Bacterial mercury resistance from atoms to ecosystems
Устойчивость бактерий к ртути: от атомов до экосистем
2003-05-13
SCID: 54.1/7bz74tcv
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bacterial mercury resistancemercuric reductase (MerA)mercury biogeochemical cyclingmercury resistance operonsorganomercury lyase (MerB)
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Abstract (AI)
Bacterial resistance to inorganic and organic mercury compounds (HgR) is one of the most widely observed phenotypes in eubacteria. Loci conferring HgR in Gram-positive or Gram-negative bacteria typically have at minimum a mercuric reductase enzyme (MerA) that reduces reactive ionic Hg(II) to volatile, relatively inert, monoatomic Hg(0) vapor and a membrane-bound protein (MerT) for uptake of Hg(II) arranged in an operon under control of MerR, a novel metal-responsive regulator. Many HgR loci encode an additional enzyme, MerB, that degrades organomercurials by protonolysis, and one or more additional proteins apparently involved in transport. Genes conferring HgR occur on chromosomes, plasmids, and transposons and their operon arrangements can be quite diverse, frequently involving duplications of the above noted structural genes, several of which are modular themselves. How this very mobile and plastic suite of proteins protects host cells from this pervasive toxic metal, what roles it has in the biogeochemical cycling of Hg, and how it has been employed in ameliorating environmental contamination are the subjects of this review.
Key Findings
1
Bacterial mercury resistance commonly relies on MerA, which reduces toxic Hg(II) to volatile, relatively inert Hg(0) vapor.
2
HgR genes occur on chromosomes, plasmids, and transposons, with diverse operon architectures and frequent structural-gene duplications.
3
Many resistance loci additionally encode MerB, which detoxifies organomercurials through protonolysis, plus proteins likely involved in transport.
4
The review examines how mobile HgR systems protect bacteria, influence mercury biogeochemical cycling, and support remediation of contaminated environments.
5
Typical HgR operons include MerT for Hg(II) uptake and MerR, a metal-responsive regulator controlling resistance genes.
Research Object
Bacterial mercury-resistance systems (HgR loci) in eubacteria
Research Subject
The molecular mechanisms, genetic organization, environmental functions, and bioremediation applications of bacterial mercury resistance
Publication Details
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2003-05-13
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