Protein Information

ID 693
Name thioredoxin
Synonyms ADF; TRX 1; TRX1; ATL derived factor; SASP; Surface associated sulphydryl protein; TRDX; TRX…

Compound Information

ID 1808
Name sulfoxide
CAS 5-[2-(octylsulfinyl)propyl]-1,3-benzodioxole

Reference

PubMed Abstract RScore(About this table)
17660280 Fukushima E, Shinka Y, Fukui T, Atomi H, Imanaka T: Methionine sulfoxide reductase from the hyperthermophilic archaeon Thermococcus kodakaraensis, an enzyme designed to function at suboptimal growth temperatures. J Bacteriol. 2007 Oct;189(19):7134-44. Epub 2007 Jul 27.
Methionine sulfoxide reductase (Msr) catalyzes the thioredoxin-dependent reduction and repair of methionine sulfoxide (MetO). Although Msr genes are not present in most hyperthermophile genomes, an Msr homolog encoding an MsrA-MsrB fusion protein (MsrAB (Tk)) was present on the genome of the hyperthermophilic archaeon Thermococcus kodakaraensis. Recombinant proteins corresponding to MsrAB (Tk) and the individual domains (MsrA (Tk) and MsrB (Tk)) were produced, purified, and biochemically examined. MsrA (Tk) and MsrB (Tk) displayed strict substrate selectivity for Met-S-O and Met-R-O, respectively. MsrAB (Tk), and in particular the MsrB domain of this protein, displayed an intriguing behavior for an enzyme from a hyperthermophile. While MsrAB (Tk) was relatively stable at temperatures up to 80 degrees C (with a half-life of approximately 30 min at 80 degrees C), a 75% decrease in activity was observed after 2.5 min at 85 degrees C, the optimal growth temperature of this archaeon. Moreover, maximal levels of MsrB activity of MsrAB (Tk) were observed at the strikingly low temperature of 30 degrees C, which also was observed for MsrB (Tk). Consistent with the low-temperature-specific biochemical properties of MsrAB (Tk), the presence of the protein was greater in T. kodakaraensis cells grown at suboptimal temperatures (60 to 70 degrees C) and could not be detected at 80 to 90 degrees C. We found that the amount of intracellular MsrAB (Tk) protein increased with exposure to higher dissolved oxygen levels, but only at suboptimal growth temperatures. While measuring background rates of the Msr enzyme reactions, we observed significant levels of MetO reduction at high temperatures without enzyme. The occurrence of nonenzymatic MetO reduction at high temperatures may explain the specific absence of Msr homologs in most hyperthermophiles. Together with the fact that the presence of Msr in T. kodakaraensis is exceptional among the hyperthermophiles, the enzyme may represent a novel strategy for this organism to deal with low-temperature environments in which the dissolved oxygen concentrations increase.
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