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2
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本文引用的文献

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Features and development of Coot.Coot的特点与发展
Acta Crystallogr D Biol Crystallogr. 2010 Apr;66(Pt 4):486-501. doi: 10.1107/S0907444910007493. Epub 2010 Mar 24.
2
Reaction mechanisms of the multicopper oxidase CueO from Escherichia coli support its functional role as a cuprous oxidase.大肠杆菌多铜氧化酶 CueO 的反应机制支持其作为一价铜氧化酶的功能作用。
J Am Chem Soc. 2010 Feb 17;132(6):2005-15. doi: 10.1021/ja9091903.
3
Multicopper oxidases: a workshop on copper coordination chemistry, electron transfer, and metallophysiology.多铜氧化酶:关于铜配位化学、电子转移和金属生理学的研讨会。
J Biol Inorg Chem. 2010 Jan;15(1):15-28. doi: 10.1007/s00775-009-0590-9. Epub 2009 Oct 9.
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Tryptophan Cu(I)-pi interaction fine-tunes the metal binding properties of the bacterial metallochaperone CusF.色氨酸与铜(I)的π相互作用微调了细菌金属伴侣蛋白CusF的金属结合特性。
J Biol Inorg Chem. 2009 Aug;14(6):905-12. doi: 10.1007/s00775-009-0503-y. Epub 2009 Apr 21.
5
Direct metal transfer between periplasmic proteins identifies a bacterial copper chaperone.周质蛋白之间的直接金属转移鉴定出一种细菌铜伴侣蛋白。
Biochemistry. 2008 Nov 4;47(44):11408-14. doi: 10.1021/bi801638m. Epub 2008 Oct 11.
6
O2 reduction to H2O by the multicopper oxidases.多铜氧化酶将氧气还原为水。
Dalton Trans. 2008 Aug 14(30):3921-32. doi: 10.1039/b800799c. Epub 2008 May 7.
7
Proteomic identification of the Cus system as a major determinant of constitutive Escherichia coli silver resistance of chromosomal origin.蛋白质组学鉴定Cus系统是染色体来源的组成型大肠杆菌银抗性的主要决定因素。
J Proteome Res. 2008 Jun;7(6):2351-6. doi: 10.1021/pr700646b. Epub 2008 Apr 18.
8
Unusual Cu(I)/Ag(I) coordination of Escherichia coli CusF as revealed by atomic resolution crystallography and X-ray absorption spectroscopy.原子分辨率晶体学和X射线吸收光谱揭示的大肠杆菌CusF不寻常的铜(I)/银(I)配位
Protein Sci. 2007 Oct;16(10):2287-93. doi: 10.1110/ps.073021307.
9
Structure and function of the engineered multicopper oxidase CueO from Escherichia coli--deletion of the methionine-rich helical region covering the substrate-binding site.来自大肠杆菌的工程化多铜氧化酶CueO的结构与功能——覆盖底物结合位点的富含甲硫氨酸的螺旋区域的缺失
J Mol Biol. 2007 Oct 12;373(1):141-52. doi: 10.1016/j.jmb.2007.07.041. Epub 2007 Aug 2.
10
Macrocyclic copper(II) complexes: superoxide scavenging activity, structural studies and cytotoxicity evaluation.大环铜(II)配合物:超氧化物清除活性、结构研究及细胞毒性评估。
J Inorg Biochem. 2007 May;101(5):849-58. doi: 10.1016/j.jinorgbio.2007.01.013. Epub 2007 Feb 11.

多铜氧化酶 CueO 与铜(I)和银(I)结合的晶体结构:富含蛋氨酸序列的功能作用。

Crystal structures of multicopper oxidase CueO bound to copper(I) and silver(I): functional role of a methionine-rich sequence.

机构信息

Department of Chemistry and Biochemistry, University of Arizona, Tucson, Arizona 85721, USA.

出版信息

J Biol Chem. 2011 Oct 28;286(43):37849-57. doi: 10.1074/jbc.M111.293589. Epub 2011 Sep 8.

DOI:10.1074/jbc.M111.293589
PMID:21903583
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3199526/
Abstract

The multicopper oxidase CueO oxidizes toxic Cu(I) and is required for copper homeostasis in Escherichia coli. Like many proteins involved in copper homeostasis, CueO has a methionine-rich segment that is thought to be critical for copper handling. How such segments function is poorly understood. Here, we report the crystal structure of CueO at 1.1 Å with the 45-residue methionine-rich segment fully resolved, revealing an N-terminal helical segment with methionine residues juxtaposed for Cu(I) ligation and a C-terminal highly mobile segment rich in methionine and histidine residues. We also report structures of CueO with a C500S mutation, which leads to loss of the T1 copper, and CueO with six methionines changed to serine. Soaking C500S CueO crystals with Cu(I), or wild-type CueO crystals with Ag(I), leads to occupancy of three sites, the previously identified substrate-binding site and two new sites along the methionine-rich helix, involving methionines 358, 362, 368, and 376. Mutation of these residues leads to a ∼4-fold reduction in k(cat) for Cu(I) oxidation. Ag(I), which often appears with copper in nature, strongly inhibits CueO oxidase activities in vitro and compromises copper tolerance in vivo, particularly in the absence of the complementary copper efflux cus system. Together, these studies demonstrate a role for the methionine-rich insert of CueO in the binding and oxidation of Cu(I) and highlight the interplay among cue and cus systems in copper and silver homeostasis.

摘要

多铜氧化酶 CueO 能氧化有毒的 Cu(I),并在大肠杆菌中维持铜稳态。与许多参与铜稳态的蛋白质一样,CueO 有一个富含甲硫氨酸的片段,该片段被认为对铜处理至关重要。然而,这种片段的功能仍知之甚少。在这里,我们报道了 CueO 的晶体结构,分辨率为 1.1Å,完全解析了 45 个残基的富含甲硫氨酸的片段,揭示了一个 N 端螺旋片段,其中甲硫氨酸残基并列用于 Cu(I)的配位,以及一个富含甲硫氨酸和组氨酸残基的 C 端高度移动的片段。我们还报道了 C500S 突变导致 T1 铜丢失的 CueO 结构,以及六个甲硫氨酸突变为丝氨酸的 CueO 结构。将 C500S CueO 晶体浸泡在 Cu(I)中,或野生型 CueO 晶体浸泡在 Ag(I)中,导致三个位点的占据,即先前鉴定的底物结合位点和富含甲硫氨酸螺旋上的两个新位点,涉及甲硫氨酸 358、362、368 和 376。这些残基的突变导致 Cu(I)氧化的 k(cat)降低了约 4 倍。Ag(I),在自然界中常与铜共存,强烈抑制 CueO 氧化酶的体外活性,并损害体内铜耐受性,特别是在缺乏互补铜外排 cus 系统的情况下。这些研究共同证明了 CueO 中富含甲硫氨酸的插入在 Cu(I)的结合和氧化中的作用,并强调了 cue 和 cus 系统在铜和银稳态中的相互作用。