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Cellular Mercury Coordination Environment, and Not Cell Surface Ligands, Influence Bacterial Methylmercury Production

机译:细胞汞配位环境而不是细胞表面配体会影响细菌甲基汞的生产

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摘要

The conversion of inorganic mercury (Hg(II)) to methyl-mercury (MeHg) is centra] to the understanding of Hg toxicity in the environment. Hg methylation occurs in the cytosol of certain obligate anaerobic bacteria and archaea possessing the hgcAB gene cluster. However, the processes involved in Hg(II) biouptake and methylation are not well understood. Here, we examined the role of cell surface thiols, cellular ligands with the highest affinity for Hg(II) that are located at the interface between the outer membrane and external medium, on the sorption and methylation of Hg(II) by Geobacter sulfurreducens. The effect of added cysteine (Cys), which is known to greatly enhance Hg(II) biouptake and methylation, was also explored. By quantitatively blocking surface thiols with a thiol binding ligand (qBBr), we show that surface thiols have no significant effect on Hg(II) methylation, regardless of Cys addition. The results also identify a significant amount of cell-associated Hg-S_3/S_4 species, as studied by high energy-resolution X-ray absorption near edge structure (HR-XANES) spectroscopy, under conditions of high MeHg production (with Cys addition). In contrast, Hg-S_2 are the predominant species during low MeHg production. Hg-S_3/S_4 species may be related to enhanced Hg(II) biouptake or the ability of Hg(II) to become methylated by HgcAB and should be further explored in this context.
机译:无机汞(Hg(II))向甲基汞(MeHg)的转化对于理解环境中Hg的毒性至关重要。 Hg甲基化发生在某些具有hgcAB基因簇的专性厌氧细菌和古细菌的胞浆中。但是,有关汞(II)生物摄取和甲基化的过程尚不十分清楚。在这里,我们检查了细胞表面硫醇,对Hg(II)具有最高亲和力的细胞配体,它们位于外膜与外部介质之间的界面上,对Geobacter sulfreducens吸附和甲基化Hg(II)的作用。还研究了添加的半胱氨酸(Cys)的作用,已知该半胱氨酸可大大增强Hg(II)的生物摄取和甲基化。通过定量阻止表面巯基与巯基结合配体(qBBr),我们表明表面巯基对Hg(II)甲基化没有明显影响,而与Cys的添加无关。该结果还确定了大量细胞相关的Hg-S_3 / S_4物种,这是通过在高MeHg产生(添加Cys)的条件下通过高能量分辨率X射线吸收近边缘结构(HR-XANES)光谱研究的。 。相反,在低MeHg产生期间,Hg-S_2是主要物种。 Hg-S_3 / S_4物种可能与增强的Hg(II)生物摄取或Hg(II)被HgcAB甲基化的能力有关,应在此背景下进一步研究。

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  • 来源
    《Environmental Science & Technology》 |2020年第7期|3960-3968|共9页
  • 作者单位

    Department of Geosciences Princeton University Princeton New Jersey 08544 United States;

    School of Chemical and Process Engineering University of Leeds Leeds LS2 9JT U.K.;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 05:27:33

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