Is 2-phosphoglycerate-dependent automodification of bacterial enolases implicated in their export?

被引:59
作者
Boël, G
Pichereau, V
Mijakovic, I
Mazé, A
Poncet, S
Gillet, S
Giard, JC
Hartke, A
Auffray, Y
Deutscher, J [1 ]
机构
[1] INRA, CNRS, INA PG, UMR 2585, F-78850 Thiverval Grignon, France
[2] Univ Caen, INRA, EA956, Lab Microbiol Environm,USC,IBFA, F-14032 Caen, France
[3] Univ Paris 11, Inst Biochim & Biol Mol & Cellulaire, CNRS, UMR 8619, F-91405 Orsay, France
关键词
enolase; automodification; 2-phosphoglycerate; glycolysis; protein export;
D O I
10.1016/j.jmb.2003.12.082
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
We observed that in vivo and in vitro a small fraction of the glycolytic enzyme enolase became covalently modified by its substrate 2-phosphoglycerate (2-PG). In modified Escherichia coli enolase, 2-PG was bound to Lys341, which is located in the active site. An identical reversible modification was observed with other bacterial enolases, but also with enolase from Saccharomyces cerevisiae and rabbit muscle. An equivalent of Lys341, which plays an important role in catalysis, is present in enolase of all organisms. Covalent binding of 2-PG to this amino acid rendered the enzyme inactive. Replacement of Lys341 of E. coli enolase with other amino acids prevented the automodification and in most cases strongly reduced the activity. As reported for other bacteria, a significant fraction of E. coli enolase was found to be exported into the medium. Interestingly, all Lys341 substitutions prevented not only the automodification, but also the export of enolase. The K341E mutant enolase was almost as active as the wild-type enzyme and therefore allowed us to establish that the loss of enolase export correlates with the loss of modification and not the loss of glycolytic activity. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:485 / 496
页数:12
相关论文
共 44 条
[21]   Binding of Candida albicans enolase to plasmin(ogen) results in enhanced invasion of human brain microvascular endothelial cells [J].
Jong, AY ;
Chen, SHM ;
Stins, MF ;
Kim, KS ;
Tuan, TL ;
Huang, SH .
JOURNAL OF MEDICAL MICROBIOLOGY, 2003, 52 (08) :615-622
[22]   Crystal structure of the bacterial membrane protein TolC central to multidrug efflux and protein export [J].
Koronakis, V ;
Sharff, A ;
Koronakis, E ;
Luisi, B ;
Hughes, C .
NATURE, 2000, 405 (6789) :914-919
[23]   CLEAVAGE OF STRUCTURAL PROTEINS DURING ASSEMBLY OF HEAD OF BACTERIOPHAGE-T4 [J].
LAEMMLI, UK .
NATURE, 1970, 227 (5259) :680-+
[24]   LOS2, a genetic locus required for cold-responsive gene transcription encodes a bi-functional enolase [J].
Lee, H ;
Guo, Y ;
Ohta, M ;
Xiong, LM ;
Stevenson, B ;
Zhu, JK .
EMBO JOURNAL, 2002, 21 (11) :2692-2702
[25]   Function in Escherichia coli of the non-catalytic part of RNase E:: role in the degradationof ribosome-free mRNA [J].
Leroy, A ;
Vanzo, NF ;
Sousa, S ;
Dreyfus, M ;
Carpousis, AJ .
MOLECULAR MICROBIOLOGY, 2002, 45 (05) :1231-1243
[26]  
LIDA H, 1985, NATURE, V315, P688
[27]   Regulation of the activity of the Bacillus subtilis antiterminator LicT by multiple PEP-dependent, enzyme I- and HPr-catalysed phosphorylation [J].
Lindner, C ;
Galinier, A ;
Hecker, M ;
Deutscher, J .
MOLECULAR MICROBIOLOGY, 1999, 31 (03) :995-1006
[28]   RNA degradosomes exist in vivo in Escherichia coli as multicomponent complexes associated with the cytoplasmic membrane via the N-terminal region of ribonuclease E [J].
Liou, GG ;
Jane, WN ;
Cohen, SN ;
Lin, NS ;
Lin-Chao, S .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (01) :63-68
[29]   Inhibition of cell surface mediated plasminogen activation by a monoclonal antibody against α-enolase [J].
López-Alemany, R ;
Longstaff, C ;
Hawley, S ;
Mirshahi, M ;
Fábregas, P ;
Jardí, M ;
Merton, E ;
Miles, LA ;
Félez, J .
AMERICAN JOURNAL OF HEMATOLOGY, 2003, 72 (04) :234-242
[30]   Enhanced activation of bound plasminogen on Staphylococcus aureus by staphylokinase [J].
Mölkänen, T ;
Tyynelä, J ;
Helin, J ;
Kalkkinen, N ;
Kuusela, P .
FEBS LETTERS, 2002, 517 (1-3) :72-78