Home LiteratureArticle Details
PMID: 3489092 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Intramembrane charge movement and calcium release in frog skeletal muscle.

The Journal of physiology ·Vol. 373 ·1986-04-00 ·Pages 481-511

Melzer W, Schneider MF, Simon BJ, Szucs G

Abstract

Intramembrane charge movement and myoplasmic free calcium transients (delta[Ca2+]) were monitored in voltage-clamped segments of isolated frog muscle fibres cut at both ends and mounted in a double Vaseline-gap chamber. The fibres were stretched to sarcomere lengths of 3.5-4.6 micron to minimize mechanical movement and the related optical artifacts. The over-all calcium removal capability of each fibre was characterized by analysing the decay of delta[Ca2+] following pulses of several different amplitudes and durations. The rate of sarcoplasmic reticulum (s.r.) calcium release was then calculated for each delta[Ca2+] using the calcium removal properties determined for that fibre. The calculated calcium release wave form reached a relatively early peak and then declined appreciably during a 100-150 ms depolarizing pulse. The voltage dependence of the peak rate of calcium release was steeper and was centred at more positive membrane potentials than the steady-state voltage dependence of charge movement in the same fibres. A considerable fraction of the total intramembrane charge was moved at potentials at which delta[Ca2+] and calcium release were only a few per cent of maximum. This 'subthreshold' charge may correspond to charge moved in preliminary transitions that precede a final charge transition that activates release. A 'stepped on' pulse protocol was used to experimentally separate the subthreshold charge movement from the charge movement of the final transitions that may control calcium release. The stepped on pulse consisted of a set 50 ms pre-pulse to a potential just at or below the potential for detectable delta[Ca2+] followed immediately by a test pulse of varying amplitude and duration. For a wide range of test pulse amplitudes and durations in the stepped on protocol the peak rate of calcium release was linearly related to the charge movement during the test pulse. This result points to a tight control of activation of s.r. calcium release by intramembrane charge movement. The voltage dependence of both charge movement and of the rate of calcium release could be fitted simultaneously with a three-state, two-transition sequential model in which charge moves in both transitions but only the final transition activates s.r. calcium release. A model with three identical and independent charged gating particles per channel gave an equally good fit to the data. Both models closely fit the charge movement and release data except within about 10 mV of the voltage at which release became detectable, where release varied more steeply with membrane potential than predicted by either model.(ABSTRACT TRUNCATED AT 400 WORDS)

MeSH Terms
Action Potentials Animals Calcium/metabolism,physiology Cell Membrane/physiology In Vitro Techniques Models, Biological Muscles/physiology Rana pipiens Sarcoplasmic Reticulum/metabolism Sensory Thresholds/physiology Time Factors
Chemicals
Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Melzer W
Schneider M F
Simon B J
Szucs G
References (29)
29 references, click to expand
  1. Pharmacological separation of charge movement components in frog skeletal muscle.
    J Physiol. 1982 Mar;324:375-87 PMID: 6980275
  2. Arsenazo III and antipyrylazo III calcium transients in single skeletal muscle fibers.
    J Gen Physiol. 1982 Apr;79(4):679-707 PMID: 6802933
  3. Sodium channels and gating currents.
    Physiol Rev. 1981 Jul;61(3):644-83 PMID: 6265962
  4. Sodium channel activation in the squid giant axon. Steady state properties.
    J Gen Physiol. 1985 Jan;85(1):65-82 PMID: 2578549
  5. Pharmacological studies of charge movement in frog skeletal muscle.
    J Physiol. 1983 Apr;337:509-29 PMID: 6603512
  6. Sodium and calcium channels in bovine chromaffin cells.
    J Physiol. 1982 Oct;331:599-635 PMID: 6296372
  7. Use of a metallochromic indicator to study intracellular calcium movements in skeletal muscle.
    Cell Calcium. 1985 Apr;6(1-2):109-18 PMID: 3874695
  8. Time course of calcium release and removal in skeletal muscle fibers.
    Biophys J. 1984 Mar;45(3):637-41 PMID: 6608964
  9. Measurement and modification of free calcium transients in frog skeletal muscle fibres by a metallochromic indicator dye.
    J Physiol. 1983 Oct;343:161-96 PMID: 6606034
  10. Charge movement and membrane capacity in frog muscle.
    J Physiol. 1979 Apr;289:83-97 PMID: 458722
  11. Effects of glycerol treatment and maintained depolarization on charge movement in skeletal muscle.
    J Physiol. 1976 Jan;254(2):285-316 PMID: 1082507
  12. High selectivity of calcium channels in single dialysed heart cells of the guinea-pig.
    J Physiol. 1984 Sep;354:253-72 PMID: 6090649
  13. Calcium transients and intramembrane charge movement in skeletal muscle fibres.
    Nature. 1979 May 31;279(5712):391-6 PMID: 16068161
  14. The effect of low temperature on the excitation-contraction coupling phenomena of frog single muscle fibres.
    J Physiol. 1972 Jun;223(2):461-82 PMID: 4537710
  15. The removal of myoplasmic free calcium following calcium release in frog skeletal muscle.
    J Physiol. 1986 Mar;372:261-92 PMID: 3487641
  16. Calcium channel.
    Annu Rev Neurosci. 1981;4:69-125 PMID: 6261668
  17. Antipyrylazo III, a "middle range" Ca2+ metallochromic indicator.
    Biochemistry. 1978 Apr 18;17(8):1378-86 PMID: 646990
  18. Membrane charge movement in contracting and non-contracting skeletal muscle fibres.
    J Physiol. 1981 May;314:565-93 PMID: 6975814
  19. A quantitative description of membrane current and its application to conduction and excitation in nerve.
    J Physiol. 1952 Aug;117(4):500-44 PMID: 12991237
  20. Voltage dependent charge movement of skeletal muscle: a possible step in excitation-contraction coupling.
    Nature. 1973 Mar 23;242(5395):244-6 PMID: 4540479
  21. The time course of potassium contractures of single muscle fibres.
    J Physiol. 1972 Jun;223(2):483-505 PMID: 5039284
  22. Effect of caffeine on intramembrane charge movement and calcium transients in cut skeletal muscle fibres of the frog.
    J Physiol. 1983 Aug;341:559-78 PMID: 6604806
  23. 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
  24. Charge movement and mechanical repriming in skeletal muscle.
    J Physiol. 1976 Jan;254(2):361-88 PMID: 1082510
  25. The kinetics of mechanical activation in frog muscle.
    J Physiol. 1969 Sep;204(1):207-30 PMID: 5352046
  26. Sarcoplasmic reticulum calcium release in frog skeletal muscle fibres estimated from Arsenazo III calcium transients.
    J Physiol. 1983 Nov;344:625-66 PMID: 6655593
  27. A non-linear voltage dependent charge movement in frog skeletal muscle.
    J Physiol. 1976 Jan;254(2):245-83 PMID: 1082506
  28. Potassium contractures in single muscle fibres.
    J Physiol. 1960 Sep;153:386-403 PMID: 13714849
  29. Calcium transients studied under voltage-clamp control in frog twitch muscle fibres.
    J Physiol. 1983 Jul;340:649-80 PMID: 6604154
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1986-04-00
Pages
481-511
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1182549
Subset
IM
Grants
NINDS NIH HHS · R01-NS13842 · United States
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: product@genelibs.com