO,胆红素氧化酶和漆酶之类的多铜氧化酶(MCO)在一个蛋白质分子中包含四个Cu中心,1型Cu,II型Cu和一对III型Cu,其由三个结构域组成,这些结构域与仅含2型铜氧还蛋白具有同源结构我Cu I型Cu介导了基板与由II型Cu和一对III型Cu形成的三核Cu中心之间的电子转移,其中最终电子受体O-2转化为H2O而不释放活化的氧。在过程中; 0被MCO(如漆漆酶和胆红素氧化酶)还原;已检测到在三核Cu中心可能具有双羟基桥接结构的反应中间体II。先前的反应中间体I已通过漆漆漆酶在混合价态下的反应进行检测,此时I型Cu为亚铜,三核Cu中心被完全还原,并且Cys-> Ser突变胆红素氧化酶和CueO中的I型Cu位点。证实位于三核铜中心附近的酸性氨基酸残基起这些反应中间体的质子供体的作用。 MCO对有机底物的底物特异性是通过底物结合位点的形状以及底物与与His残基相邻的氨基酸(与I Cu型配位)相邻的氨基酸的特异性相互作用的综合效应产生的。相反,亚铜氧化酶CueO的底物特异性是由覆盖Cu(I)结合位点的片段产生的,从而阻碍了有机底物的进入。截短跨螺旋5到螺旋7的片段大大降低了CueO对Cu(I)的特异性,并显着增强了对有机底物的低氧化活性,这表明蛋白质工程改造MCO底物特异性的成功。 2007日本化学杂志论坛和Wiley期刊公司

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