Sinorhizobium meliloti dctA mutants with partial ability to transport dicarboxylic acids

被引:34
作者
Yurgel, SN
Kahn, ML [1 ]
机构
[1] Washington State Univ, Inst Biol Chem, Pullman, WA 99164 USA
[2] Washington State Univ, Sch Mol Biosci, Pullman, WA 99164 USA
关键词
D O I
10.1128/JB.187.3.1161-1172.2005
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Sinorhizobium meliloti dctA encodes a transport protein needed for a successful nitrogen-fixing symbiosis between the bacteria and alfalfa. Using the toxicity of the DctA substrate fluoroorotic acid as a selective agent in an iterated selection procedure, four independent S. meliloti dct4 mutants were isolated that retained some ability to transport dicarboxylates. Two mutations were located in a region called motif B located in a predicted transmembrane helix of the protein that has been shown in other members of the glutamate transporter family to be involved in cation binding. A G114D mutation was located in the third transmembrane helix, which had not previously been directly implicated in transport. Multiple sequence alignment of more than 60 members of the glutamate transporter family revealed a glycine at this position in nearly all members of the family. The fourth mutant was able to transport succinate at almost wild-type levels but was impaired in malate and fumarate transport. It contains two mutations: one in a periplasmic domain and the other predicted to be in the cytoplasm. Separation of the mutations showed that each contributed to the altered substrate preference. dctA deletion mutants that contain the mutant dctA alleles on a plasmid can proceed further in symbiotic development than null mutants of dctA, but none of the plasmids could support symbiotic nitrogen fixation, although they can transport dicarboxylates, some at relatively high levels.
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页码:1161 / 1172
页数:12
相关论文
共 31 条
[1]   Utilization of orotate as a pyrimidine source by Salmonella typhimurium and Escherichia coli requires the dicarboxylate transport protein encoded by dctA [J].
Baker, KE ;
Ditullio, KP ;
Neuhard, J ;
Klein, RA .
JOURNAL OF BACTERIOLOGY, 1996, 178 (24) :7099-7105
[2]   Arginine 447 plays a pivotal role in substrate interactions in a neuronal glutamate transporter [J].
Bendahan, A ;
Armon, A ;
Madani, N ;
Kavanaugh, MP ;
Kanner, BI .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (48) :37436-37442
[3]  
CHARLES TC, 1991, GENETICS, V127, P5
[4]   Loss of cell viability by histidine substitution of leucine 325 of the glutamate transporter EAAT1 [J].
Choi, I ;
Chiu, SY .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2000, 275 (02) :382-385
[5]  
GARDIOL A, 1982, Journal of Bacteriology, V15, P1621
[6]  
GRZEMSKI W, IN PRESS MOL PLANT M
[7]   MUTAGENESIS OF PLASMID DNA WITH HYDROXYLAMINE - ISOLATION OF MUTANTS OF MULTI-COPY PLASMIDS [J].
HUMPHREYS, GO ;
WILLSHAW, GA ;
SMITH, HR ;
ANDERSON, ES .
MOLECULAR & GENERAL GENETICS, 1976, 145 (01) :101-108
[8]   THE MEMBRANE TOPOLOGY OF THE RHIZOBIUM-MELILOTI C4-DICARBOXYLATE PERMEASE (DCTA) AS DERIVED FROM PROTEIN FUSIONS WITH ESCHERICHIA-COLI K12 ALKALINE-PHOSPHATASE (PHOA) AND BETA-GALACTOSIDASE (LACZ) [J].
JORDING, D ;
PUHLER, A .
MOLECULAR AND GENERAL GENETICS, 1993, 241 (1-2) :106-114
[9]  
Kahn M. L., 1998, The Rhizobiaceae: molecular biology of model plant-associated bacteria., P461
[10]   Mutation of an amino acid residue influencing potassium coupling in the glutamate transporter GET-1 induces obligate exchange [J].
Kavanaugh, MP ;
Bendahan, A ;
Zerangue, N ;
Zhang, YM ;
Kanner, BI .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (03) :1703-1708