Home LiteratureArticle Details
PMID: 25343 Published · ppublish English Journal Article

Current-voltage relationships for the plasma membrane and its principal electrogenic pump in Neurospora crassa: I. Steady-state conditions.

The Journal of membrane biology ·Vol. 39 ·No. 4 ·1978-03-20 ·Pages 333-67

Gradmann D, Hansen UP, Long WS, Slayman CL, Warncke J

Abstract

The nonlinear membrane current-voltage relationship (I-V curve) for intact hyphae of Neurospora crassa has been determined by means of a 3-electrode voltage-clamp technique, plus "quasi-linear" cable theory. Under normal conditions of growth and respiration, the membrane I-V curve is best described as a parabolic segment convex in the direction of depolarizing current. At the average resting potential of - 174 mV, the membrane conductance is approximately 190 micronhos/cm2; conductance increase to approximately 240 micronhos/cm2 at -300 mV, and decreases to approximately 130 micronhos/cm2 at 0 mV. Irreversible membrane breakdown occurs at potentials beyond this range. Inhibition of the primary electrogenic pump in Neurospora by ATP withdrawal (with 1 mM KCN) depolarizes the membrane to the range of -40 to -70 mV and reduces the slope of the I-V curve by a fixed scaling factor of approximately 0.8. For wild-type Neurospora, compared under control conditions and during steady-state inhibition by cyanide, the I-V difference curve--presumed to define the current-voltage curve for the electrogenic pump--is a saturation function with maximal current of approximately 20 muA/cm2, a half saturation potential near -300 mV, and a projected reversal potential of ca. -400 mV. This value is close to the maximal free energy available to the pump from ATP hydrolysis, so that pump stoichiometry must be close to 1 H+ extruded:1 ATP split. The time-courses of change in membrane potential and resistance with cyanide are compatible with the steady-state I-V curves, under the assumption the cyanide has no major effects other than ATP withdrawal. Other inhibitors, uncouplers, and lowered temperature all have more complicated effects. The detailed temporal analysis of voltage-clamp data showed three time-constants in the clamping currents: one of 10 msec, for charging the membrane capacitance (0.9 muF/cm/2); a second of 50-75 msec; and a third of 20-30 sec, perhaps representing changes of intracellular composition.

MeSH Terms
Biological Transport, Active Cell Membrane/physiology Electric Conductivity Hydrogen-Ion Concentration Membrane Potentials Models, Biological Neurospora/physiology Neurospora crassa/physiology Protons
Chemicals
Protons
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Gradmann D
Hansen U P
Long W S
Slayman C L
Warncke J
References (45)
45 references, click to expand
  1. Generation of adenosine triphosphate in cytochrome-deficient mutants of Neurospora.
    J Biol Chem. 1975 Jan 25;250(2):396-408 PMID: 122972
  2. Uncoupling of oxidative phosphorylation.
    Biochim Biophys Acta. 1976 Sep 27;456(2):129-48 PMID: 788793
  3. Active transport of sodium as the source of electric current in the short-circuited isolated frog skin. Reprinted from Acta. Physiol. Scand. 23: 110-127, 1951.
    J Am Soc Nephrol. 1999 Sep;10(9):2056-65 PMID: 10477160
  4. Occlusion of the septal pores of damaged hyphae of Neurospora crassa by hexagonal crystals.
    Protoplasma. 1974;80(1):57-67 PMID: 4275239
  5. CARRIER MODEL FOR ACTIVE TRANSPORT OF IONS ACROSS A MOSAIC MEMBRANE.
    Biophys J. 1964 Nov;4:421-40 PMID: 14232129
  6. Sodium currents in mammalian muscle.
    J Physiol. 1977 Jun;268(1):223-50 PMID: 874895
  7. Response of the frog skin to steady-state voltage clamping. II. The active pathway.
    J Gen Physiol. 1973 Jul;62(1):1-24 PMID: 4543671
  8. The independence of electrogenic sodium transport and membrane potential in a molluscan neurone.
    J Physiol. 1971 Nov;218(3):599-608 PMID: 5133950
  9. The electrogenic sodium pump and membrane potential of identified neurones in Helix aspersa.
    Comp Biochem Physiol A Comp Physiol. 1974 Mar 1;47(3):897-916 PMID: 4156260
  10. The structure and development of septa in Neurospora crassa.
    Protoplasma. 1974;82(1):125-46 PMID: 4278339
  11. Properties of Neurospora crassa plasma membrane ATPase.
    Arch Biochem Biophys. 1977 Apr 30;180(2):384-93 PMID: 18094
  12. Depolarization of the plasma membrane of Neurospora during active transport of glucose: evidence for a proton-dependent cotransport system.
    Proc Natl Acad Sci U S A. 1974 May;71(5):1935-9 PMID: 4525303
  13. Transmembrane electrochemical H+-potential as a convertible energy source for the living cell.
    FEBS Lett. 1977 Feb 15;74(1):1-9 PMID: 14031
  14. The coupling of sodium efflux and potassium influx in frog muscle.
    J Physiol. 1965 Dec;181(4):865-80 PMID: 5881259
  15. Correlated changes in membrane potential and ATP concentrations in Neurospora.
    Nature. 1970 Apr 18;226(5242):274-6 PMID: 5437519
  16. Ion transport across thin lipid membranes: a critical discussion of mechanisms in selected systems.
    Q Rev Biophys. 1972 May;5(2):187-282 PMID: 4559448
  17. Kinetics of macrotetrolide-induced ion transport across lipid bilayer membranes.
    Biochim Biophys Acta. 1975 Feb 28;382(1):27-40 PMID: 1122321
  18. An investigation of the electrogenic sodium pump in snail neurones, using the constant-field theory.
    J Exp Biol. 1969 Aug;51(1):181-201 PMID: 5822154
  19. Relations between hydrochloric acid secretion and electrical phenomena in frog gastric mucosa.
    Biochem J. 1948;43(3):321-36 PMID: 16748409
  20. Membrane potential and conductance during transport of sodium, potassium and rubidium in frog muscle.
    J Physiol. 1966 Jun;184(4):970-1014 PMID: 5912216
  21. "Action potentials" in Neurospora crassa, a mycelial fungus.
    Biochim Biophys Acta. 1976 Apr 5;426(4):732-44 PMID: 130926
  22. Net uptake of potassium in Neurospora. Exchange for sodium and hydrogen ions.
    J Gen Physiol. 1968 Sep;52(3):424-43 PMID: 5673302
  23. Movement of ions and electrogenesis in microorganisms.
    Am Zool. 1970 Aug;10(3):377-92 PMID: 5431890
  24. Ion and water transport in limonium. II. Short-circuit analysis.
    Biochim Biophys Acta. 1967 Jul 3;135(3):461-5 PMID: 6048816
  25. The relationship between ATP and an electrogenic pump in the plasma membrane of Neurospora crassa.
    J Membr Biol. 1973;14(4):305-38 PMID: 4360924
  26. Electrical properties of Neurospora crassa. Respiration and the intracellular potential.
    J Gen Physiol. 1965 Sep;49(1):93-116 PMID: 5862508
  27. 2,4-Dinitrophenol causes a marked increase in the apparent Km of Pi and of ADP for oxidative phosphorylation.
    Biochem Biophys Res Commun. 1976 Oct 4;72(3):1153-9 PMID: 985515
  28. Electrical properties of Neurospora crassa. Effects of external cations on the intracellular potential.
    J Gen Physiol. 1965 Sep;49(1):69-92 PMID: 5862507
  29. 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
  30. Rectification phenomena in carrier-mediated ion transport.
    Biochim Biophys Acta. 1973 Mar 16;298(2):323-32 PMID: 4719134
  31. Electrogenic proton transport in the plasma membrane of Neurospora.
    Biophys J. 1975 Sep;15(9):968-71 PMID: 1182272
  32. The relationship between the electrochemical proton gradient and active transport in Escherichia coli membrane vesicles.
    Biochemistry. 1977 Mar 8;16(5):854-9 PMID: 14665
  33. The transport of potassium through lipid bilayer membranes by the neutral carriers valinomycin and monactin : Experimental studies to a previously proposed model.
    J Membr Biol. 1971 Jun;5(2):133-53 PMID: 24173097
  34. Stoichiometry of adenosine triphosphate-driven proton translocation in bovine heart submitochondrial particles.
    J Biol Chem. 1973 Aug 10;248(15):5395-402 PMID: 4358615
  35. Evidence for an electrogenic ion pump in Nitella translucens. I. The effects of pH, K + , Na + , light and temperature on the membrane potential and resistance.
    Biochim Biophys Acta. 1972 Oct 23;288(1):73-89 PMID: 4640392
  36. Membrane current and intracellular sodium changes in a snail neurone during extrusion of injected sodium.
    J Physiol. 1969 Apr;201(2):495-514 PMID: 5780556
  37. Electrogenic sodium pump in nerve and muscle cells.
    Physiol Rev. 1972 Jul;52(3):563-94 PMID: 4555514
  38. Effect of pH and metal ion concentration on the equilibrium hydrolysis of adenosine triphosphate to adenosine diphosphate.
    J Biol Chem. 1968 Apr 10;243(7):1337-43 PMID: 5647260
  39. Analog circuit of the Acetabularia membrane.
    J Membr Biol. 1975 Dec 4;25(1-2):183-208 PMID: 2782
  40. Oscillations of an electrogenic pump in the plasma membrane of Neurospora.
    J Membr Biol. 1975 Aug 29;23(2):181-212 PMID: 126326
  41. Characterization of plasma membrane adenosine triphosphatase of Neurospora crassa.
    J Biol Chem. 1977 May 25;252(10):3357-63 PMID: 16897
  42. Cyanide-resistant respiration in Neurospora crassa.
    J Bacteriol. 1971 Dec;108(3):1087-96 PMID: 4333318
  43. Microelectrode studies of the active Na transport pathway of frog skin.
    J Gen Physiol. 1977 May;69(5):571-604 PMID: 301179
  44. Adenine nucleotide levels in Neurospora, as influenced by conditions of growth and by metabolic inhibitors.
    J Bacteriol. 1973 May;114(2):752-66 PMID: 4267534
  45. Intracellular crystalline ergosterol in Neurospora.
    J Biophys Biochem Cytol. 1961 Oct;11:171-7 PMID: 13922856
Article Info
Journal
The Journal of membrane biology
Abbr.
J Membr Biol
ISSN
0022-2631
Published
1978-03-20
Pages
333-67
Language
English
Region
United States
NLM ID
0211301
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]