CLONING OF A MINERAL PHOSPHATE-SOLUBILIZING GENE FROM PSEUDOMONAS-CEPACIA

被引:122
作者
BABUKHAN, S
YEO, TC
MARTIN, WL
DURON, MR
ROGERS, RD
GOLDSTEIN, AH
机构
[1] CALIF STATE UNIV LOS ANGELES, DEPT BIOL, LOS ANGELES, CA 90032 USA
[2] IDAHO NATL ENGN LAB, BIOTECHNOL GRP, IDAHO FALLS, ID 83415 USA
关键词
D O I
10.1128/AEM.61.3.972-978.1995
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
We have recently shown that the ability of some gram-negative bacteria to dissolve poorly soluble calcium phosphates (Mps(+) phenotype) is the result of periplasmic oxidation of glucose to gluconic acid via the quinoprotein glucose dehydrogenase (GDH), a component of the direct oxidation pathway. Escherichia coli K-12 derivatives synthesize apo-GDH but not the cofactor pyrroloquinoline-quinone (PQQ) essential for formation of the holoenzyme, Therefore, in the absence of exogenous PQQ, these strains do not produce gluconic acid and are Mps(-). Evidence is presented to show that expression of a single 396-base Pseudomonas cepacia open reading frame (designated gabY) in E. coli JM109 (a K-12 derivative) was sufficient to induce the Mps(+) phenotype and production of gluconic acid, We present the nucleotide sequence of this open reading frame which coded for a protein (GabY) with a deduced M(r) of 14,235. Coupled transcription-translation of a plasmid (pSLY4 or pGAB1) carrying gabY resulted in production of a protein with an M(r) of 14,750. Disruption of the open reading frame of gabY via site-directed mutagenesis changed the phenotype to Mps(-) and eliminated gluconic acid production. The deduced amino acid sequence of gabY has no apparent homology with those of previously cloned direct oxidation pathway genes but does share regions highly homologous with the histidine permease system membrane-bound protein HisQ as well as other proteins in this family. In the presence of 1 mu M exogenous PQQ, both JM109(pSLY4) and JM109(pGAB1) produced 10 times as much gluconic acid as was seen with either the plasmid or exogenous PQQ alone. The presence of pGAB1 was also sufficient to cause production of gluconic acid in E. coli HB101 (a K-12-B hybrid), In AG121, an apoGDH(-), Tn5 mutant of HB101, the presence of pGAB1 did not cause the production of gluconic acid.
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页码:972 / 978
页数:7
相关论文
共 22 条
[1]   D-GLUCOSE DEHYDROGENASE OF GLUCONOBACTER-SUBOXYDANS - SOLUBILIZATION, PURIFICATION AND CHARACTERIZATION [J].
AMEYAMA, M ;
SHINAGAWA, E ;
MATSUSHITA, K ;
ADACHI, O .
AGRICULTURAL AND BIOLOGICAL CHEMISTRY, 1981, 45 (04) :851-861
[2]   MUTANTS OF ESCHERICHIA-COLI PRODUCING PYRROLOQUINOLINE QUINONE [J].
BIVILLE, F ;
TURLIN, E ;
GASSER, F .
JOURNAL OF GENERAL MICROBIOLOGY, 1991, 137 :1775-1782
[3]   CLONING, MAPPING, AND SEQUENCING OF THE GENE ENCODING ESCHERICHIA-COLI QUINOPROTEIN GLUCOSE-DEHYDROGENASE [J].
CLETONJANSEN, AM ;
GOOSEN, N ;
FAYET, O ;
VANDEPUTTE, P .
JOURNAL OF BACTERIOLOGY, 1990, 172 (11) :6308-6315
[4]   QUINOPROTEINS - ENZYMES CONTAINING THE QUINONOID COFACTOR PYRROLOQUINOLINE QUINONE, TOPAQUINONE OR TRYPTOPHAN-TRYPTOPHAN QUINONE [J].
DUINE, JA .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1991, 200 (02) :271-284
[5]   GLUCOSE-DEHYDROGENASE FROM ACINETOBACTER-CALCOACETICUS - QUINOPROTEIN [J].
DUINE, JA ;
FRANK, J ;
VANZEELAND, JK .
FEBS LETTERS, 1979, 108 (02) :443-446
[6]  
GOLDSTEIN AH, 1994, PHOSPHATE IN MICROORGANISMS, P197
[7]   MOLECULAR-CLONING AND REGULATION OF A MINERAL PHOSPHATE SOLUBILIZING GENE FROM ERWINIA-HERBICOLA [J].
GOLDSTEIN, AH ;
LIU, ST .
BIO-TECHNOLOGY, 1987, 5 (01) :72-74
[8]  
GOLDSTEIN AH, 1993, BIO-TECHNOL, V11, P1250
[9]  
Goldstein AH, 1986, AM J ALTERNATIVE AGR, V1, P57, DOI DOI 10.1017/S0889189300000886
[10]   ACINETOBACTER-CALCOACETICUS GENES INVOLVED IN BIOSYNTHESIS OF THE COENZYME PYRROLO-QUINOLINE-QUINONE - NUCLEOTIDE-SEQUENCE AND EXPRESSION IN ESCHERICHIA-COLI K-12 [J].
GOOSEN, N ;
HORSMAN, HPA ;
HUINEN, RGM ;
VANDEPUTTE, P .
JOURNAL OF BACTERIOLOGY, 1989, 171 (01) :447-455