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Cell K activity in frog skin in the presence and absence of cell current

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Summary

Cell K activity,a k, was measured in the short-circuited frog skin by simultaneous cell punctures from the apical surface with open-tip and K-selective microelectrodes. Strict criteria for acceptance of impalements included constancy of the open-tip microelectrode resistance, agreement within 3% of the fractional apical voltage measured with open-tip and K-selective microelectrodes, and constancy of the differential voltage recorded between the open-tip and the K microelectrodes 30–60 sec after application of amiloride or substitution of apical Na. Skins were bathed on the serosal surface with NaCl Ringer and, to reduce paracellular Cl conductance and effects of amiloride on paracellular conductance, with NaNO3 Ringer on the apical surface.

Under control conditionsa rk was nearly constant among skins (mean±SD=92±8mM, 14 skins) in spite of a wide range of cellular currents (5 to 70 μA/cm2). Cell current (and transcellular Na transport) was inhibited by either apical addition of amiloride or substitution of Na by other cations. Although in some experiments the expected small increase ina rk after inhibition of cell current was observed, on the average the change was not significant (98±11mM after amiloride, 101±12mM after Na substitution), even 30 min after the inhibition of cell current. The membrane potential, which in the control state ranged from −42 to −77 mV, hyperpolarized after inhibition of cell current, initially to −109±5mV, then depolarizing to a stable value (−88±5mV) after 15–25 min. At this time K was above equilibrium (E k=98±2mV), indicating that the active pump mechanism is still operating after inhibition of transcellular Na transport.

The measurement ofa rk permitted the calculation of the passive K current and pump current under control conditions. assuming a “constant current source” with almost all of the basolateral conductance attributable to K. We found a significant correlation between pump current and cell current with a slope of 0.31, indicating that about one-third of the cell current is carried by the pump, i.e., a pump stoichiometry of 3Na/2K.

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References

  • Armstrong, W.McD., García-Díaz, J.F. 1980. Ion-selective microelectrodes: Theory and technique.Fed. Proc. 39:2851–2859

    PubMed  Google Scholar 

  • Armstrong, W.McD., García-Díaz, J.F. 1981. Criteria for the use of microelectrodes to measure membrane potentials in epithelial cells.In: Epithelial Ion and Water Transport. A.D.C. MacKnight and J.P. Leader, editors. pp. 43–53. Raven Press. New York

    Google Scholar 

  • Baxendale, L.M., García-Díaz, J.F., Essig, A. 1984. Cell potassium activity in frog skin epithelium: Response to voltage clamping and inhibition of sodium transport.J. Gen. Physiol. 84:27a

    Google Scholar 

  • Blatt, M.R., Slayman, C.L. 1983. KCl leakage from microelectrodes and its impact on the membrane parameters of a nonexcitable cell.J. Membrane Biol. 72:223–234

    Google Scholar 

  • Chase, H.S., Al-Awqati, Q. 1981. Regulation of the sodium permeability of the luminal border of toad bladder by intracellular sodium and calcium: Role of sodium-calcium exchange in the basolateral membrane.J. Gen. Physiol. 77:693–712

    PubMed  Google Scholar 

  • Cox, T.C., Helman, S.I. 1983. Effects of oubain and furosemide on basolateral membrane Na efflux of frog skin.Am. J. Physiol. 245:F312-F321

    PubMed  Google Scholar 

  • DeLong, J., Civan, M.M. 1983. Microelectrode study of K+ accumulation by tight epithelia: I. Baseline values of split frog skin and toad urinary bladder.J. Membrane Biol. 72:183–193

    Google Scholar 

  • Edelman, A., Curci, S., Samaržija, I., Frömter, E. 1978. Determination of intracellular K activity in rat kidney proximal tubular cells.Pfluegers Arch. 378:37–45

    Google Scholar 

  • Fisher, R.S., Helman, S.I. 1981. Influence of basolateral [K] on the electrical parameters of the cells of isolated epithelia of frog skin.Biophys. J. 33:41a

    Google Scholar 

  • Fromm, M., Schultz, S.G. 1981. Some properties of KCl-filled microelectrodes: Correlation of potassium “leakage” with tip resistance.J. Membrane Biol. 62:239–244

    Google Scholar 

  • Fuchs, W., Larsen, E.H., Lindemann, B. 1977. Current-voltage curve of sodium channels and concentration dependence of sodium permeability in frog skin.J. Physiol. (London) 267:137–166

    Google Scholar 

  • Giráldez, F., Ferreira, K.T.G. 1984. Intracellular chloride activity and membrane potential in stripped frog skin (Rana temporaria).Biochim. Biophys. Acta 769:625–628

    PubMed  Google Scholar 

  • Grinstein, S., Erlij, D. 1978. Intracellular calcium and the regulation of sodium transport in the frog skin.Proc. R. Soc. London B 202:353–360

    Google Scholar 

  • Harvey, B.J., Kernan, R.P. 1984. Intracellular ion activities in frog skin in relation to external sodium and effects of amiloride and/or ouabain.J. Physiol. (London) 349:501–517

    Google Scholar 

  • Helman, S.I., Fisher, R.S. 1977. Microelectrode studies of the active Na transport pathway of frog skin.J. Gen. Physiol. 69:571–604

    PubMed  Google Scholar 

  • Helman, S.I., Nagel, W., Fisher, R.S. 1979. Ouabain on active transepithelial sodium transport in frog skin: Studies with microelectrodes.J. Gen. Physiol. 74:105–127

    Google Scholar 

  • Helman, S.I., Thompson, S.M. 1982. Interpretation and use of electrical equivalent circuits in studies of epithelial tissues.Am. J. Physiol. 243:F519-F531

    PubMed  Google Scholar 

  • Koefoed-Johnsen, V., Ussing, H.H. 1958. The nature of the frog skin potential.Acta Physiol. Scand. 42:298–308

    PubMed  Google Scholar 

  • Kristensen, P. 1983. Exchange diffusion, electrodiffusion, and rectification in the chloride transport pathway of frog skin.J. Membrane Biol. 72:141–151

    Google Scholar 

  • Lindemann, B. 1977. Circuit analysis of epithelial ion transport: I. Derivation of network equations.Bioelectrochem. Bioenerg. 4:287–297

    Google Scholar 

  • Nagel, W. 1976. The intracellular electrical profile of the frog skin epithelium.Pfluegers Arch. 365:135–143

    Article  Google Scholar 

  • Nagel, W. 1979. Inhibition of potassium conductance by barium in frog skin epithelium.Biochim. Biophys. Acta 552:346–357

    PubMed  Google Scholar 

  • Nagel, W. 1980. Rheogenic sodium transport in a tight epithelium, the amphibian skin.J. Physiol. (London) 302:281–295

    Google Scholar 

  • Nagel, W., García-Díaz, J.F., Armstrong, W.McD. 1981. Intracellular ionic activities in frog skin.J. Membrane Biol. 61:127–134

    Google Scholar 

  • Nagel, W., García-Díaz J.F., Essig, A. 1983a. Cellular and paracellular conductance patterns in voltage-clamped frog skin.In: Membrane Biophysics: II. Physical Methods in the Study of Epithelia. M.A. Dinno, A.B. Callahan, and T.C. Rozzell editors. pp. 221–231. Alan R. Liss, New York

    Google Scholar 

  • Nagel, W., García-Díaz, J.F., Essig, A. 1983b. Contribution of junctional conductance to the cellular voltage-divider ratio in frog skins.Pfluegers Arch. 399:336–341

    Google Scholar 

  • Nagel, W., García-Díaz, J.F., Essig, A. 1983c. Effect of voltage perturbation on transcellular sodium transport of frog skin. Falk Symposium: Intestinal Absorption and Secretion. Titisee, June 2–4

  • Nelson, D.J., Ehrenfeld, J., Lindemann, B. 1978. Volume changes and potential artifacts of epithelial cells of frog skin following impalement with microelectrodes filled with 3M KCl.J. Membrane Biol. Special Issue:91–119

    Google Scholar 

  • Nielsen, R. 1984. Active transepithelial potassium transport in frog skin via specific potassium channels in the apical membrane.Acta Physiol. Scand. 120:287–296

    PubMed  Google Scholar 

  • Rick, R., Dorge, A., Thurau, K. 1981. Electron microprobe analysis of frog skin epithelium: Pathway of transepithelial sodium transport.In: Ion Transport by Epithelia. S.G. Schultz. editor. pp. 197–208. Raven, New York

    Google Scholar 

  • Rick, R., Roloff, C., Dörge, A., Beck, F.X., Thurau, K. 1984. Intracellular electrolyte concentrations in the frog skin epithelium: Effect of vasopressin and dependence on the Na concentration in the bathing media.J. Membrane Biol. 78:129–145

    Google Scholar 

  • Singer, I., Civan, M. 1971. Effects of anions on sodium transport in toad urinary bladder.Am. J. Physiol. 221:1019–1026

    Google Scholar 

  • Stoner, L.C., Natke, E., Jr., Dixon, M.K. 1984. Direct measurement of potassium leak from single 3M KCl microelectrodes.Am. J. Physiol. 246:F343-F348

    PubMed  Google Scholar 

  • Taylor, A., Windhager, E.E. 1979. Possible role of cytosolic calcium and Na−Ca exchange in regulation of transepithelial sodium transport.Am. J. Physiol. 244:C221-C226

    Google Scholar 

  • Turnheim, K., Frizzell, R.A., Schultz, S.G. 1977. Effect of anions on amiloride-sensitive, active sodium transport across rabbit colon,in vitro: Evidence fortrans-inhibition of the Na entry mechanism.J. Membrane Biol. 37:63–84

    Google Scholar 

  • Ussing, H.H., Biber, T.U.L., Bricker, N.S. 1965. Exposure of the isolated frog skin to high potassium concentrations at the internal surface: II. Changes in epithelial cell volume, resistance and response to antidiuretic hormone.J. Gen. Physiol. 48:425–433

    PubMed  Google Scholar 

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García-Díaz, J.F., Baxendale, L.M., Klemperer, G. et al. Cell K activity in frog skin in the presence and absence of cell current. J. Membrain Biol. 85, 143–158 (1985). https://doi.org/10.1007/BF01871267

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