Redox Proteomics Uncovers Peroxynitrite-sensitive Proteins That Help Escherichia coli to Overcome Nitrosative Stress

被引:26
作者
Lindemann, Claudia [1 ]
Lupilova, Nataliya [1 ]
Mueller, Alexandra [1 ]
Warscheid, Bettina [2 ,3 ]
Meyer, Helmut E. [1 ]
Kuhlmann, Katja [1 ]
Eisenacher, Martin [1 ]
Leichert, Lars I. [1 ]
机构
[1] Ruhr Univ Bochum, Med Proteome Ctr, D-44780 Bochum, Germany
[2] Univ Freiburg, Fac Biol, D-79104 Freiburg, Germany
[3] Univ Freiburg, BIOSS Ctr Biol Signalling Studies, D-79104 Freiburg, Germany
关键词
CALPAIN ACTIVATOR PROTEIN; ASPARAGINE SYNTHETASE-B; EXPRESSION; INHIBITOR; NITRATION; RESPONSES; TOXICITY; SWITCHES; ENZYME;
D O I
10.1074/jbc.M113.457556
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
Peroxynitrite is a highly reactive chemical species with antibacterial properties that are synthesized in immune cells. In a proteomic approach, we identified specific target proteins of peroxynitrite-induced modifications in Escherichia coli. Although peroxynitrite caused a fairly indiscriminate nitration of tyrosine residues, reversible modifications of protein thiols were highly specific. We used a quantitative redox proteomic method based on isotope-coded affinity tag chemistry and identified four proteins consistently thiol-modified in cells treated with peroxynitrite as follows: AsnB, FrmA, MaeB, and RidA. All four were required for peroxynitrite stress tolerance in vivo. Three of the identified proteins were modified at highly conserved cysteines, and MaeB and FrmA are known to be directly involved in the oxidative and nitrosative stress response in E. coli. In in vitro studies, we could show that the activity of RidA, a recently discovered enamine/imine deaminase, is regulated in a specific manner by the modification of its single conserved cysteine. Mutation of this cysteine 107 to serine generated a constitutively active protein that was not susceptible to peroxynitrite.
引用
收藏
页码:19698 / 19714
页数:17
相关论文
共 49 条
[1]   Peroxynitrite reactivity with amino acids and proteins [J].
Alvarez, B ;
Radi, R .
AMINO ACIDS, 2003, 25 (3-4) :295-311
[2]   Thiol-Based Redox Switches and Gene Regulation [J].
Antelmann, Haike ;
Helmann, John D. .
ANTIOXIDANTS & REDOX SIGNALING, 2011, 14 (06) :1049-1063
[3]   Construction of Escherichia coli K-12 in-frame, single-gene knockout mutants:: the Keio collection [J].
Baba, Tomoya ;
Ara, Takeshi ;
Hasegawa, Miki ;
Takai, Yuki ;
Okumura, Yoshiko ;
Baba, Miki ;
Datsenko, Kirill A. ;
Tomita, Masaru ;
Wanner, Barry L. ;
Mori, Hirotada .
MOLECULAR SYSTEMS BIOLOGY, 2006, 2 (1) :2006.0008
[4]   APPARENT HYDROXYL RADICAL PRODUCTION BY PEROXYNITRITE - IMPLICATIONS FOR ENDOTHELIAL INJURY FROM NITRIC-OXIDE AND SUPEROXIDE [J].
BECKMAN, JS ;
BECKMAN, TW ;
CHEN, J ;
MARSHALL, PA ;
FREEMAN, BA .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1990, 87 (04) :1620-1624
[5]  
BOEHLEIN SK, 1994, J BIOL CHEM, V269, P7450
[6]   Nitrosative stress treatment of E-coli targets distinct set of thiol-containing proteins [J].
Brandes, Nicolas ;
Rinck, Andrea ;
Leichert, Lars Ingo ;
Jakob, Ursula .
MOLECULAR MICROBIOLOGY, 2007, 66 (04) :901-914
[7]  
Brandes N, 2009, ANTIOXID REDOX SIGN, V11, P997, DOI 10.1089/ARS.2008.2285
[8]   Using Quantitative Redox Proteomics to Dissect the Yeast Redoxome [J].
Brandes, Nicolas ;
Reichmann, Dana ;
Tienson, Heather ;
Leichert, Lars I. ;
Jakob, Ursula .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (48) :41893-41903
[9]   Cysteine redox sensor in PKGIα enables oxidant-induced activation [J].
Burgoyne, Joseph R. ;
Madhani, Melanie ;
Cuello, Friederike ;
Charles, Rebecca L. ;
Brennan, Jonathan P. ;
Schroeder, Ewald ;
Browning, Darren D. ;
Eaton, Philip .
SCIENCE, 2007, 317 (5843) :1393-1397
[10]  
Butterfield DA, 2012, ANTIOXID REDOX SIGN, V17, P1487, DOI 10.1089/ars.2012.4742