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来自[具体来源]的CueO的较大富含甲硫氨酸结构域如何增强氧化亚铜的氧化作用。

How the Larger Methionine-Rich Domain of CueO from Enhances Cuprous Oxidation.

作者信息

Contaldo Umberto, Santucci Paolo, Vergnes Alexandra, Leone Philippe, Becam Jérôme, Biaso Frédéric, Ilbert Marianne, Ezraty Benjamin, Lojou Elisabeth, Mazurenko Ievgen

机构信息

CNRS, Laboratoire de Bioénergétique et Ingénierie des Protéines (BIP), Institut de Microbiologie de la Méditerranée, Aix Marseille Université, 13402 Marseille, France.

CNRS, Laboratoire de Chimie Bactérienne (LCB), Institut de Microbiologie de la Méditerranée, Aix Marseille Université, 13402 Marseille, France.

出版信息

JACS Au. 2025 Apr 10;5(4):1833-1844. doi: 10.1021/jacsau.5c00076. eCollection 2025 Apr 28.

Abstract

CueOs, members of the multicopper oxidase family, play a crucial role in bacterial copper detoxification. These enzymes feature a unique methionine-rich (Met-rich) domain, which is essential for the oxidation of Cu to Cu. Recent studies using CueO from (CueO) suggest that the Met-rich domain facilitates Cu recruitment from highly chelated species. To further explore this hypothesis, we produced and characterized a novel CueO from the bacterium (CueO). CueO possesses a significantly larger Met-rich domain than CueO, providing new insights into the role of this domain in cuprous oxidase activity. We first showed that CueO was as efficient in copper detoxification as CueO in vivo. The structures of both wild-type CueO and a variant lacking the Met-rich domain were resolved by X-ray crystallography and simulated by molecular dynamics, offering a detailed structural basis for understanding their functions. Cuprous oxidase activity was then quantified either from free electrogenerated Cu with CueO immobilized on an electrode or from different Cu-complexes with CueO in solution. These methods enabled the fine-tuning of Cu chelation strength. Consistent with findings for CueO, it was confirmed that the Met-rich domain of CueO is dispensable for Cu oxidation when weakly chelated Cu is used. However, its role becomes crucial as chelation strength increases. Comparative analyses of cuprous oxidase activity between CueO and CueO revealed that CueO outperforms CueO, demonstrating superior efficiency in oxidizing Cu from chelated forms. This enhanced activity correlates with the higher methionine content in CueO, which appears to play a pivotal role in facilitating Cu oxidation under conditions of stronger chelation.

摘要

多铜氧化酶家族成员CueOs在细菌铜解毒过程中发挥着关键作用。这些酶具有一个独特的富含甲硫氨酸(Met-rich)的结构域,该结构域对于将Cu氧化为Cu至关重要。最近使用来自(此处原文缺失细菌名称)的CueO(CueO)的研究表明,富含甲硫氨酸的结构域有助于从高度螯合的物种中募集Cu。为了进一步探索这一假设,我们制备并表征了一种来自(此处原文缺失细菌名称)的新型CueO(CueO)。CueO拥有一个比CueO明显更大的富含甲硫氨酸的结构域,这为该结构域在亚铜氧化酶活性中的作用提供了新的见解。我们首先表明,CueO在体内铜解毒方面与CueO一样高效。通过X射线晶体学解析了野生型CueO和缺乏富含甲硫氨酸结构域的变体的结构,并通过分子动力学进行了模拟,为理解它们的功能提供了详细的结构基础。然后,通过将CueO固定在电极上从游离电生成的Cu或通过溶液中与CueO的不同Cu配合物来定量亚铜氧化酶活性。这些方法能够微调Cu螯合强度。与CueO的研究结果一致,证实当使用弱螯合的Cu时,CueO的富含甲硫氨酸的结构域对于Cu氧化是可有可无的。然而,随着螯合强度的增加,其作用变得至关重要。CueO和CueO之间亚铜氧化酶活性的比较分析表明,CueO优于CueO,在从螯合形式氧化Cu方面表现出更高的效率。这种增强的活性与CueO中较高的甲硫氨酸含量相关,这似乎在更强螯合条件下促进Cu氧化中起关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb67/12041951/adb1035f89ff/au5c00076_0001.jpg

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