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PMID: 6887233 Published · ppublish English Journal Article

Effect of several uncouplers of cell-to-cell communication on gap junction morphology in mammalian heart.

The Journal of membrane biology ·Vol. 74 ·No. 3 ·1983-00-00 ·Pages 203-15

Délèze J, Hervé JC

Abstract

Electrical conduction in sheep Purkinje fibers has been blocked by three different procedures: (I) 1 mM 2-4-dinitrophenol, (II) 3.5 mM n-Heptan-1-ol (heptanol), and (III) treatment by a hypotonic (120 mOsmoles) Ca2+-free solution for half an hour, followed by return to normal conditions. The gap junction morphology was analyzed quantitatively in freeze-fracture replicas and compared in electrically conducting and nonconducting fibers. It is found that the three uncouplers of cell-to-cell conduction induce consistent and statistically significant alterations of the gap junction structure. The investigated morphological criteria: (a) P-face junctional particle diameter, control value 8.18 +/- 0.70 nm (mean +/- SD), (b) P-face junctional particles center-to-center spacing, control value 10.23 +/- 1.57 nm, and (c) E-face pits spacing, control value 9.45 +/- 0.98 nm, are, respectively, decreased to 7.46 +/- 0.62 nm, 9.25 +/- 1.34 nm and 8.67 +/- 1.13 nm in Purkinje fibers with complete conduction blocks. All three gap junctional dimensions are seen to decline progressively with time from the onset of an uncoupling treatment towards stable minima reached in half an hour. The observed morphological transitions appear related to the electrical uncoupling for the following reasons: partial electrical uncoupling results in values of the gap junctional dimensions that are intermediate between those measured in electrically coupled and uncoupled preparations, and the three morphological indices are seen to increase again towards control values very soon after electrical conduction has been re-established. It is concluded that the junctional channels closure on electrical uncoupling correlates with a measurable (-0.72 +/- 0.01 nm, difference of the means +/- SE) decrease of the junctional particle diameters.

MeSH Terms
Animals Electric Conductivity Heart/physiology Heart Conduction System/physiology Intercellular Junctions/physiology,ultrastructure Microscopy, Electron Purkinje Fibers/physiology Sheep
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Délèze J
Hervé J C
References (47)
47 references, click to expand
  1. The electrical constants of a crustacean nerve fibre.
    Proc R Soc Med. 1946 Dec 3;134(873):444-79 PMID: 20281590
  2. Hexagonal array of subunits in intercellular junctions of the mouse heart and liver.
    J Cell Biol. 1967 Jun;33(3):C7-C12 PMID: 6036535
  3. The effects of divalent cations on the ultrastructure of the perfused rat heart.
    J Anat. 1967 Apr;101(Pt 2):239-61 PMID: 6040076
  4. Increase of labeled calcium uptake in heart muscle during potassium lack contracture.
    J Gen Physiol. 1960 Jul;43:1193-206 PMID: 13838003
  5. Junctional intercellular communication: the cell-to-cell membrane channel.
    Physiol Rev. 1981 Oct;61(4):829-913 PMID: 6270711
  6. Electron microscopic observations on negatively stained plasma membranes isolated from rat liver.
    J Cell Biol. 1965 Jul;26(1):299-305 PMID: 4159381
  7. A STUDY OF THE STRUCTURE AND DISTRIBUTION OF THE NEXUS.
    J Cell Biol. 1964 Dec;23:553-85 PMID: 14245436
  8. Freeze-etching nomenclature.
    Science. 1975 Oct 3;190(4209):54-6 PMID: 1166299
  9. Gap junction dynamics: reversible effects of divalent cations.
    J Cell Biol. 1980 Dec;87(3 Pt 1):708-18 PMID: 7462321
  10. [Studies of the transmission of excitation in the ventricle of the rat by means of hypertonic solutions].
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1966;292(1):13-33 PMID: 5233672
  11. Junctional membrane permeability : Effects of divalent cations.
    J Membr Biol. 1971 Mar;5(1):51-77 PMID: 24172984
  12. Gap junctional structure in intact and cut sheep cardiac Purkinje fibers: a freeze-fracture study of Ca2+-induced resealing.
    J Ultrastruct Res. 1981 May;75(2):195-204 PMID: 7265355
  13. The recovery of resting potential and input resistance in sheep heart injured by knife or laser.
    J Physiol. 1970 Jul;208(3):547-62 PMID: 5503279
  14. Structural correlates of gap junction permeation.
    Int Rev Cytol. 1980;66:81-146 PMID: 6993412
  15. CARDIAC PACEMAKER POTENTIALS AT DIFFERENT EXTRA-AND INTRACELLULAR K CONCENTRATIONS.
    Am J Physiol. 1965 Apr;208:770-5 PMID: 14274811
  16. Binding of 45Ca to intercalated discs of cardiac muscles studied by electron microscope autoradiography.
    Jpn J Physiol. 1978;28(6):807-17 PMID: 752094
  17. Gap junctions. Structural changes after uncoupling procedures.
    J Cell Biol. 1977 Mar;72 (3):628-41 PMID: 838770
  18. On the electrotonic coupling mechanism of crayfish segmented axons: temperature dependence of junctional conductance.
    J Membr Biol. 1980 Jun 15;54(3):165-71 PMID: 7392043
  19. Cardiac gap junction configuration after an uncoupling treatment as a function of time.
    J Cell Biol. 1979 Jul;82(1):66-75 PMID: 479303
  20. The electrical constants of Purkinje fibres.
    J Physiol. 1952 Nov;118(3):348-60 PMID: 13000763
  21. Histology of the moderator band in man and other mammals with special reference to the conduction system.
    Am J Anat. 1947 Mar;80(2):173-201 PMID: 20286213
  22. Intracellular pH, intracellular free Ca, and junctional cell-cell coupling.
    J Membr Biol. 1978 Dec 29;44(3-4):377-415 PMID: 37341
  23. Electron microscopy of the impulse conducting system of the sheep heart.
    Z Zellforsch Mikrosk Anat. 1958;48(6):698-719 PMID: 13625926
  24. Calcium effects on gap junction structure and cell coupling.
    Nature. 1978 Feb 16;271(5646):669-71 PMID: 625335
  25. Gap junction structures. I. Correlated electron microscopy and x-ray diffraction.
    J Cell Biol. 1977 Aug;74(2):605-28 PMID: 885916
  26. Hexagonal array of subunits in tight junctions separated from isolated rat liver plasma membranes.
    J Cell Biol. 1968 Jul;38(1):15-24 PMID: 5691971
  27. The ultrastructure of the nexus. A correlated thin-section and freeze-cleave study.
    J Cell Biol. 1970 Dec;47(3):666-88 PMID: 5531667
  28. Calcium ion produces graded changes in permeability of membrane channels in cell junction.
    Nature. 1977 Jun 16;267(5612):625-7 PMID: 406571
  29. Gap junction structures. II. Analysis of the x-ray diffraction data.
    J Cell Biol. 1977 Aug;74(2):629-45 PMID: 889612
  30. The coupling coefficient as an index of junctional conductance.
    J Membr Biol. 1977 Jun 3;34(1):29-37 PMID: 894699
  31. Decoupling of heart muscle cells: correlation with increased cytoplasmic calcium activity and with changes of nexus ultrastructure.
    J Membr Biol. 1980 Mar 31;53(1):63-75 PMID: 7373647
  32. Junctional membrane uncoupling. Permeability transformations at a cell membrane junction.
    J Gen Physiol. 1967 Aug;50(7):1865-91 PMID: 6050971
  33. Quantum jumps of conductance during formation of membrane channels at cell-cell junction.
    Nature. 1978 Jul 13;274(5667):133-6 PMID: 662008
  34. Membrane ultrastructure at mammalian intercellular junctions.
    Prog Biophys Mol Biol. 1973;26:45-101 PMID: 4122630
  35. Gap junction dynamics: reversible effects of hydrogen ions.
    J Cell Biol. 1980 Dec;87(3 Pt 1):719-27 PMID: 7462322
  36. Permeability of a cell membrane junction. Dependence on energy metabolism.
    J Gen Physiol. 1969 Apr;53(4):498-515 PMID: 5778320
  37. Ca binding of isolated cardiac nexus membranes related to intercellular uncoupling.
    Jpn J Physiol. 1980;30(1):131-6 PMID: 6445993
  38. The surface area of sheep cardiac Purkinje fibres.
    J Physiol. 1972 Feb;220(3):547-63 PMID: 5016037
  39. Interaction of anaesthetics with electrical synapses.
    Nature. 1980 Jul 31;286(5772):498-500 PMID: 6250068
  40. PROPAGATION OF ACTION POTENTIALS AND THE STRUCTURE OF THE NEXUS IN CARDIAC MUSCLE.
    J Gen Physiol. 1965 May;48:797-823 PMID: 14324989
  41. Studies of cardiac muscle with a high permeability to calcium produced by treatment with ethylenediaminetetraacetic acid.
    J Gen Physiol. 1971 Jul;58(1):71-93 PMID: 4998356
  42. Effect of 2-4-dinitrophenol on intercellular communication in mammalian cardiac fibres.
    Pflugers Arch. 1979 Jul;380(3):267-76 PMID: 113772
  43. Permeability of a cell junction and the local cytoplasmic free ionized calcium concentration: a study with aequorin.
    J Membr Biol. 1976 Aug 27;28(1):87-119 PMID: 787527
  44. Structure of the junction between communicating cells.
    Nature. 1980 Feb 7;283(5747):545-9 PMID: 7354837
  45. Low resistance junctions in crayfish. Structural changes with functional uncoupling.
    J Cell Biol. 1976 Aug;70(2 pt 1):419-39 PMID: 820701
  46. Permeability of membrane junctions.
    Ann N Y Acad Sci. 1966 Jul 14;137(2):441-72 PMID: 5229810
  47. Intercellular Connection between Smooth Muscle Cells: the Nexus.
    Science. 1962 Aug 31;137(3531):670-2 PMID: 17770946
Article Info
Journal
The Journal of membrane biology
Abbr.
J Membr Biol
ISSN
0022-2631
Published
1983-00-00
Pages
203-15
Language
English
Region
United States
NLM ID
0211301
Subset
IM
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