| Literature DB >> 23800470 |
Immacolata Del Giudice1, Danila Limauro, Emilia Pedone, Simonetta Bartolucci, Gabriella Fiorentino.
Abstract
Microorganisms living in arsenic-rich geothermal environments act on arsenic with different biochemical strategies, but the molecular mechanisms responsible for the resistance to the harmful effects of the metalloid have only partially been examined. In this study, we investigated the mechanisms of arsenic resistance in the thermophilic bacterium Thermus thermophilus HB27. This strain, originally isolated from a Japanese hot spring, exhibited tolerance to concentrations of arsenate and arsenite up to 20mM and 15mM, respectively; it owns in its genome a putative chromosomal arsenate reductase (TtarsC) gene encoding a protein homologous to the one well characterized from the plasmid pI258 of the Gram+bacterium Staphylococcus aureus. Differently from the majority of microorganisms, TtarsC is part of an operon including genes not related to arsenic resistance; qRT-PCR showed that its expression was four-fold increased when arsenate was added to the growth medium. The gene cloning and expression in Escherichia coli, followed by purification of the recombinant protein, proved that TtArsC was indeed a thioredoxin-coupled arsenate reductase with a kcat/KM value of 1.2×10(4)M(-1)s(-1). It also exhibited weak phosphatase activity with a kcat/KM value of 2.7×10(-4)M(-1)s(-1). The catalytic role of the first cysteine (Cys7) was ascertained by site-directed mutagenesis. These results identify TtArsC as an important component in the arsenic resistance in T. thermophilus giving the first structural-functional characterization of a thermophilic arsenate reductase.Entities:
Keywords: (Thermus medium); (arsenate respiratory reduction); (arsenic resistance system); (arsenite oxidation system); (gene ID: 2776273); (low molecular weight protein tyrosine phosphatases); (minimal inhibitory concentration); (p-nitrophenyl phosphate); (thioredoxin reductase); (thioredoxin); Arsenate reductase; Arsenate resistance; Hyperthermophile; LMW-PTPase; MIC; Protein thermal stability; TM; Tr; Trx; TtarsC; aox; arr; ars; pNPP
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Year: 2013 PMID: 23800470 DOI: 10.1016/j.bbapap.2013.06.007
Source DB: PubMed Journal: Biochim Biophys Acta ISSN: 0006-3002