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腐殖酸铜配合物与甲烷菌素之间的竞争配体交换。

Competitive ligand exchange between Cu-humic acid complexes and methanobactin.

机构信息

Institute of Biogeochemistry and Pollutant Dynamics, Department of Environmental Systems Science, ETH Zurich, CHN, Universitätstrasse 16, Zurich, Switzerland.

出版信息

Geobiology. 2013 Jan;11(1):44-54. doi: 10.1111/gbi.12010. Epub 2012 Oct 22.

Abstract

Copper has been found to play a key role in the physiology of methanotrophic micro-organisms, and methane oxidation may critically depend on the availability of Cu. In natural environments, such as soils, sediments, peat bogs, and surface waters, the presence of natural organic matter (NOM) can control the bioavailability of Cu by forming strong metal complexes. To promote Cu acquisition, methanotrophs exude methanobactin, a ligand known to have a high affinity for Cu. In this study, the capability of methanobactin for Cu acquisition from NOM was investigated using humic acid (HA) as a model substance. The kinetics of ligand exchange between Cu-HA and methanobactin was observed by UV-vis spectroscopy, and the speciation of Cu bound to methanobactin was determined by size-exclusion chromatography coupled to an ICP-MS. The results showed that Cu was mobilized from HA by a fast ligand exchange reaction following a second-order rate law with first-order kinetics for both methanobactin and Cu-HA complexes. The reaction rates decreased with decreasing temperature. Equilibrium experiments indicated that methanobactin was not sorbed to HA and proved that methanobactin is competitive with HA for Cu binding by forming strong 1:1 Cu-methanobactin complexes. Consequently, our results demonstrate that methanobactin can efficiently acquire Cu in organic-rich environments.

摘要

铜被发现对甲烷营养微生物的生理学起着关键作用,而甲烷氧化可能严重依赖于铜的可用性。在自然环境中,如土壤、沉积物、泥炭沼泽和地表水,天然有机物(NOM)的存在可以通过形成强金属配合物来控制铜的生物利用度。为了促进铜的获取,甲烷营养菌分泌甲烷菌素,这是一种已知对铜具有高亲和力的配体。在这项研究中,使用腐殖酸(HA)作为模型物质,研究了甲烷菌素从 NOM 中获取铜的能力。通过紫外可见光谱观察了 Cu-HA 和甲烷菌素之间配体交换的动力学,通过尺寸排阻色谱法与电感耦合等离子体质谱法(ICP-MS)确定了与甲烷菌素结合的 Cu 的形态。结果表明,Cu 通过快速的配体交换反应从 HA 中被动员出来,遵循二级速率定律,甲烷菌素和 Cu-HA 配合物的动力学均为一级。反应速率随温度降低而降低。平衡实验表明,甲烷菌素不被 HA 吸附,并证明甲烷菌素通过形成强的 1:1 Cu-甲烷菌素配合物与 HA 竞争 Cu 结合。因此,我们的结果表明,甲烷菌素可以在富含有机物的环境中有效地获取 Cu。

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