Literature DB >> 7287623

Succinate transport in Rhizobium leguminosarum.

T M Finan, J M Wood, D C Jordan.   

Abstract

The transport of succinate was studied in an effective streptomycin-resistant strain of Rhizobium leguminosarum. High levels of succinate transport occurred when cells were grown on succinate, fumarate, or malate, whereas low activity was found when cells were grown on glucose, sucrose, arabinose, or pyruvate as the sole carbon source. Because of the rapid metabolism of succinate after transport into the cells, a succinate dehydrogenase-deficient mutant was isolated in which intracellular succinate accumulated to over 400 times the external concentration. Succinate transport was completely abolished in the presence of metabolic uncouplers but was relatively insensitive to sodium arsenate. Succinate transport was a saturable function of the succinate concentration, and the apparent Km and Vmax values for transport were determined in both the parent and the succinate dehydrogenase mutant. Malate and fumarate competitively inhibited succinate transport, whereas citrate and malonate had no effect. Succinate transport mutants were isolated by transposon (Tn5) mutagenesis. These mutants were unable to transport succinate or malate and were unable to grow on succinate, malate, or fumarate as the sole carbon source. The mutants grew normally on pyruvate, oxaloacetate, citrate, or arabinose, and revertants isolated on succinate minimal medium had regained the ability to grow on malate and fumarate. From these data, we conclude that R. leguminosarum possesses a C4-dicarboxylic acid transport system which is inducible and mediates the active transport of succinate, fumarate, and malate into the cell.

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Year:  1981        PMID: 7287623      PMCID: PMC216181          DOI: 10.1128/jb.148.1.193-202.1981

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  19 in total

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Authors:  M K Bach; W E Magee; R H Burris
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2.  Citric acid cycle enzymes and nitrogenase in nodules of Pisum sativum.

Authors:  W G Kurz; T A LaRUE
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3.  Transport of succinate in Escherichia coli. I. Biochemical and genetic studies of transport in whole cells.

Authors:  T C Lo; M K Rayman; B D Sanwal
Journal:  J Biol Chem       Date:  1972-10-10       Impact factor: 5.157

4.  Different mechanisms of energy coupling for the shock-sensitive and shock-resistant amino acid permeases of Escherichia coli.

Authors:  E A Berger; L A Heppel
Journal:  J Biol Chem       Date:  1974-12-25       Impact factor: 5.157

5.  The uptake of C4-dicarboxylic acids by Escherichia coli.

Authors:  W W Kay; H L Kornberg
Journal:  Eur J Biochem       Date:  1971-01

6.  A simple graphical method for determining the inhibition constants of mixed, uncompetitive and non-competitive inhibitors.

Authors:  A Cornish-Bowden
Journal:  Biochem J       Date:  1974-01       Impact factor: 3.857

7.  On the cytology and synthetic capacities of natural and artificially produced bacteroids of Rhizobium leguminosarum.

Authors:  D C Jordan; W H Coulter
Journal:  Can J Microbiol       Date:  1965-08       Impact factor: 2.419

8.  Activation of a plant invertase by inorganic phosphate.

Authors:  D K Kidby
Journal:  Plant Physiol       Date:  1966-09       Impact factor: 8.340

9.  Isolation of the soluble substrate recognition component of the dicarboxylate transport system of Escherichia coli.

Authors:  T C Lo; B D Sanwal
Journal:  J Biol Chem       Date:  1975-02-25       Impact factor: 5.157

10.  Properties of an inducible C 4 -dicarboxylic acid transport system in Bacillus subtilis.

Authors:  O K Ghei; W W Kay
Journal:  J Bacteriol       Date:  1973-04       Impact factor: 3.490

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  34 in total

Review 1.  Structural features of the glutamate transporter family.

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2.  Uptake of N-acetylneuraminic acid by Escherichia coli K-235. Biochemical characterization of the transport system.

Authors:  L B Rodríguez-Aparicio; A Reglero; J M Luengo
Journal:  Biochem J       Date:  1987-09-01       Impact factor: 3.857

3.  Individual subunits of the glutamate transporter EAAC1 homotrimer function independently of each other.

Authors:  Christof Grewer; Poonam Balani; Christian Weidenfeller; Thorsten Bartusel; Zhen Tao; Thomas Rauen
Journal:  Biochemistry       Date:  2005-09-06       Impact factor: 3.162

4.  Physiological Characterization of Dicarboxylate-Induced Pleomorphic Forms of Bradyrhizobium japonicum.

Authors:  H K Reding; J E Lepo
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Review 5.  Nutrient sharing between symbionts.

Authors:  James White; Jurgen Prell; Euan K James; Philip Poole
Journal:  Plant Physiol       Date:  2007-06       Impact factor: 8.340

6.  Succinate-Induced Morphology of Rhizobium trifolii 0403 Resembles That of Bacteroids in Clover Nodules.

Authors:  J E Urban; F B Dazzo
Journal:  Appl Environ Microbiol       Date:  1982-07       Impact factor: 4.792

7.  Identification and sequence analysis of the Rhizobium meliloti dctA gene encoding the C4-dicarboxylate carrier.

Authors:  T Engelke; D Jording; D Kapp; A Pühler
Journal:  J Bacteriol       Date:  1989-10       Impact factor: 3.490

8.  Malate transport in Schizosaccharomyces pombe.

Authors:  C Osothsilp; R E Subden
Journal:  J Bacteriol       Date:  1986-12       Impact factor: 3.490

9.  Identification of Rhizobium-specific intergenic mosaic elements within an essential two-component regulatory system of Rhizobium species.

Authors:  M Osterås; J Stanley; T M Finan
Journal:  J Bacteriol       Date:  1995-10       Impact factor: 3.490

10.  Symbiotic properties of C4-dicarboxylic acid transport mutants of Rhizobium leguminosarum.

Authors:  T M Finan; J M Wood; D C Jordan
Journal:  J Bacteriol       Date:  1983-06       Impact factor: 3.490

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