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PMID: 304100 Published · ppublish English Comparative Study Journal Article

A comparison of ion concentrations, potentials and conductances of amphibian, bovine and cephalopod lenses.

The Journal of physiology ·Vol. 272 ·No. 1 ·1977-10-00 ·Pages 167-86

Delamere NA, Duncan G

Abstract

1. The concentrations of sodium, potassium and chloride in frog and bovine lenses showed a normal intracellular ion distribution with the sum of the internal cations approximately equal to the external sum. In the cephalopod lens, however, the sum inside was much lower than that outside.2. The membrane potentials of frog, Sepiola and bovine lenses were -63, -63 and -23 mV respectively. A comparison of the electrical data with the Nernst potentials predicted from ion concentration data indicated that sodium and chloride ions as well as potassium contributed to the membrane potential in frog and bovine. In contrast, the membrane and Nernst potentials for potassium were equal in Sepiola.3. Substituting potassium for sodium in the external medium depolarized lens potentials in all three species. Estimates of the relative permeabilities of sodium, potassium and chloride were obtained by fitting the Goldman-Hodgkin-Katz equation to the potential data.4. The potassium permeability was determined directly by (42)K efflux measurements and values of 2.99, 9.83 and 3.13 (x (-8) m sec(-1)) were obtained for frog, Sepiola and bovine lenses respectively.5. The effect of raising external potassium on the efflux rate constant was determined and there was reasonable agreement between experiment and theory (Kimizuka-Koketsu) in frog and bovine lenses, but the Sepiola data indicated that the potassium permeability decreased by a factor of 2.6 when the external potassium was raised from 10 to 120 mM-K+.6. The measured specific conductances, obtained using two internal micro-electrodes, were 7.7, 15.9 and 9.9 (Sm(-2)) for frog, cephalopod and bovine lenses respectively. These data compare with computed values (Kimizuka-Koketsu theory) of 7.5, 14.1 and 17.2 (Sm(-2)).7. The effect of increasing external potassium on the conductance was also tested and there was good agreement between experiment and theory (assuming constant permeabilities) only in the amphibian lens. However, when the cephalopod data were corrected assuming a 2.6-fold decrease in P(K) for a twelvefold increase in potassium, then there was excellent agreement between experiment and theory.8. The bovine measured conductances were much lower than the theoretical values throughout the range of external potassium concentrations and several explanations were proposed to account for the discrepancies.

MeSH Terms
Animals Anura Cattle Cell Membrane Permeability Chlorides/metabolism Electric Conductivity In Vitro Techniques Lens, Crystalline/metabolism,physiology Membrane Potentials Mollusca Potassium/metabolism Rana temporaria Sodium/metabolism
Chemicals
Chlorides Sodium Potassium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Delamere N A
Duncan G
References (33)
33 references, click to expand
  1. The bovine lens as an ion-exchanger: a comparison with ion levels in human cataractous lenses.
    Exp Eye Res. 1976 Sep;23(3):341-53 PMID: 976375
  2. Studies on the crystalline lens. XXII. Characterization of chloride movement based on the pump-leak model.
    Exp Eye Res. 1976 Oct;23(4):425-33 PMID: 976384
  3. Current-voltage relationships in the crystalline lens.
    J Physiol. 1976 Nov;262(2):285-300 PMID: 1086902
  4. Ion analyses of human cataractous lenses.
    Exp Eye Res. 1975 Mar;20(3):223-30 PMID: 1122997
  5. Voltage compartments in the lens.
    Exp Eye Res. 1974 Sep;19(3):235-42 PMID: 4213613
  6. Studies on the normal lens potential of the rainbow trout (Salmo gairdneri).
    Exp Eye Res. 1970 Jul;10(1):93-101 PMID: 4247992
  7. Intracellular potassium activity in frog lens determined using ion specific liquid ion-exchanger filled microelectrodes.
    Exp Eye Res. 1974 Jul;19(1):43-8 PMID: 4547234
  8. Bioelectric measurements in the frog lens.
    Exp Eye Res. 1973 Feb;15(2):209-17 PMID: 4692234
  9. Letter: The potential difference of the rabbit lens.
    Exp Eye Res. 1974 May;18(5):507-8 PMID: 4834402
  10. Distribution and movement of ions in the ocular lens.
    Doc Ophthalmol. 1972 Apr 15;31(1):1-28 PMID: 5020294
  11. Chloride concentration and exchange in rabbit lens.
    Exp Eye Res. 1971 Mar;11(2):207-13 PMID: 5121741
  12. The site of the ion restricting membranes in the toad lens.
    Exp Eye Res. 1969 Oct;8(4):406-12 PMID: 5358236
  13. Kinetics of potassium movement across amphibian lens membranes.
    Exp Eye Res. 1969 Oct;8(4):413-20 PMID: 5358237
  14. Distribution of sodium and potassium in ox lenses.
    Exp Eye Res. 1969 Oct;8(4):442-6 PMID: 5358240
  15. Extracellular space of the crystalline lens.
    Am J Physiol. 1970 Mar;218(3):797-802 PMID: 5414038
  16. Movement of sodium and chloride across amphibian lens membranes.
    Exp Eye Res. 1970 Jul;10(1):117-28 PMID: 5456769
  17. Effect of changes in external ion concentrations and 2,4-dinitrophenol on the conductance of toad lens membranes.
    Exp Eye Res. 1970 Oct;10(2):192-200 PMID: 5484763
  18. Efflux of 22Na and 86Rb from the crystalline lens.
    Exp Eye Res. 1970 Oct;10(2):331-8 PMID: 5484774
  19. Diffusion of sodium in extracellular space of the crystalline lens.
    Am J Physiol. 1971 Jan;220(1):256-63 PMID: 5538660
  20. Short-circuit current and active Na transport across isolated lens of the toad.
    Am J Physiol. 1971 Feb;220(2):558-64 PMID: 5540912
  21. Relative permeabilities of the lens membranes to sodium and potassium.
    Exp Eye Res. 1969 Jul;8(3):315-25 PMID: 5801405
  22. Ion transport through cell membrane.
    J Theor Biol. 1964 Mar;6(2):290-305 PMID: 5875308
  23. Unstirred layers in frog skin.
    J Physiol. 1966 Jan;182(1):66-78 PMID: 5937417
  24. Relative ion permeabilities in the crayfish giant axon determined from rapid external ion changes.
    J Gen Physiol. 1967 Aug;50(7):1929-53 PMID: 6050974
  25. The relation between external potassium concentration, membrane potential and internal ion concentrations in crayfish axons.
    Acta Physiol Scand. 1967 Jul-Aug;70(3):431-48 PMID: 6055816
  26. Resting potential of the lens.
    Br J Ophthalmol. 1956 Jul;40(7):385-91 PMID: 13355944
  27. Additional observations on the bioelectric potentials of the lens.
    Am J Ophthalmol. 1959 Jan;47(1 Pt 2):395-409 PMID: 13617368
  28. Distribution of sodium and potassium within cattle lens.
    Biochem J. 1959 May;72(1):126-33 PMID: 13651147
  29. Distribution of rubidium-86 accumulated in the rabbit lens.
    Invest Ophthalmol. 1962 Oct;1:642-5 PMID: 13970096
  30. STUDIES ON THE CRYSTALLINE LENS. XI. THE RELATIVE ROLE OF THE EPITHELIUM AND CAPSULE IN TRANSPORT.
    Invest Ophthalmol. 1965 Feb;4:104-16 PMID: 14271284
  31. The influence of potassium and chloride ions on the membrane potential of single muscle fibres.
    J Physiol. 1959 Oct;148:127-60 PMID: 14402240
  32. The effect of sodium ions on the electrical activity of giant axon of the squid.
    J Physiol. 1949 Mar 1;108(1):37-77 PMID: 18128147
  33. POTENTIAL, IMPEDANCE, AND RECTIFICATION IN MEMBRANES.
    J Gen Physiol. 1943 Sep 20;27(1):37-60 PMID: 19873371
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1977-10-00
Pages
167-86
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1353598
Subset
IM
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