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Apical membrane K conductance in the toad urinary bladder

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Summary

The conductance of the apical membrane of the toad urinary bladder was studied under voltage-clamp conditions at hyperpolarizing potentials (mucosa negative to serosa). The serosal medium contained high KCl concentrations to reduce the voltage and electrical resistance across the basal-lateral membrane, and the mucosal solution was Na free, or contained amiloride, to eliminate the conductance of the apical Na channels. As the mucosal potential (V m) was made more negative the slope conductance of the epithelium increased, reaching a maximum at conductance of the epithelium increased, reaching a maximum atV m=−100 mV. This rectifying conductance activated with a time constant of 2 msec whenV m was changed abruptly from 0 to −100 mV, and remained elevated for at least 10 min, although some decrease of current was observed. ReturningV m to+100 mV deactivated the conductance within 1 msec. Ion substitution experiments showed that the rectified current was carried mostly by cations moving from cell to mucosa. Measurement of K flux showed that the current could be accounted for by net movement of K across the apical membrane, implying a voltage-dependent conductance to K (G K). Mucosal addition of the K channel blockers TEA and Cs had no effect onG K, while 29mm Ba diminished it slightly. Mucosal Mg (29mm) also reducedG K, while Ca (29mm) stimulated it.G K was blocked by lowering the mucosal pH with an apparent pK1 of 4.5. Quinidine (0.5mm in the serosal bath) reducedG K by 80%.G K was stimulated by ADH (20 mU/ml), 8-Br-cAMP (1mm), carbachol (100 μm), aldosterone (5×10−7 m for 18 hr), intracellular Li and extracellular CO2.

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References

  • Berridge, M.J., Irvine, R.F. 1984. Inositol triphosphate, an novel second messenger in cellular signal transduction.Nature (London) 312:315–321

    Article  Google Scholar 

  • Boron, W.F., De Weer, P. 1976. Intracellular pH transients in squid giant axons caused by CO2, NH3 and metabolic inhibition.J. Gen. Physiol. 67:91–112

    Google Scholar 

  • DeLong, J., Civan, M.M. 1978. Dissociation of cellular K+ accumulation from net Na+ transport by toad urinary bladder.J. Membrane Biol. 42:19–44

    Google Scholar 

  • Erlij, D. 1976. Basic electrical properties of tight epithelia determined with a simple method.Pflueger's Arch. 364:91–93

    Article  Google Scholar 

  • Finn, A.L., Rogenes, P. 1980. The effects of voltage clamping in tight epithelia.Curr. Top. Membr. Transp. 13:245–255

    Google Scholar 

  • Geering, K., Gaeggeler, H.P., Rossier, B.C. 1984. Effects of thyromimetic drugs on aldosterone-dependent sodium transport in the toad bladder.J. Membrane Biol. 77:15–23

    Google Scholar 

  • Grantham, J.J., Burg, M.B., Orloff, J. 1970. The nature of transtubular Na and K transport in isolated rabbit renal collecting tubules.J. Clin. Invest. 49:1815–1826

    PubMed  Google Scholar 

  • Higgins, J.T., Jr., Cesaro, L., Gebler, B., Frömter, E. 1975. Electrical properties of amphibian urinary bladder epithelia. I. Inverse relationship between potential difference and resistance in tightly mounted epithelia.Pflueger's Arch. 358:41–56

    Article  Google Scholar 

  • Higgins, J.T., Jr., Gebler, B., Frömter, E. 1977. Electrical properties of amphibian urinary bladder epithelia. II. The cell potential profile ofNecturus maculosus.Pflueger's Arch. 371:87–97

    Article  Google Scholar 

  • Hodgkin, A.L., Huxley, A.F. 1952. A quantitative description of membrane current and its application to conduction and excitation in nerve.J. Physiol. (London) 117:500–544

    Google Scholar 

  • Hviid-Larsen, E., Kristensen, P. 1978. Properties of a conductive cellular chloride pathway in the skin of the toad (Bufo bufo).Acta Physiol. Scand. 102:1–21

    PubMed  Google Scholar 

  • Latorre, R., Miller, C. 1983. Conduction and selectivity in potassium channels.J. Membrane Biol. 71:11–30

    Google Scholar 

  • Leaf, A., Andersen, J., Page, L.B. 1958. Active sodium transport by the isolated bladder.J. Gen. Physiol. 41:657–668

    Google Scholar 

  • Li, J.H.-Y, Palmer, L.G., Edelman, I.S., Lindemann, B. 1982. The role of sodium-channel density in the natriferic response of the toad urinary bladder to an antidiuretic hormone.J. Membrane Biol. 64:77–89

    Google Scholar 

  • Macknight, A.D.C., Dibona, D.R., Leaf, A. 1980. Sodium transport across the toad urinary bladder: A model “tight” epithelium.Physiol. Rev. 60:615–715

    Google Scholar 

  • Moczydlowski, E., Latorre, R. 1983. Gating effects of Ca2+-activated K+ channels from rat muscle incorporated into planar lipid bilayers: Evidence for two voltage-dependent binding reactions.J. Gen. Physiol. 82:511–542

    Google Scholar 

  • O'Neil, R.G., Sansom, S.C. 1984. Characterization of apical cell membrane Na+ and K+ conductances of cortical collecting duct using microelectrode techniques.Am. J. Physiol. 247:F14-F24

    PubMed  Google Scholar 

  • Orloff, J., Handler, J.S. 1962. The similarity of effects of vasopressin, adenosine 3′, 5′, phosphate (cyclic AMP) and theophylline on the toad bladder.J. Clin. Invest. 41:702–709

    PubMed  Google Scholar 

  • Palmer, L.G. 1982. Ion selectivity of the apical membrane Na channel in the toad urinary bladder.J. Membrane Biol. 67:91–98

    Google Scholar 

  • Palmer, L.G. 1984a. Voltage-dependent block by amiloride and other monovalent cations of apical Na channels in the toad urinary bladder.J. Membrane Biol. 80:153–165

    Google Scholar 

  • Palmer, L.G. 1984b. Use of potassium depolarization to study apical transport properties in epithelia.Curr. Top. Membr. Transp. 20:105–121

    Google Scholar 

  • Palmer, L.G. 1985. Modulation of apical Na permeability of the toad urinary bladder by intracellular Na, Ca, and H.J. Membrane Biol. 83:57–69

    Google Scholar 

  • Palmer, L.G., Edelman, I.S., Lindemann, B. 1980. Current-voltage analysis of apical sodium transport in toad urinary bladder: Effects of inhibitors of transport and metabolism.J. Membrane Biol. 57:59–71

    Google Scholar 

  • Palmer, L.G., Li, J.H.-Y., Lindemann, B., Edelman, I.S. 1982. Aldosterone control of the density of sodium channels in the toad urinary bladder.J. Membrane Biol. 64:91–102

    Google Scholar 

  • Palmer, L.G., Lorenzen, M. 1983. Antidiuretic hormone-dependent membrane capacitance and water permeability in the toad urinary bladder.Am. J. Physiol. 244:F195-F204

    PubMed  Google Scholar 

  • Robinson, B.A., Macknight, A.D.C. 1976. Relationships between serosal medium potassium concentration and sodium transport in toad urinary bladder. III. Exchangeability of epithelial cellular potassium.J. Membrane Biol. 26:269–286

    Google Scholar 

  • Sahib, M.K., Schwarz, J.H., Handler, J.S. 1978. Inhibition of toad urinary bladder sodium transport by carbamylcholine: Possible role of cyclic GMP.Am. J. Physiol. 235:F586-F591

    PubMed  Google Scholar 

  • Sansom, S.C., O'Neil, R.G. 1985. Mineralocorticoid regulation of apical cell membrane Na+ and K+ transport of the cortical collecting duct.Am. J. Physiol. 248:F858-F868

    PubMed  Google Scholar 

  • Stokes, J.B. 1984. Pathways of K+ permeation across the rabbit cortical collecting tubule.Am. J. Physiol. 246:F457-F466

    PubMed  Google Scholar 

  • Truscello, A., Geering, K., Gaeggler, K., Gaeggler, H.P., Rossier, B.C. 1983. Effects of butyrate on histone deacetylation and aldosterone-dependent Na transport in the toad bladder.J. Biol. Chem. 268:3388–3395

    Google Scholar 

  • Wills, N.K., Zeiske, W., Van Driessche, W. 1982. Noise analysis reveals K+ channel conductance fluctuations in the apical membrane of rabbit colon.J. Membrane Biol. 69:187–197

    Google Scholar 

  • Zeiske, W., Van Driessche, W. 1979. A saturable K+ pathway across the outer border of frog skin (Rana temporaria): Kinetics and inhibition by Cs+ and other cations.J. Membrane Biol. 47:77–96

    Google Scholar 

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Palmer, L.G. Apical membrane K conductance in the toad urinary bladder. J. Membrain Biol. 92, 217–226 (1986). https://doi.org/10.1007/BF01869390

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