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Thiosulfate Transfer Mediated by DsrE/TusA Homologs from Acidothermophilic Sulfur-oxidizing Archaeon Metallosphaera cuprina

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刘利军 cover
刘利军 (Lijun Liu)
Y
Yvonne Stockdreher
T
Tobias Koch
S
Shutao Sun
Z
Zheng Fan
M
Michaele Josten
H
Hans‐Georg Sahl
Q
Qian Wang
Y
Yuanming Luo
刘双江 cover
刘双江 (Shuang‐Jiang Liu) *
C
Christiane Dahl
C
Cheng‐Ying Jiang
DOI:10.1074/jbc.M114.591669delete
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Abstract

Abstract

En 中文
Conserved clusters of genes encoding DsrE and TusA homologs occur in many archaeal and bacterial sulfur oxidizers. TusA has a well documented function as a sulfurtransferase in tRNA modification and molybdenum cofactor biosynthesis in Escherichia coli, and DsrE is an active site subunit of the DsrEFH complex that is essential for sulfur trafficking in the phototrophic sulfur-oxidizing Allochromatium vinosum. In the acidothermophilic sulfur (S-0)-and tetrathionate (S4O62-)-oxidizing Metallosphaera cuprina Ar-4, a dsrE3A-dsrE2B-tusA arrangement is situated immediately between genes encoding dihydrolipoamide dehydrogenase and a heterodisulfide reductase-like complex. In this study, the biochemical features and sulfur transferring abilities of the DsrE2B, DsrE3A, and TusA proteins were investigated. DsrE3A and TusA proved to react with tetrathionate but not with NaSH, glutathione persulfide, polysulfide, thiosulfate, or sulfite. The products were identified as protein-Cys-S-thiosulfonates. DsrE3A was also able to cleave the thiosulfate group from TusA-Cys(18)-S-thiosulfonate. DsrE2B did not react with any of the sulfur compounds tested. DsrE3A and TusA interacted physically with each other and formed a heterocomplex. The cysteine residue (Cys(18)) of TusA is crucial for this interaction. The single cysteine mutants DsrE3A-(CS)-S-93 and DsrE3A-(CS)-S-101 retained the ability to transfer the thiosulfonate group to TusA. TusA-(CS)-S-18 neither reacted with tetrathionate nor was it loaded with thiosulfate with DsrE3A-Cys-S-thiosulfonate as the donor. The transfer of thiosulfate, mediated by a DsrE-like protein and TusA, is unprecedented not only in M. cuprina but also in other sulfur-oxidizing prokaryotes. The results of this study provide new knowledge on oxidative microbial sulfur metabolism.
Keywords:
COMPLETE GENOME SEQUENCE
ESCHERICHIA-COLI
THERMOACIDOPHILIC CRENARCHAEON
ALLOCHROMATIUM-VINOSUM
OXIDATION
PROTEINS
ACIDITHIOBACILLUS
REDUCTASE
BACTERIA
INSIGHTS
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Journal

Journal of Biological Chemistry cover
Journal of Biological Chemistry
IF:
3.9
Papers:
11.2W
Citations:
28.3W

Organization

U
university of bonn
Scholars:
3.2W
Papers: 2.6W
Citations: 29
I
institute of microbiology, cas
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2.2K
Papers: 1.5K
Citations: 4
C
chinese academy of sciences
Scholars:
55.3W
Papers: 44.6W
Citations: 704
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