Malate:quinone oxidoreductase is essential for growth on ethanol or acetate in Pseudomonas aeruginosa

被引:40
作者
Kretzschmar, U [1 ]
Rückert, A [1 ]
Jeoung, JH [1 ]
Görisch, H [1 ]
机构
[1] Tech Univ Berlin, Fachgebiet Tech Biochem, Inst Biotechnol Techn, D-13353 Berlin, Germany
来源
MICROBIOLOGY-SGM | 2002年 / 148卷
关键词
ethanol oxidation; malate conversion; pyruvate carboxylase; malic enzyme;
D O I
10.1099/00221287-148-12-3839
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Pseudomonas aeruginosa ATCC 17933 growing aerobically on ethanol uses a pyrroloquinoline quinone-dependent ethanol oxidation system. A mutant with an interrupted putative mqo gene, in which malate:quinone oxidoreductase (MQO), an enzyme involved in the citric acid cycle/glyoxylate cycle, was showed a severe growth defect on ethanol and was unable to grow defective, on acetate. Glucose, lactate, succinate or malate supported growth of the mutant. However, an NAD-dependent malate dehydrogenase activity could not be detected. Complementation of the mutant by the wild-type allele of the mqo gene restored wild-type behaviour. The wild-type expressed the dye-dependent MQO and NAD(P)-dependent malic enzymes (MEs). Pyruvate carboxylase (PC) was found upon growth of the wild-type and the mutant on all substrates studied. PC activity in the wild-type was induced on glucose and lactate and was always higher on all substrates in the mqo mutant. In A aeruginosa ATCC 17933, an active MQO is required for growth on ethanol or acetate, while with glucose, lactate, succinate or malate an apparent bypass route operates, with MEs using malate for generating pyruvate, which is carboxylated to oxaloacetate by PC. To the authors' knowledge, this is the first time that a specific mutant MQO phenotype has been observed, caused by the inactivation of a gene encoding MQO activity. mqo of A aeruginosa ATCC 17933 corresponds to mqoB (PA4640) of the A aeruginosa PAO1 genome project.
引用
收藏
页码:3839 / 3847
页数:9
相关论文
共 37 条
[1]   Gapped BLAST and PSI-BLAST: a new generation of protein database search programs [J].
Altschul, SF ;
Madden, TL ;
Schaffer, AA ;
Zhang, JH ;
Zhang, Z ;
Miller, W ;
Lipman, DJ .
NUCLEIC ACIDS RESEARCH, 1997, 25 (17) :3389-3402
[2]  
ARMSTRONG JM, 1964, BIOCHIM BIOPHYS ACTA, V86, P194
[3]   NUCLEOTIDE-SEQUENCE OF THE GLPD GENE ENCODING AEROBIC SN-GLYCEROL 3-PHOSPHATE DEHYDROGENASE OF ESCHERICHIA-COLI K-12 [J].
AUSTIN, D ;
LARSON, TJ .
JOURNAL OF BACTERIOLOGY, 1991, 173 (01) :101-107
[4]   A COMPLEMENTATION ANALYSIS OF RESTRICTION AND MODIFICATION OF DNA IN ESCHERICHIA COLI [J].
BOYER, HW ;
ROULLAND.D .
JOURNAL OF MOLECULAR BIOLOGY, 1969, 41 (03) :459-&
[5]  
CETIN ET, 1965, J BACTERIOL, V89, P1432
[6]   Quinoprotein ethanol dehydrogenase of Pseudomonas aeruginosa is a homodimer -: Sequence of the gene and deduced structural properties of the enzyme [J].
Diehl, A ;
von Wintzingerode, F ;
Görisch, H .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1998, 257 (02) :409-419
[7]  
DIESTERHAFT MD, 1973, J BIOL CHEM, V248, P6062
[8]   REPLICATION OF AN ORIGIN-CONTAINING DERIVATIVE OF PLASMID RK2 DEPENDENT ON A PLASMID FUNCTION PROVIDED IN TRANS [J].
FIGURSKI, DH ;
HELINSKI, DR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1979, 76 (04) :1648-1652
[9]   ENZYMATIC DETERMINATION OF PYRROLOQUINOLINE QUINONE USING CRUDE MEMBRANES FROM ESCHERICHIA-COLI [J].
GEIGER, O ;
GORISCH, H .
ANALYTICAL BIOCHEMISTRY, 1987, 164 (02) :418-423
[10]  
GraBetal, 1987, METHODS ENZYMATIC AN