Proteomics as a tool for studying energy metabolism in lactic acid bacteria

被引:60
作者
Pessione, Alessandro [1 ]
Lamberti, Cristina [1 ]
Pessione, Enrica [1 ]
机构
[1] Univ Turin, Dipartimento Biol Anim & Uomo, I-10123 Turin, Italy
关键词
ARGININE DEIMINASE PATHWAY; BIOGENIC-AMINE PRODUCTION; LACTOBACILLUS-SANFRANCISCENSIS CB1; HISTIDINE-DECARBOXYLASE ACTIVITY; WALL-ASSOCIATED PROTEINASE; LACTOCOCCUS-LACTIS; OENOCOCCUS-OENI; ESCHERICHIA-COLI; MALOLACTIC FERMENTATION; TYROSINE DECARBOXYLASE;
D O I
10.1039/c001948h
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
Lactic acid bacteria (LAB) are very ancient organisms that can't obtain metabolic energy by respiration without external heme supplementation. Since the gain in ATP from lactic fermentation is inadequate to support efficient growth, they developed alternative strategies for energy production. Three main energy generating routes are present in LAB: amino acid decarboxylation, malate decarboxylation and arginine deimination (ADI pathway). These routes, apart from supplying energy, also play a role in pH control. Lactic fermentation, which leads to lactic acid accumulation, causes a pH decrease that amino acid decarboxylations, originating basic amines, and the ADI pathway, giving rise to ammonia, may partially contrast. In the present mini-review, the reciprocal relationships among these metabolic pathways are considered, on the basis of proteomic results obtained from four different LAB strains, all of which possess the ADI pathway, but express different amino acid decarboxylases. The strains have been isolated and selected from different habitats and the role of some inducing molecules as well as of the growth phases is discussed. The overall results have revealed that LAB are complex biosystems able to set up a sophisticated metabolic regulation through a complex network of proteins that also include stress responses, as well as protease activation or inhibition.
引用
收藏
页码:1419 / 1430
页数:12
相关论文
共 106 条
[1]   Arginine, citrulline and ornithine metabolism by lactic acid bacteria from wine [J].
Arena, ME ;
Saguir, FM ;
de Nadra, MCM .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 1999, 52 (03) :155-161
[2]   Biogenic amine production by Lactobacillus [J].
Arena, ME ;
de Nadra, MCM .
JOURNAL OF APPLIED MICROBIOLOGY, 2001, 90 (02) :158-162
[3]   Gene structure, organization, expression, and potential regulatory mechanisms of arginine catabolism in Enterococcus faecalis [J].
Barcelona-Andrés, B ;
Marina, A ;
Rubio, V .
JOURNAL OF BACTERIOLOGY, 2002, 184 (22) :6289-6300
[4]   Amino acid decarboxylation by Lactobacillus curvatus CTC273 affected by the pH and glucose availability [J].
Bover-Cid, Sara ;
Miguelez-Arrizado, M. Jesus ;
Becker, Biserka ;
Holzapfel, Wilhelm H. ;
Vidal-Carou, M. Carmen .
FOOD MICROBIOLOGY, 2008, 25 (02) :269-277
[5]   Aerotolerance of strictly anaerobic microorganisms and factors of defense against oxidative stress: A review [J].
Brioukhanov, A. L. ;
Netrusov, A. I. .
APPLIED BIOCHEMISTRY AND MICROBIOLOGY, 2007, 43 (06) :567-582
[6]   Generation of a membrane potential by Lactococcus lactis through aerobic electron transport [J].
Brooijmans, R. J. W. ;
Poolman, B. ;
Schuurman-Wolters, G. K. ;
de Vos, W. M. ;
Hugenholtz, J. .
JOURNAL OF BACTERIOLOGY, 2007, 189 (14) :5203-5209
[7]   SELENIUM AND LACTOBACILLUS SPECIES [J].
CALOMME, MR ;
VANDENBRANDEN, K ;
VANDEN BERGHE, DA .
JOURNAL OF APPLIED BACTERIOLOGY, 1995, 79 (03) :331-340
[8]   Crystal structure and functional analysis of Escherichia coli glutamate decarboxylase [J].
Capitani, G ;
De Biase, D ;
Aurizi, C ;
Gut, H ;
Bossa, F ;
Grütter, MG .
EMBO JOURNAL, 2003, 22 (16) :4027-4037
[9]   The lactic acid bacteria: A literature survey [J].
Carr, FJ ;
Chill, D ;
Maida, N .
CRITICAL REVIEWS IN MICROBIOLOGY, 2002, 28 (04) :281-370
[10]   Peptidases and amino acid catabolism in lactic acid bacteria [J].
Christensen, JE ;
Dudley, EG ;
Pederson, JA ;
Steele, JL .
ANTONIE VAN LEEUWENHOEK INTERNATIONAL JOURNAL OF GENERAL AND MOLECULAR MICROBIOLOGY, 1999, 76 (1-4) :217-246