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趋磁嗜热泉古菌的汞抗性和汞还原酶活性及表达

Mercury resistance and mercuric reductase activities and expression among chemotrophic thermophilic Aquificae.

机构信息

Department of Biochemistry and Microbiology, Rutgers University, New Brunswick, New Jersey, USA.

出版信息

Appl Environ Microbiol. 2012 Sep;78(18):6568-75. doi: 10.1128/AEM.01060-12. Epub 2012 Jul 6.

DOI:10.1128/AEM.01060-12
PMID:22773655
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3426723/
Abstract

Mercury (Hg) resistance (mer) by the reduction of mercuric to elemental Hg is broadly distributed among the Bacteria and Archaea and plays an important role in Hg detoxification and biogeochemical cycling. MerA is the protein subunit of the homodimeric mercuric reductase (MR) enzyme, the central function of the mer system. MerA sequences in the phylum Aquificae form the deepest-branching lineage in Bayesian phylogenetic reconstructions of all known MerA homologs. We therefore hypothesized that the merA homologs in two thermophilic Aquificae, Hydrogenobaculum sp. strain Y04AAS1 (AAS1) and Hydrogenivirga sp. strain 128-5-R1-1 (R1-1), specified Hg resistance. Results supported this hypothesis, because strains AAS1 and R1-1 (i) were resistant to >10 μM Hg(II), (ii) transformed Hg(II) to Hg(0) during cellular growth, and (iii) possessed Hg-dependent NAD(P)H oxidation activities in crude cell extracts that were optimal at temperatures corresponding with the strains' optimal growth temperatures, 55°C for AAS1 and 70°C for R1-1. While these characteristics all conformed with the mer system paradigm, expression of the Aquificae mer operons was not induced by exposure to Hg(II) as indicated by unity ratios of merA transcripts, normalized to gyrA transcripts for hydrogen-grown AAS1 cultures, and by similar MR specific activities in thiosulfate-grown cultures with and without Hg(II). The Hg(II)-independent expression of mer in the deepest-branching lineage of MerA from bacteria whose natural habitats are Hg-rich geothermal environments suggests that regulated expression of mer was a later innovation likely in environments where microorganisms were intermittently exposed to toxic concentrations of Hg.

摘要

汞(Hg)抗性(mer)通过将汞还原为元素汞而广泛存在于细菌和古菌中,在汞解毒和生物地球化学循环中起着重要作用。MerA 是双体汞还原酶(MR)酶的蛋白质亚基,是 mer 系统的核心功能。在所有已知 MerA 同源物的贝叶斯系统发育重建中,Aquificae 门中的 MerA 序列形成了最深的分支谱系。因此,我们假设两种嗜热 Aquificae 中的 merA 同源物,Hydrogenobaculum sp. strain Y04AAS1(AAS1)和 Hydrogenivirga sp. strain 128-5-R1-1(R1-1),指定了 Hg 抗性。结果支持了这一假设,因为菌株 AAS1 和 R1-1(i)对>10 μM Hg(II)具有抗性,(ii)在细胞生长过程中将 Hg(II)转化为 Hg(0),并且(iii)在粗细胞提取物中具有依赖 Hg 的 NAD(P)H 氧化活性,该活性在与菌株最佳生长温度相对应的温度下最佳,AAS1 的最佳生长温度为 55°C,R1-1 的最佳生长温度为 70°C。虽然这些特征都符合 mer 系统范例,但 Aquificae mer 操纵子的表达并没有像指示那样被 Hg(II)暴露所诱导,AAS1 培养物中 merA 转录物与 gyrA 转录物的比值为 1,并且在没有 Hg(II)的情况下,在硫代硫酸盐生长的培养物中,MR 比活度相似。在其天然栖息地为富含汞的地热环境的细菌中,MerA 的最深分支谱系中的 mer 不受 Hg(II)的表达表明 mer 的调控表达是后来的创新,可能发生在微生物间歇性暴露于有毒浓度 Hg 的环境中。

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本文引用的文献

1
Response to mercury (II) ions in Methylococcus capsulatus (Bath).对甲基球菌(浴)中汞(II)离子的响应。
FEMS Microbiol Lett. 2011 Nov;324(2):106-10. doi: 10.1111/j.1574-6968.2011.02395.x. Epub 2011 Sep 20.
2
Environmental conditions constrain the distribution and diversity of archaeal merA in Yellowstone National Park, Wyoming, U.S.A.环境条件限制了美国怀俄明州黄石国家公园古菌 merA 的分布和多样性。
Microb Ecol. 2011 Nov;62(4):739-52. doi: 10.1007/s00248-011-9890-z. Epub 2011 Jun 29.
3
Isolation and characterization of arsenic resistant Geobacillus kaustophilus strain from geothermal soils.从地热土壤中分离耐砷的高温好氧芽孢杆菌及其特性研究。
J Basic Microbiol. 2011 Aug;51(4):364-71. doi: 10.1002/jobm.201000314. Epub 2011 Mar 24.
4
A thermophilic bacterial origin and subsequent constraints by redox, light and salinity on the evolution of the microbial mercuric reductase.嗜热细菌的起源及其随后受到氧化还原、光照和盐度的限制对微生物汞还原酶进化的影响。
Environ Microbiol. 2010 Nov;12(11):2904-17. doi: 10.1111/j.1462-2920.2010.02260.x.
5
Structure and conformational dynamics of the metalloregulator MerR upon binding of Hg(II).Hg(II) 结合时金属调节子 MerR 的结构和构象动力学。
J Mol Biol. 2010 May 14;398(4):555-68. doi: 10.1016/j.jmb.2010.03.020. Epub 2010 Mar 19.
6
Methylmercury enters an aquatic food web through acidophilic microbial mats in Yellowstone National Park, Wyoming.甲基汞通过怀俄明州黄石国家公园的嗜酸微生物垫进入水生食物网。
Environ Microbiol. 2009 Apr;11(4):950-9. doi: 10.1111/j.1462-2920.2008.01820.x. Epub 2008 Dec 17.
7
Complete and draft genome sequences of six members of the Aquificales.产水菌目的六个成员的完整基因组序列和草图基因组序列。
J Bacteriol. 2009 Mar;191(6):1992-3. doi: 10.1128/JB.01645-08. Epub 2009 Jan 9.
8
An initial characterization of the mercury resistance (mer) system of the thermophilic bacterium Thermus thermophilus HB27.嗜热栖热菌HB27汞抗性(mer)系统的初步表征。
FEMS Microbiol Ecol. 2009 Jan;67(1):118-29. doi: 10.1111/j.1574-6941.2008.00603.x.
9
Determination of Henry's law constant for elemental mercury.元素汞亨利定律常数的测定。
Chemosphere. 2008 Sep;73(4):587-92. doi: 10.1016/j.chemosphere.2008.05.067. Epub 2008 Jul 23.
10
High diversity of bacterial mercuric reductase genes from surface and sub-surface floodplain soil (Oak Ridge, USA).美国橡树岭漫滩表层和亚表层土壤中细菌汞还原酶基因的高度多样性
ISME J. 2007 Sep;1(5):453-67. doi: 10.1038/ismej.2007.56. Epub 2007 Jul 19.