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Structure and Function of the Engineered Multicopper Oxidase CueO from Escherichia coli-Deletion of the Methionine-Rich Helical Region Covering the Substrate-Binding Site

机译:来自大肠杆菌的工程化多铜氧化酶CueO的结构和功能 - 覆盖底物结合位点的富含蛋氨酸的螺旋区域的缺失

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摘要

CueO is a multicopper oxidase (MCO) that is involved in the homeostasis of Cu in Escherichia coli and is the sole cuprous oxidase to have ever been found. Differing from other MCOs, the substrate-binding site of CueO is deeply buried under a methionine-rich helical region including α-helices 5, 6, and 7 that interfere with the access of organic substrates. We deleted the region Pro357-His406 and replaced it with a Gly-Gly linker. The crystal structures of a truncated mutant in the presence and in the absence of excess Cu(II) indicated that the scaffold of the CueO molecule and metal-binding sites were reserved in comparison with those of CueO. In addition, the high thermostability of the protein molecule and its spectroscopic and magnetic properties due to four Cu centers were also conserved after truncation. As for functions, the cuprous oxidase activity of the mutant was reduced to ca 10% that of recombinant CueO owing to the decrease in the affinity of the labile Cu site for Cu(I) ions, although activities for laccase substrates such as 2,2′-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid), p-phenylenediamine, and 2,6-dimethoxyphenol increased due to changes in the access of these organic substrates to the type I Cu site. The present engineering of CueO indicates that the methionine-rich α-helices function as a barrier to the access of bulky organic substrates, which provides CueO with specificity as a cuprous oxidase. © 2007 Elsevier Ltd. All rights reserved.
机译:CueO是一种多铜氧化酶(MCO),与大肠杆菌中Cu的稳态有关,并且是迄今为止唯一发现的亚铜氧化酶。与其他MCO不同,CueO的底物结合位点深埋在富含甲硫氨酸的螺旋区域下方,该区域包括干扰有机底物进入的α-螺旋5、6和7。我们删除了Pro357-His406区域,并用Gly-Gly链接器替换了它。在存在和不存在过量Cu(II)的情况下,截短的突变体的晶体结构表明,与CueO相比,CueO分子的支架和金属结合位点得以保留。此外,截短后还保留了蛋白质分子的高热稳定性以及由于四个Cu中心而引起的光谱和磁性。在功能方面,尽管对漆酶底物(如2,2)具有活性,但由于不稳定的Cu位对Cu(I)离子的亲和力降低,因此该突变体的亚铜氧化酶活性降低至重组CueO的约10%。由于这些有机底物进入I型Cu位点的通道的变化,'-叠氮基双(3-乙基苯并噻唑啉-6-磺酸),对苯二胺和2,6-二甲氧基苯酚增加。 CueO的当前工程设计表明,富含蛋氨酸的α-螺旋可作为进入庞大有机底物的障碍,这为CueO提供了亚铜氧化酶的特异性。 ©2007 ElsevierLtd。保留所有权利。

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