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THE RELATION BETWEEN THE LATE AFTER-POTENTIAL AND THE SIZE OF THE TRANSVERSE TUBULAR SYSTEM OF FROG MUSCLE

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Journal J Gen Physiol
Specialty Physiology
Date 1964 Nov 1
PMID 14225256
Citations 59
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Abstract

This is an investigation of the effects on the late after-potential of immersing frog sartorius muscles in three kinds of modified Ringer's fluid; hypertonic, low chloride, and potassium-free. The late after-potential has been attributed to the depolarizing effect of an accumulation of potassium, during a preceding train of impulses, in the intermediary space of the model of a muscle fiber proposed by Adrian and Freygang. Both the hypertonic and low chloride solutions prolonged the late after-potential reversibly and the potassium-free solution shortened it. The effect of the low potassium solution fitted those data calculated from the model, but the effect of the hypertonic and low chloride solutions required an increase in size of the intermediary space of the model in order to fit the calculated data. An electron microscopic study of the muscles showed that the size of the transverse tubular system changed reversibly in the hypertonic and low chloride solutions in almost the amount necessary to fit the experimental data to the calculated data. This agreement between the change in size of the transverse tubular system and that of the intermediary space indicates that the intermediary space may be the transverse tubular system.

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References
1.
CONWAY E . Nature and significance of concentration relations of potassium and sodium ions in skeletal muscle. Physiol Rev. 1957; 37(1):84-132. DOI: 10.1152/physrev.1957.37.1.84. View

2.
HODGKIN A, Horowicz P . The effect of sudden changes in ionic concentrations on the membrane potential of single muscle fibres. J Physiol. 1960; 153:370-85. PMC: 1359754. DOI: 10.1113/jphysiol.1960.sp006540. View

3.
Reynolds E . The use of lead citrate at high pH as an electron-opaque stain in electron microscopy. J Cell Biol. 1963; 17:208-12. PMC: 2106263. DOI: 10.1083/jcb.17.1.208. View

4.
Girardier L, Reuben J, Brandt P, Grundfest H . EVIDENCE FOR ANION-PERMSELECTIVE MEMBRANE IN CRAYFISH MUSCLE FIBERS AND ITS POSSIBLE ROLE IN EXCITATION-CONTRACTION COUPLING. J Gen Physiol. 1963; 47:189-214. PMC: 2195328. DOI: 10.1085/jgp.47.1.189. View

5.
DYDYNSKA M, WILKIE D . THE OSMOTIC PROPERTIES OF STRIATED MUSCLE FIBERS IN HYPERTONIC SOLUTIONS. J Physiol. 1963; 169:312-29. PMC: 1368755. DOI: 10.1113/jphysiol.1963.sp007258. View