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PMID: 6708088 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Generalized kinetic analysis of ion-driven cotransport systems: a unified interpretation of selective ionic effects on Michaelis parameters.

The Journal of membrane biology ·Vol. 77 ·No. 2 ·1984-00-00 ·Pages 123-52

Sanders D, Hansen UP, Gradmann D, Slayman CL

Abstract

A major obstacle to the understanding of gradient-driven transport systems has been their apparently wide kinetic diversity, which has seemed to require a variety of ad hoc mechanisms. Ordinary kinetic analysis, however, has been hampered by one mathematically powerful but physically dubious assumption: that rate limitation occurs in transmembrane transit, so that ligand-binding reactions are at equilibrium. Simple models lacking that assumption turn out to be highly flexible and are able to describe most of the observed kinetic diversity in co- and counter-transport systems. Our "minimal" model of cotransport consists of a single transport loop linking six discrete states of a carrier-type molecule. The state transitions include one transmembrane charge-transport step, and one step each for binding of substrate and cosubstrate (driver ion) at each side of the membrane. The properties of this model are developed by sequential use of realistic experimental simplifications and generalized numerical computations, focussed to create known effects of substrate, driver ion, and membrane potential upon the apparent Michaelis parameters (Jmax, Km) of isotopic substrate influx. Specific behavior of the minimal model depends upon the arrangement of magnitudes of individual reaction constants among the whole set (12) in the loop. Well defined arrangements have been found which permit either increasing membrane potential or increasing external driver-ion selectively to reduce the substrate Km, elevate Jmax, jointly raise both Km and Jmax, or lower Km while raising Jmax. Other arrangements allow rising internal driver ion to act like either a competitive or a noncompetitive inhibitor of entry, or allow internal substrate to shut down ("transinhibit") influx despite large inward driving forces. These findings obviate most postulates of special mechanisms in cotransport: e.g., stoichiometry changes, ion wells, carrier-mediated leakage, and gating - at least as explanations for existing transport kinetic data. They also provide a simple interpretation of certain kinds of homeostatic regulation, and lead to speculation that the observed diversity in cotransport kinetics reflects control-related selection of reaction rate constants, rather than fundamental differences of mechanism.

MeSH Terms
Biological Transport Cell Membrane/physiology Ions Kinetics Mathematics Models, Biological
Chemicals
Ions
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Sanders D
Hansen U P
Gradmann D
Slayman C L
References (63)
63 references, click to expand
  1. Proton-sulfate co-transport: mechanism of H+ and sulfate addition to the chloride transporter of human red blood cells.
    J Gen Physiol. 1982 Jan;79(1):87-113 PMID: 7061989
  2. Sodium and sugar fluxes across the mucosal border of rabbit ileum.
    J Gen Physiol. 1969 Mar;53(3):362-83 PMID: 5767337
  3. Regulation of histidine uptake by specific feedback inhibition of two histidine permeases in Saccharomyces cerevisiae.
    Eur J Biochem. 1970 May 1;14(1):197-204 PMID: 5447432
  4. Sodium-calcium exchange activity generates a current in cardiac membrane vesicles.
    Science. 1980 Jun 27;208(4451):1461-4 PMID: 7384788
  5. The effects of sodium ions and potassium ions on glycine uptake by mouse ascites-tumour cells in the presence and absence of selected metabolic inhibitors.
    Biochem J. 1967 Jun;103(3):863-76 PMID: 6072273
  6. The kinetics of the beta-galactoside-proton symport of Escherichia coli.
    Biochem J. 1981 Jun 15;196(3):721-31 PMID: 6274320
  7. Kinetic analysis of active membrane transport systems: equations for net velocity and isotope exchange.
    J Theor Biol. 1975 Sep;53(1):125-44 PMID: 558
  8. The complete rate equation, including the explicit dependence on Na+ ions, for the influx of alpha-aminoisobutyric acid into mouse brain slices.
    J Membr Biol. 1980;52(2):95-105 PMID: 7365784
  9. A kinetic interpretation of "variable" stoichiometry for an electrogenic sodium pump obeying chemiosmotic principles.
    J Theor Biol. 1982 Apr 21;95(4):665-78 PMID: 7109650
  10. Discrimination of single transport systems. The Na plus-sensitive transport of neutral amino acids in the Ehrlich cell.
    J Gen Physiol. 1966 Sep;50(1):203-24 PMID: 5971029
  11. Electrical and biochemical properties of an enzyme model of the sodium pump.
    J Membr Biol. 1983;74(2):139-53 PMID: 6308260
  12. Co-transport of anions and neutral solutes with cations across charged biological membranes. Effects of surface potential on uptake kinetics.
    J Theor Biol. 1978 Aug 8;73(3):453-68 PMID: 692152
  13. Kinetics of sulfate transport by Penicillium notatum. Interactions of sulfate, protons, and calcium.
    Biochemistry. 1975 Oct 21;14(21):4712-8 PMID: 241386
  14. A possible mechanistic role of the membrane potential in proton-sugar cotransport of Chlorella.
    FEBS Lett. 1978 Mar 1;87(1):157-60 PMID: 24552
  15. Kinetics of carrier-mediated ion transport across lipid bilayer membranes.
    Biochim Biophys Acta. 1970 Sep 15;211(3):458-66 PMID: 5456977
  16. Kinetic analysis of simultaneously occurring proton-sorbose symport and passive sorbose transport in Saccharomyces fragilis.
    Biochim Biophys Acta. 1980 Nov 4;602(2):419-32 PMID: 6252966
  17. The kinetics of membrane transports involving chemical reactions.
    Exp Cell Res. 1955 Aug;9(1):49-67 PMID: 13241509
  18. Slip and leak models of gradient-coupled solute transport.
    Biochem Soc Trans. 1980 Jun;8(3):271-3 PMID: 7399051
  19. Interactions between amino acids during transport and exchanage diffusion in Novikoff and Ehrlich ascites tumor cells.
    Biochim Biophys Acta. 1969 Mar 11;173(2):290-301 PMID: 5774779
  20. Kinetic properties of ion carriers and channels.
    J Membr Biol. 1980 Dec 30;57(3):163-78(-RETURN-) PMID: 6162960
  21. Can free energy transduction be localized at some crucial part of the enzymatic cycle?
    Q Rev Biophys. 1981 Nov;14(4):463-511 PMID: 7034036
  22. Mechanisms of solute transport in selected eukaryotic micro-organisms.
    Adv Microb Physiol. 1982;23:1-78, 269-70 PMID: 6214160
  23. Testing carrier models of cotransport using the binding kinetics of non-transported competitive inhibitors.
    Biochim Biophys Acta. 1980 Feb 28;596(2):272-91 PMID: 7356998
  24. Coupled transport of sodium and organic solutes.
    Physiol Rev. 1970 Oct;50(4):637-718 PMID: 4919599
  25. Coupling of aspartate and serine transport to the transmembrane electrochemical gradient for sodium ions in Halobacterium halobium. Translocation stoichiometries and apparent cooperativity.
    Biochemistry. 1978 Jul 25;17(15):3011-8 PMID: 698182
  26. Calcium efflux from squid axons under constant sodium electrochemical gradient.
    J Gen Physiol. 1978 Oct;72(4):443-70 PMID: 722276
  27. Energetics and mechanisms of lactose translocation in isolated membrane vesicles of Escherichia coli.
    Ann N Y Acad Sci. 1980;358:307-21 PMID: 7011148
  28. Stereospecificity and electrogenicity of amino acid transport in Riccia fluitans.
    Planta. 1981 Oct;152(6):505-12 PMID: 24301154
  29. Glucose 6-phosphate transport in membrane vesicles isolated from Escherichia coli: effect of imposed electrical potential and pH gradient.
    Biochemistry. 1980 May 27;19(11):2522-8 PMID: 6992861
  30. A sodium-dependent sugar co-transport system in bacteria.
    Biochem Biophys Res Commun. 1971 Jul 2;44(1):132-8 PMID: 4940369
  31. Quantitative analysis of proton-linked transport systems. The lactose permease of Escherichia coli.
    Biochem J. 1979 Sep 15;182(3):687-96 PMID: 42390
  32. The effect of intracellular pH on the rate of hexose uptake in Chlorella.
    Biochim Biophys Acta. 1979 Aug 23;555(3):524-30 PMID: 39601
  33. Lysine transport across isolated rabbit ileum.
    J Gen Physiol. 1969 Feb;53(2):157-82 PMID: 5764744
  34. Kinetic relations of the Na-amino acid interaction at the mucosal border of intestine.
    J Gen Physiol. 1967 May;50(5):1261-86 PMID: 6033585
  35. Coupling in secondary active transport. Activation of transport by co-transport and-or counter-transport with the fluxes of other solutes.
    Biochim Biophys Acta. 1972 Feb 11;255(2):442-61 PMID: 5057926
  36. Transport of glycine by hemolyzed and restored pigeon red blood cells. Symmetry properties, trans effects of sodium ion and glycine, and their description by a single rate equation.
    J Biol Chem. 1968 Dec 10;243(23):6140-50 PMID: 5723458
  37. Interpretation of current-voltage relationships for "active" ion transport systems: I. Steady-state reaction-kinetic analysis of class-I mechanisms.
    J Membr Biol. 1981;63(3):165-90 PMID: 7310856
  38. Energetics of Amino Acid Uptake by Vicia faba Leaf Tissues.
    Plant Physiol. 1983 Jan;71(1):1-6 PMID: 16662764
  39. Developmental transitions in uptake of amino acids by synaptosomal fractions isolated from rat cerebral cortex.
    J Neurochem. 1973 Jul;21(1):97-110 PMID: 4720905
  40. Cation coupling to melibiose transport in Salmonella typhimurium.
    J Bacteriol. 1980 Oct;144(1):192-9 PMID: 6998948
  41. Amino acid transport in Neurospora crassa. IV. Properties and regulation of a methionine transport system.
    Biochim Biophys Acta. 1971 Mar 9;233(1):201-14 PMID: 5579132
  42. An algorithm for writing down flux equations for carrier kinetics, and its application to co-transport.
    J Theor Biol. 1976 Oct 21;62(2):467-78 PMID: 994530
  43. Transport of -aminoisobutyric acid in Saccharomyces cerevisiae.
    Biochim Biophys Acta. 1972 Nov 2;288(2):380-9 PMID: 4563235
  44. The mechanism of Na+-dependent D-glucose transport.
    J Biol Chem. 1980 May 25;255(10):4453-62 PMID: 7372586
  45. The hexose-proton cotransport system of chlorella. pH-dependent change in Km values and translocation constants of the uptake system.
    J Gen Physiol. 1974 Nov;64(5):568-81 PMID: 4443792
  46. Quantitative analysis of proton-linked transport systems. Glutamate transport in Staphylococcus aureus.
    Biochem J. 1979 Nov 15;184(2):441-9 PMID: 43145
  47. Coupling in secondary transport. Effect of electrical potentials on the kinetics of ion linked co-transport.
    Biochim Biophys Acta. 1976 Aug 4;443(1):49-63 PMID: 8129
  48. A simple method for derivation of rate equations for enzyme-catalyzed reactions under the rapid equilibrium assumption or combined assumptions of equilibrium and steady state.
    J Biol Chem. 1968 Feb 25;243(4):820-5 PMID: 5638598
  49. ATP-Dependent chloride influx into internally dialyzed squid giant axons.
    J Membr Biol. 1976 Sep 17;28(4):335-49 PMID: 994176
  50. Control of intracellular pH. Predominant role of oxidative metabolism, not proton transport, in the eukaryotic microorganism Neurospora.
    J Gen Physiol. 1982 Sep;80(3):377-402 PMID: 6292329
  51. Energy coupling to ATP synthesis by the proton-translocating ATPase.
    J Membr Biol. 1982;67(1):1-12 PMID: 6178829
  52. The Na+ gradient-dependent transport of D-glucose in renal brush border membranes.
    J Biol Chem. 1975 Aug 10;250(15):6032-9 PMID: 1150669
  53. Regulation of lysine transport by feedback inhibition in Saccharomyces cerevisiae.
    J Bacteriol. 1976 Mar;125(3):864-71 PMID: 767329
  54. Kinetics of Na+-dependent D-glucose transport.
    J Supramol Struct. 1977;7(1):1-13 PMID: 604695
  55. Lactose carrier protein of Escherichia coli: studies on purification, biosynthesis, and mechanism.
    Ann N Y Acad Sci. 1980;358:292-306 PMID: 7011147
  56. On the mechanism of Na+-dependent glucose transport.
    Ann N Y Acad Sci. 1980;339:46-52 PMID: 6249142
  57. Kinetic features of cotransport mechanisms under isotope exchange conditions.
    Membr Biochem. 1981;4(1):11-29 PMID: 7012543
  58. Enzyme kinetics.
    Annu Rev Biochem. 1967;36:77-112 PMID: 18257716
  59. Kinetic analysis of a family of cotransport models.
    Biochim Biophys Acta. 1981 Dec 7;649(2):269-80 PMID: 7317398
  60. The concept of carrier transport and its corollaries in pharmacology.
    Pharmacol Rev. 1961 Jun;13:109-83 PMID: 13785205
  61. Energy coupling in secondary active transport.
    Biochim Biophys Acta. 1980 May 27;604(1):91-126 PMID: 6248113
  62. Interaction of phlorizin and sodium with the renal brush-border membrane D-glucose transporter: stoichiometry and order of binding.
    J Membr Biol. 1981 Jan 30;58(1):43-55 PMID: 7194377
  63. Involvement of Protons as a Substrate for the Sucrose Carrier during Phloem Loading in Vicia faba Leaves.
    Plant Physiol. 1981 Mar;67(3):560-4 PMID: 16661714
Article Info
Journal
The Journal of membrane biology
Abbr.
J Membr Biol
ISSN
0022-2631
Published
1984-00-00
Pages
123-52
Language
English
Region
United States
NLM ID
0211301
Subset
IM
Grants
NIGMS NIH HHS · GM-15858 · United States
Analysis Services
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