The PAPS-Independent Aryl Sulfotransferase and the Alternative Disulfide Bond Formation System in Pathogenic Bacteria

被引:30
作者
Malojcic, Goran [1 ]
Glockshuber, Rudi [1 ]
机构
[1] ETH, Inst Mol Biol & Biophys, CH-8093 Zurich, Switzerland
基金
瑞士国家科学基金会;
关键词
UROPATHOGENIC ESCHERICHIA-COLI; HUMAN INTESTINAL BACTERIUM; ARYLSULFATE SULFOTRANSFERASE; HELICOBACTER-PYLORI; SULFURYL TRANSFER; EUBACTERIUM A-44; KLEBSIELLA K-36; ASTA GENE; ANAEROBIC BACTERIUM; REACTION-MECHANISM;
D O I
10.1089/ars.2010.3119
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Sulfurylation of biomolecules (often termed sulfonation or sulfation) has been described in many organisms in all kingdoms of life. To date, most studies on sulfotransferases, the enzymes catalyzing sulfurylation, have focused on 3'-phosphate-5'-phosphosulfate (PAPS)-dependent enzymes, which transfer the sulfuryl group from this activated anhydride to hydroxyl groups of acceptor molecules. By contrast, the PAPS-independent aryl sulfotransferases (ASSTs) from bacteria, which catalyze sulfotransfer from phenolic sulfate esters to another phenol in the bacterial periplasm, were not well characterized until recently, although they were first described in 1986 in a search for nonhepatic sulfurylation processes. Recent studies revealed that this unusual class of sulfotransferases differs profoundly in both molecular structure and catalytic mechanism from PAPS-dependent sulfotransferases, and that ASSTs from certain bacterial pathogens are upregulated during infection. In this review, we summarize the literature on the roles of sulfurylation in prokaryotes and analyze the occurrence of ASSTs and their dependence on Dsb proteins catalyzing oxidative folding in the periplasm. Furthermore, we discuss structural differences and similarities between aryl sulfotransferases and PAPS-dependent sulfotransferases. Antioxid. Redox Signal. 13, 1247-1259.
引用
收藏
页码:1247 / 1259
页数:13
相关论文
共 77 条
[1]   Cloning and sequencing of the Klebsiella K-36 astA gene, encoding an arylsulfate sulfotransferase [J].
Baek, MC ;
Kim, SK ;
Kim, DH ;
Kim, BK ;
Choi, EC .
MICROBIOLOGY AND IMMUNOLOGY, 1996, 40 (08) :531-537
[2]   A PATHWAY FOR DISULFIDE BOND FORMATION INVIVO [J].
BARDWELL, JCA ;
LEE, JO ;
JANDER, G ;
MARTIN, N ;
BELIN, D ;
BECKWITH, J .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (03) :1038-1042
[3]   IDENTIFICATION OF A PROTEIN REQUIRED FOR DISULFIDE BOND FORMATION INVIVO [J].
BARDWELL, JCA ;
MCGOVERN, K ;
BECKWITH, J .
CELL, 1991, 67 (03) :581-589
[4]   BUILDING BRIDGES - DISULFIDE BOND FORMATION IN THE CELL [J].
BARDWELL, JCA .
MOLECULAR MICROBIOLOGY, 1994, 14 (02) :199-205
[5]   The nonconsecutive disulfide bond of Escherichia coli phytase (AppA) renders it dependent on the protein-disulfide isomerase, DsbC [J].
Berkmen, M ;
Boyd, D ;
Beckwith, J .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (12) :11387-11394
[6]   Sulfotransferases, sulfatases and formylglycine-generating enzymes: a sulfation fascination [J].
Bojarova, Pavla ;
Williams, Spencer J. .
CURRENT OPINION IN CHEMICAL BIOLOGY, 2008, 12 (05) :573-581
[7]   Characterization of SrgA, a Salmonella enterica serovar typhimurium virulence plasmid-encoded paralogue of the disulfide oxidoreductase DsbA, essential for biogenesis of plasmid-encoded fimbriae [J].
Bouwman, CW ;
Kohli, M ;
Killoran, A ;
Touchie, GA ;
Kadner, RJ ;
Martin, NL .
JOURNAL OF BACTERIOLOGY, 2003, 185 (03) :991-1000
[8]   Mechanisms of reaction of sulfate esters: A molecular orbital study of associative sulfuryl group transfer, intramolecular migration, and pseudorotation [J].
Cameron, DR ;
Thatcher, GRJ .
JOURNAL OF ORGANIC CHEMISTRY, 1996, 61 (17) :5986-5997
[9]  
CHAI CLL, 1992, BIOORG CHEM, V20, P181
[10]   Sulfotransferases: Structure, mechanism, biological activity, inhibition, and synthetic utility [J].
Chapman, E ;
Best, MD ;
Hanson, SR ;
Wong, CH .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2004, 43 (27) :3526-3548