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PMID: 2784827 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Anatomical distribution of voltage-dependent membrane capacitance in frog skeletal muscle fibers.

The Journal of general physiology ·Vol. 93 ·No. 3 ·1989-03-00 ·Pages 565-84

Huang CL, Peachey LD

Abstract

Components of nonlinear capacitance, or charge movement, were localized in the membranes of frog skeletal muscle fibers by studying the effect of 'detubulation' resulting from sudden withdrawal of glycerol from a glycerol-hypertonic solution in which the muscles had been immersed. Linear capacitance was evaluated from the integral of the transient current elicited by imposed voltage clamp steps near the holding potential using bathing solutions that minimized tubular voltage attenuation. The dependence of linear membrane capacitance on fiber diameter in intact fibers was consistent with surface and tubular capacitances and a term attributable to the capacitance of the fiber end. A reduction in this dependence in detubulated fibers suggested that sudden glycerol withdrawal isolated between 75 and 100% of the transverse tubules from the fiber surface. Glycerol withdrawal in two stages did not cause appreciable detubulation. Such glycerol-treated but not detubulated fibers were used as controls. Detubulation reduced delayed (q gamma) charging currents to an extent not explicable simply in terms of tubular conduction delays. Nonlinear membrane capacitance measured at different voltages was expressed normalized to accessible linear fiber membrane capacitance. In control fibers it was strongly voltage dependent. Both the magnitude and steepness of the function were markedly reduced by adding tetracaine, which removed a component in agreement with earlier reports for q gamma charge. In contrast, detubulated fibers had nonlinear capacitances resembling those of q beta charge, and were not affected by adding tetracaine. These findings are discussed in terms of a preferential localization of tetracaine-sensitive (q gamma) charge in transverse tubule membrane, in contrast to a more even distribution of the tetracaine-resistant (q beta) charge in both transverse tubule and surface membranes. These results suggest that q beta and q gamma are due to different molecules and that the movement of q gamma in the transverse tubule membrane is the voltage-sensing step in excitation-contraction coupling.

MeSH Terms
Animals Glycerol/pharmacology In Vitro Techniques Membrane Potentials/drug effects Muscles/physiology Rana temporaria
Chemicals
Glycerol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Huang C L
Physiological Laboratory, Cambridge, United Kingdom.
Peachey L D
References (46)
46 references, click to expand
  1. The sarcoplasmic reticulum and transverse tubules of the frog's sartorius.
    J Cell Biol. 1965 Jun;25(3):Suppl:209-31 PMID: 5840799
  2. Charge movements near the mechanical threshold in skeletal muscle of Rana temporaria.
    J Physiol. 1984 Apr;349:483-500 PMID: 6610742
  3. Capacitance of the surface and transverse tubular membrane of frog sartorius muscle fibers.
    J Gen Physiol. 1969 Mar;53(3):265-78 PMID: 5767332
  4. Action potentials, afterpotentials, and excitation-contraction coupling in frog sartorius fibers without transverse tubules.
    J Gen Physiol. 1969 Mar;53(3):298-310 PMID: 5767334
  5. Voltage clamp experiments in striated muscle fibres.
    J Physiol. 1970 Jul;208(3):607-44 PMID: 5499787
  6. The maintenance of resting potentials in glycerol-treated muscle fibres.
    J Physiol. 1971 May;215(1):95-102 PMID: 5579685
  7. The effect of glycerol on the structure of lecithin membranes; a study by freeze-etching and X-ray diffraction.
    J Microsc. 1969;90(2):83-106 PMID: 4933761
  8. The effect of diameter on the electrical constants of frog skeletal muscle fibres.
    J Physiol. 1972 Feb;221(1):105-20 PMID: 4536963
  9. Analysis of the membrane capacity in frog muscle.
    J Physiol. 1972 Feb;221(1):121-36 PMID: 5016975
  10. Voltage dependent charge movement of skeletal muscle: a possible step in excitation-contraction coupling.
    Nature. 1973 Mar 23;242(5395):244-6 PMID: 4540479
  11. Differential effects of glycerol treatment on membrane capacity and excitation-contraction coupling in toad sartorius fibres.
    J Physiol. 1973 Oct;234(2):373-408 PMID: 4203309
  12. Speed of repolarization and morphology of glygerol-treated frog muscle fibres.
    J Physiol. 1973 Oct;234(2):465-80 PMID: 4543676
  13. Membrane capacity measurements on frog skeletal muscle in media of low ion content.
    J Physiol. 1974 Mar;237(3):573-605 PMID: 4545185
  14. Membrane particles and transmission at the triad.
    Fed Proc. 1975 Apr;34(5):1382-9 PMID: 1079008
  15. Dihydropyridine receptors in muscle are voltage-dependent but most are not functional calcium channels.
    Nature. 1985 Apr 25-May 1;314(6013):747-51 PMID: 2581141
  16. Inositol 1,4,5-trisphosphate: a possible chemical link in excitation-contraction coupling in muscle.
    Proc Natl Acad Sci U S A. 1985 Sep;82(18):6352-6 PMID: 2994073
  17. Electrical properties of the myotendon region of frog twitch muscle fibers measured in the frequency domain.
    Biophys J. 1985 Aug;48(2):253-67 PMID: 3876852
  18. Voltage dependence of membrane charge movement and calcium release in frog skeletal muscle fibres.
    J Muscle Res Cell Motil. 1985 Aug;6(4):403-33 PMID: 3877737
  19. Experimental analysis of the relationship between charge movement components in skeletal muscle of Rana temporaria.
    J Physiol. 1984 Aug;353:419-34 PMID: 6332900
  20. Muscle fiber termination at the tendon in the frog's sartorius: a stereological study.
    Am J Anat. 1984 Nov;171(3):273-84 PMID: 6334990
  21. Analysis of 'off' tails of intramembrane charge movements in skeletal muscle of Rana temporaria.
    J Physiol. 1984 Nov;356:375-390 PMID: 6335176
  22. Phosphorylation of phosphatidylinositol by transverse tubule vesicles and its possible role in excitation-contraction coupling.
    FEBS Lett. 1986 Jun 23;202(1):69-73 PMID: 3013681
  23. Intramembrane charge movement and calcium release in frog skeletal muscle.
    J Physiol. 1986 Apr;373:481-511 PMID: 3489092
  24. Components of charge movement in rabbit skeletal muscle: the effect of tetracaine and nifedipine.
    J Physiol. 1986 Jul;376:85-100 PMID: 3795083
  25. Involvement of dihydropyridine receptors in excitation-contraction coupling in skeletal muscle.
    Nature. 1987 Feb 19-25;325(6106):717-20 PMID: 2434854
  26. The differential effects of twitch potentiators on charge movements in frog skeletal muscle.
    J Physiol. 1986 Nov;380:17-33 PMID: 3039123
  27. 'Off' tails of intramembrane charge movements in frog skeletal muscle in perchlorate-containing solutions.
    J Physiol. 1987 Mar;384:491-509 PMID: 2821239
  28. 'Glycerol effect' and the mechanism linking excitation of the plasma membrane with contraction.
    Nature. 1961 Dec 23;192:1159-61 PMID: 13895731
  29. The relative contributions of the folds and caveolae to the surface membrane of frog skeletal muscle fibres at different sarcomere lengths.
    J Physiol. 1975 Sep;250(3):513-39 PMID: 1080806
  30. A non-linear voltage dependent charge movement in frog skeletal muscle.
    J Physiol. 1976 Jan;254(2):245-83 PMID: 1082506
  31. Effects of glycerol treatment and maintained depolarization on charge movement in skeletal muscle.
    J Physiol. 1976 Jan;254(2):285-316 PMID: 1082507
  32. The voltage dependence of membrane capacity.
    J Physiol. 1976 Jan;254(2):317-38 PMID: 1082508
  33. Charge movement in the membrane of striated muscle.
    J Physiol. 1976 Jan;254(2):339-60 PMID: 1082509
  34. Density and distribution of tetrodotoxin receptors in normal and detubulated frog sartorius muscle.
    J Gen Physiol. 1976 Apr;67(4):399-416 PMID: 1083895
  35. Charge movement in the membrane of striated muscle.
    Annu Rev Biophys Bioeng. 1978;7:85-112 PMID: 666289
  36. Reactivation of membrane charge movement and delayed potassium conductance in skeletal muscle fibres.
    J Physiol. 1978 May;278:533-57 PMID: 307598
  37. Charge movement and membrane capacity in frog muscle.
    J Physiol. 1979 Apr;289:83-97 PMID: 458722
  38. Dielectric components of charge movements in skeletal muscle.
    J Physiol. 1981;313:187-205 PMID: 6974236
  39. Excitation-contraction uncoupling of striated muscle fibres by formamide treatment: evidence of detubulation.
    J Muscle Res Cell Motil. 1981 Sep;2(3):283-94 PMID: 6974739
  40. Membrane charge movement in contracting and non-contracting skeletal muscle fibres.
    J Physiol. 1981 May;314:565-93 PMID: 6975814
  41. Effects of local anaesthetics on the relationship between charge movements and contractile thresholds in frog skeletal muscle.
    J Physiol. 1981 Nov;320:381-91 PMID: 6976433
  42. Pharmacological separation of charge movement components in frog skeletal muscle.
    J Physiol. 1982 Mar;324:375-87 PMID: 6980275
  43. A quantitative description of the voltage-dependent capacitance in frog skeletal muscle in terms of equilibrium statistical mechanics.
    Proc R Soc Lond B Biol Sci. 1982 Apr 22;215(1198):75-94 PMID: 6127698
  44. Pharmacological studies of charge movement in frog skeletal muscle.
    J Physiol. 1983 Apr;337:509-29 PMID: 6603512
  45. Purification of the calcium antagonist receptor of the voltage-sensitive calcium channel from skeletal muscle transverse tubules.
    Biochemistry. 1984 May 8;23(10):2113-8 PMID: 6329263
  46. Changes in the T-system of muscle fibres under the influence of influx and efflux of glycerol.
    Nature. 1969 Mar 8;221(5184):966-8 PMID: 5765514
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1989-03-00
Pages
565-84
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2216213
Subset
IM
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