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PMID: 5921835 Published · ppublish English Journal Article

An investigation of the post-tetanic potentiation of end-plate potentials at a mammalian neuromuscular junction.

The Journal of physiology ·Vol. 184 ·No. 2 ·1966-05-00 ·Pages 353-75

Gage PW, Hubbard JI

Abstract

1. End-plate potentials (e.p.p.s) were recorded intracellularly from neuromuscular junctions in curarized or Mg-paralysed rat diaphragm-phrenic nerve preparations in vitro. In Mg-paralysed preparations after 1000 impulses at 100/sec the amplitude of e.p.p.s elicited at 1/sec before and after the tetanus was on average greater than the control amplitude for 120 +/- 30 sec.2. The post-tetanic potentiation (P.T.P.) of e.p.p. amplitudes was not thought to be dependent upon post-tetanic hyperpolarization (P.T.H.) of nerve terminals as it lasted longer than the hyperpolarization generated by an identical tetanus; was unaffected by hyperpolarizing currents which reduced P.T.H. or depolarizing currents which prolonged P.T.H.; and was diminished in solutions containing 30% of the normal NaCl concentration or 1% ethyl alcohol, both of which procedures prolong P.T.H. The magnitude and duration of P.T.P. were influenced by the pH of the bathing solution in the range 7-7.5 although there was no change in P.T.H. under these conditions. The inability of polarizing currents to influence P.T.P. was also thought inconsistent with the hypothesis that P.T.P. is due to an increase in available transmitter.3. P.T.P. was not thought to be due to sodium accumulation in nerve terminals, for P.T.P. was reduced or abolished by procedures which would be expected to increase the intraterminal sodium ion concentration. These procedures were: exhibition of metabolic inhibitors (1.8 x 10(-6)M antimycin A, 3-5 mM sodium azide or 1 mM sodium iodoacetate), exhibition of cardiac glycosides (7.7 x 10(-6)M digoxin or 0.42 mM ouabain), and omission of glucose or potassium ions from the bathing solution. Abolition of P.T.P. by potassium-free solutions was also thought to be inconsistent with the hypothesis that P.T.P. is due to a reduction in the potassium concentration in nerve terminals.4. P.T.P. was not thought to be due to terminal volume changes, for no consistent effect upon the quantal content of e.p.p.s could be detected in hypo- or hyperosmotic solutions.5. It was concluded that the only hypothesis for P.T.P. not excluded by our experiments was that P.T.P. is due to some change in ionized calcium at a membrane site important in transmitter release.

MeSH Terms
Animals Antimetabolites/pharmacology Cardiac Glycosides/pharmacology Electric Stimulation Ethanol/pharmacology Glucose/pharmacology Hydrogen-Ion Concentration Magnesium/pharmacology Neuromuscular Junction/physiology Osmosis Phrenic Nerve/drug effects Potassium/pharmacology Rats Sodium Chloride/pharmacology Tubocurarine/pharmacology
Chemicals
Antimetabolites Cardiac Glycosides Ethanol Sodium Chloride Magnesium Glucose Potassium Tubocurarine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Gage P W
Hubbard J I
References (47)
47 references, click to expand
  1. Movements of labelled calcium in squid giant axons.
    J Physiol. 1957 Sep 30;138(2):253-81 PMID: 13526124
  2. Radiocalcium release by stimulated and potassium-treated sartorius muscles of the frog.
    J Gen Physiol. 1960 Jan;43:481-93 PMID: 14445448
  3. Reduction of transmitter output by depolarization.
    Nature. 1962 Mar 31;193:1294-5 PMID: 14449607
  4. Effects of pH, changes in potassium concentration and metabolic inhibitors on the after-potentials of mammalian non-medullated nerve fibres.
    Arch Int Physiol Biochim. 1962 Mar;70:211-45 PMID: 13908523
  5. [Studies on muscle paralyzing effect of strophanthin on muscles].
    Naunyn Schmiedebergs Arch Exp Pathol Pharmakol. 1955;226(2):103-13 PMID: 13309347
  6. Post-tetanic potentiation.
    Physiol Rev. 1958 Jan;38(1):91-113 PMID: 13505117
  7. Influence of ouabain on contractile force, resting tension, Ca45 entry and tissue Ca content in rat atria.
    Circ Res. 1963 Jun;12:620-2 PMID: 13960603
  8. THE ROLE OF SODIUM IONS IN THE METABOLISM OF ACETYLCHOLINE.
    Can J Biochem Physiol. 1963 Dec;41:2573-97 PMID: 14099716
  9. Phospholipidcholesterol membrane model. Control of resistance by ions or current flow.
    J Gen Physiol. 1962 May;45:989-1001 PMID: 13921460
  10. Active transport of cations in giant axons from Sepia and Loligo.
    J Physiol. 1955 Apr 28;128(1):28-60 PMID: 14368574
  11. Influence of sodium ions on transmitter release.
    Nature. 1965 Jun 5;206(988):1047-8 PMID: 5839061
  12. ACTION OF OUABAIN ON ISOMETRIC TWITCH TENSION IN STRIATED MUSCLE.
    Proc Soc Exp Biol Med. 1963 Aug-Sep;113:940-3 PMID: 14073148
  13. The effects of osmotic pressure changes on the spontaneous activity at motor nerve endings.
    J Physiol. 1956 Dec 28;134(3):689-97 PMID: 13398953
  14. Statistical factors involved in neuromuscular facilitation and depression.
    J Physiol. 1954 Jun 28;124(3):574-85 PMID: 13175200
  15. Spontaneous subthreshold activity at motor nerve endings.
    J Physiol. 1952 May;117(1):109-28 PMID: 14946732
  16. EFFECT OF CARDIAC GLYCOSIDES ON NEUROMUSCULAR TRANSMISSION.
    Nature. 1965 Jan 2;205:84-5 PMID: 14283145
  17. The effects of a cardiac glycoside on subcellular structures within nerve cells and their processes in sympathetic ganglia and skeletal muscle.
    Can J Biochem Physiol. 1962 Feb;40:303-15 PMID: 13869411
  18. Release of calcium-45 from frog nerves during electrical activity.
    Nature. 1961 Feb 4;189:402-3 PMID: 13757667
  19. Metabolic studies on the hyperpolarization following activity in mammalian non-myelinated nerve fibres.
    J Physiol. 1962 May;161:414-23 PMID: 13901551
  20. A quantitative study of end-plate potentials in isolated human muscle.
    J Physiol. 1965 Jun;178(3):505-29 PMID: 5827910
  21. Calcium influx in skeletal muscle at rest, during activity, and during potassium contracture.
    J Gen Physiol. 1959 Mar 20;42(4):803-15 PMID: 13631205
  22. An electrical investigation of effects of repetitive stimulation on mammalian neuromuscular junction.
    J Neurophysiol. 1953 Sep;16(5):509-27 PMID: 13097199
  23. An investigation of spontaneous activity at the neuromuscular junction of the rat.
    J Physiol. 1956 Jun 28;132(3):650-66 PMID: 13332600
  24. Presynaptic nature of neuromuscular depression.
    Jpn J Physiol. 1962 Dec 15;12:573-84 PMID: 13940675
  25. THE EFFECT OF CALCIUM ON ACETYLCHOLINE RELEASE FROM MOTOR NERVE TERMINALS.
    Proc R Soc Lond B Biol Sci. 1965 Feb 16;161:496-503 PMID: 14278410
  26. The effect of calcium and magnesium on the spontaneous release of transmitter from mammalian motor nerve endings.
    J Physiol. 1961 Dec;159:507-17 PMID: 14449608
  27. ABOLITION OF POST-TETANIC POTENTIATION.
    Nature. 1964 Apr 18;202:299-300 PMID: 14167795
  28. Quantal components of the end-plate potential.
    J Physiol. 1954 Jun 28;124(3):560-73 PMID: 13175199
  29. Failure of neuromuscular propagation in rats.
    J Physiol. 1958 Mar 11;140(3):440-61 PMID: 13514717
  30. Action of the calcium antagonists cocaine and ethanol on contraction and potassium efflux of smooth muscle.
    J Gen Physiol. 1962 Nov;46:315-32 PMID: 13955884
  31. The ionic movements during nervous activity.
    J Physiol. 1951 Jun;114(1-2):119-50 PMID: 14861788
  32. Hyperpolarization of mammalian motor nerve terminals.
    J Physiol. 1962 Aug;163:115-37 PMID: 14449605
  33. Effects induced in a monosynaptic reflex path by its activation.
    J Neurophysiol. 1951 Sep;14(5):353-76 PMID: 14861671
  34. An electrophysiological investigation of mammalian motor nerve terminals.
    J Physiol. 1963 Apr;166:145-67 PMID: 13955375
  35. The volume change resulting from stimulation of a giant nerve fibre.
    J Physiol. 1950 Oct 16;111(3-4):304-27 PMID: 14795441
  36. Biochemistry of the phosphagens and related guanidines.
    Physiol Rev. 1958 Oct;38(4):631-74 PMID: 13590932
  37. The constitution of the respiratory chain in animal tissues.
    Adv Enzymol Relat Subj Biochem. 1958;20:147-99 PMID: 13605983
  38. Post-tetanic potentiation of response in monosynaptic reflex pathways of the spinal cord.
    J Gen Physiol. 1949 Nov;33(2):147-70 PMID: 15406744
  39. Effect of choline on neuromuscular transmission in the cat.
    J Physiol. 1952 Jun;117(2):241-50 PMID: 14955813
  40. The origin of the post-tetanic hyperpolarization of mammalian motor nerve terminals.
    J Physiol. 1966 May;184(2):335-52 PMID: 5921834
  41. PRESYNAPTIC AND POST-SYNAPTIC EVENTS DURING POST-TETANIC POTENTIATION AND FACILITATION IN THE AVIAN CILIARY GANGLION.
    J Physiol. 1964 Dec;175:17-30 PMID: 14241155
  42. Changes in potassium concentration around motor nerve terminals, produced by current flow, and their effects on neuromuscular transmission.
    J Physiol. 1961 Jan;155:46-58 PMID: 13774973
  43. Significance of membrane calcium in calcium-free and potassium-rich media.
    Nature. 1961 Feb 4;189:403-4 PMID: 13757668
  44. Post-tetanic restoration of neuromuscular transmission blocked by D-tubocurarine.
    J Physiol. 1952 Oct;118(2):216-27 PMID: 13000706
  45. THE ACTION OF CARDIAC GLYCOSIDES ON ION MOVEMENTS.
    Pharmacol Rev. 1964 Dec;16:381-407 PMID: 14240177
  46. ANTAGONISM BETWEEN NA+ AND CA2+ AT THE NEUROMUSCULAR JUNCTION.
    Nature. 1965 Jan 16;205:296-7 PMID: 14270723
  47. An intracellular study of the action of repetitive nerve volleys and of botulinum toxin on miniature end-plate potentials.
    J Physiol. 1956 Nov 28;134(2):264-77 PMID: 13398910
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1966-05-00
Pages
353-75
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1357565
Subset
IM
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