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PMID: 3136141 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Sodium-dependent transport of neutral amino acids by whole cells and membrane vesicles of Streptococcus bovis, a ruminal bacterium.

Journal of bacteriology ·Vol. 170 ·No. 8 ·1988-08-00 ·Pages 3531-6

Russell JB, Strobel HJ, Driessen AJ, Konings WN

Abstract

Streptococcus bovis JB1 cells were able to transport serine, threonine, or alanine, but only when they were incubated in sodium buffers. If glucose-energized cells were washed in potassium phosphate and suspended in potassium phosphate buffer, there was no detectable uptake. Cells deenergized with 2-deoxyglucose and incubated in sodium phosphate buffer were still able to transport serine, and this result indicated that the chemical sodium gradient was capable of driving transport. However, when the deenergized cells were treated with valinomycin and diluted into sodium phosphate to create both an artificial membrane potential and a chemical sodium gradient, rates of serine uptake were fivefold greater than in cells having only a sodium gradient. If deenergized cells were preloaded with sodium (no membrane potential or sodium gradient), there was little serine transport. Nigericin and monensin, ionophores capable of reversing sodium gradients across membranes, strongly inhibited sodium-dependent uptake of the three amino acids. Membrane vesicles loaded with potassium and diluted into either lithium or choline chloride were unable to transport serine, but rapid uptake was evident if sodium chloride was added to the assay mixture. Serine transport had an extremely poor affinity for sodium, and more than 30 mM was needed for half-maximal rates of uptake. Serine transport was inhibited by an excess of threonine, but an excess of alanine had little effect. Results indicated that S. bovis had separate sodium symport systems for serine or threonine and alanine, and either the membrane potential or chemical sodium gradient could drive uptake.

MeSH Terms
Alanine/metabolism Amino Acids/metabolism Animals Biological Transport, Active Cell Membrane/metabolism Glucose/metabolism Membrane Potentials Rumen/microbiology Serine/metabolism Sodium/metabolism Streptococcus/metabolism,ultrastructure Threonine/metabolism
Chemicals
Amino Acids Threonine Serine Sodium Glucose Alanine
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Russell J B
U.S. Department of Agriculture, Cornell University, Ithaca, New York 14853.
Strobel H J
Driessen A J
Konings W N
References (30)
30 references, click to expand
  1. Bioenergetics of alkalophilic bacteria.
    J Membr Biol. 1986;89(2):113-25 PMID: 2871195
  2. Characteristics and energy requirements of an alpha-aminoisobutyric acid transport system in Streptococcus lactis.
    J Bacteriol. 1976 Aug;127(2):719-30 PMID: 8422
  3. Periplasmic protein associated with the oligopeptide permeases of Salmonella typhimurium and Escherichia coli.
    J Bacteriol. 1983 Sep;155(3):1434-8 PMID: 6350270
  4. Transport of branched-chain amino acids in membrane vesicles of Streptococcus cremoris.
    J Bacteriol. 1987 Nov;169(11):5193-200 PMID: 2822669
  5. Influence of acidosis on rumen function.
    J Anim Sci. 1976 Oct;43(4):910-29 PMID: 789319
  6. Correlation of the vitamin requirements with cultural and biochemical characters of Lactobacillus spp.
    J Gen Microbiol. 1961 Jul;25:473-82 PMID: 13742799
  7. A Phosphate-Bond-Driven Dipeptide Transport System in Streptococcus cremoris Is Regulated by the Internal pH.
    Appl Environ Microbiol. 1987 Dec;53(12):2897-902 PMID: 16347504
  8. Neutral amino acid transport by membrane vesicles of Streptococcus cremoris is subject to regulation by internal pH.
    J Bacteriol. 1987 Jun;169(6):2748-54 PMID: 3108240
  9. Accumulation of neutral amino acids by Streptococcus faecalis. Energy coupling by a proton-motive force.
    J Biol Chem. 1973 Aug 10;248(15):5225-33 PMID: 4129287
  10. Glutamate transport driven by an electrochemical gradient of sodium ions in Escherichia coli.
    J Bacteriol. 1977 Sep;131(3):848-53 PMID: 330502
  11. Microbiological and physiological changes associated with acute indigestion in sheep.
    Cornell Vet. 1952 Oct;42(4):423-49 PMID: 12998362
  12. A proposed mechanism of monensin action in inhibiting ruminal bacterial growth: effects on ion flux and protonmotive force.
    J Anim Sci. 1987 May;64(5):1519-25 PMID: 3583956
  13. Effect of monensin and lasalocid-sodium on the growth of methanogenic and rumen saccharolytic bacteria.
    Appl Environ Microbiol. 1979 Jul;38(1):72-7 PMID: 16345418
  14. Transport of alpha-aminoisobutyric acid by Streptococcus pyogenes and its derived L-form.
    J Bacteriol. 1982 Jan;149(1):211-20 PMID: 7033209
  15. Na+ (Li+)-proline cotransport in Escherichia coli.
    J Membr Biol. 1985;84(2):157-64 PMID: 3889341
  16. Glucose uptake by the cellulolytic ruminal anaerobe Bacteroides succinogenes.
    J Bacteriol. 1987 Feb;169(2):500-6 PMID: 3804970
  17. Variation in Quantitative Requirements for Na for Transport of Metabolizable Compounds by the Marine Bacteria Alteromonas haloplanktis 214 and Vibrio fischeri.
    Appl Environ Microbiol. 1987 Jul;53(7):1487-95 PMID: 16347378
  18. Compositions and characteristics of strains of Streptococcus bovis.
    J Dairy Sci. 1984 Jul;67(7):1525-31 PMID: 6205028
  19. Lactate efflux-induced electrical potential in membrane vesicles of Streptococcus cremoris.
    J Bacteriol. 1982 Feb;149(2):733-8 PMID: 7056700
  20. Transport and hydrolysis of peptides by microorganisms.
    Ciba Found Symp. 1977;(50):305-34 PMID: 340177
  21. Biological applications of ionophores.
    Annu Rev Biochem. 1976;45:501-30 PMID: 786156
  22. Transport and phosphorylation of disaccharides by the ruminal bacterium Streptococcus bovis.
    Appl Environ Microbiol. 1987 Oct;53(10):2388-93 PMID: 2827569
  23. Properties of a Na+-coupled serine-threonine transport system in Escherichia coli.
    Biochim Biophys Acta. 1987 Dec 11;905(2):231-9 PMID: 2825778
  24. Ammonium salts as a sole source of nitrogen for the growth of Streptococcus bovis.
    J Bacteriol. 1959 Jul;78(1):147 PMID: 13672923
  25. Bacterial periplasmic transport systems: structure, mechanism, and evolution.
    Annu Rev Biochem. 1986;55:397-425 PMID: 3527048
  26. Effect of pH on the efficiency of growth by pure cultures of rumen bacteria in continuous culture.
    Appl Environ Microbiol. 1980 Mar;39(3):604-10 PMID: 7387158
  27. Effect of monensin fed with forage on digestion and the ruminal ecosystem of steers.
    J Anim Sci. 1976 Jan;42(1):229-34 PMID: 2571
  28. Amino acid concentrations in rumen fluid.
    Appl Microbiol. 1967 Jan;15(1):148-51 PMID: 6031429
  29. Sodium, an obligate growth requirement for predominant rumen bacteria.
    Appl Microbiol. 1974 Mar;27(3):549-52 PMID: 4856854
  30. Effect of hydrophobicity of utilization of peptides by ruminal bacteria in vitro.
    Appl Environ Microbiol. 1987 Sep;53(9):2021-5 PMID: 3674870
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1988-08-00
Pages
3531-6
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC211324
Subset
IM
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