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首页> 外文期刊>FEBS Open Bio >Cysteine and histidine residues are involved in Escherichia coli Tn21 MerE methylmercury transport
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Cysteine and histidine residues are involved in Escherichia coli Tn21 MerE methylmercury transport

机译:半胱氨酸和组氨酸残基与大肠杆菌Tn21 MerE甲基汞运输有关

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摘要

Bacterial resistance to mercury compounds (mercurials) is mediated by proteins encoded by mercury resistance (mer) operons. Six merE variants with site‐directed mutations were constructed to investigate the roles of the cysteine and histidine residues in MerE protein during mercurial transport. By comparison of mercurial uptake by the cell with intact and/or variant MerE, we showed that the cysteine pair in the first transmembrane domain was critical for the transport of both Hg(II) and CH3Hg(I). Also, the histidine residue located near to the cysteine pair was critical for Hg(II) transport, whereas the histidine residue located on the periplasmic side was critical for CH3Hg(I) transport. Thus, enhanced mercurial uptake mediated by MerE may be a promising strategy for the design of new biomass for use in the bioremediation of mercurials in the environment.
机译:细菌对汞化合物(汞)的耐药性是由汞抗性(mer)操纵子编码的蛋白质介导的。构建了六个具有定点突变的merE变体,以研究MerE蛋白在水银运输过程中半胱氨酸和组氨酸残基的作用。通过比较具有完整和/或变异MerE的细胞对汞的吸收,我们发现第一个跨膜结构域中的半胱氨酸对Hg(II)和CH3Hg(I)的运输至关重要。同样,位于半胱氨酸对附近的组氨酸残基对Hg(II)转运至关重要,而位于周质侧的组氨酸残基对CH3Hg(I)转运至关重要。因此,由MerE介导的增加的汞吸收可能是设计用于环境中汞的生物修复的新生物质设计的有前途的策略。

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