The effects of sulfhydryl reduction/oxidation on the gating of large-conductance, Ca2+-activated K+ (maxi-K) channels were examined in excised patches from tracheal myocytes. Channel activity was modified by sulfhydryl redox agents applied to the cytosolic surface, but not the extracellular surface, of membrane patches. Sulfhydryl reducing agents dithiothreitol, β-mercaptoethanol, and GSH augmented, whereas sulfhydryl oxidizing agents diamide, thimerosal, and 2,2′-dithiodipyridine inhibited, channel activity in a concentration-dependent manner. Channel stimulation by reduction and inhibition by oxidation persisted following washout of the compounds, but the effects of reduction were reversed by subsequent oxidation, and vice versa. The thiol-specific reagents N-ethylmaleimide and (2-aminoethyl)methanethiosulfonate inhibited channel activity and prevented the effect of subsequent sulfhydryl oxidation. Measurements of macroscopic currents in inside-out patches indicate that reduction only shifted the voltage/nPo relationship without an effect on the maximum conductance of the patch, suggesting that the increase in nPo following reduction did not result from recruitment of more functional channels but rather from changes of channel gating. We conclude that redox modulation of cysteine thiol groups, which probably involves thiol/disulfide exchange, alters maxi-K channel gating, and that this modulation likely affects channel activity under physiological conditions.
Redox Regulation of Large Conductance Ca2+-activated K+ Channels in Smooth Muscle Cells
Address correspondence to Dr. M.I. Kotlikoff, Department of Animal Biology, School of Veterinary Medicine, University of Pennsylvania, 3800 Spruce Street, Philadelphia, PA 19104-6046. Fax: 215-898-9923; E-mail: [email protected]
The authors express their appreciation to Mrs. Kim Bowers and Ms. Laura Lynch for technical assistance, and to Dr. Owen B. McManus for his helpful comments on an earlier version of the manuscript.
Abbreviations used in this paper: β-ME, β-mercaptoethanol; DTDP, 2,2′-dithiodipyridine; DTT, dithiothreitol; GSH, reduced glutathione; maxi-K channel, large conductance, Ca2+-activated K+ channel; MTSEA, (2-aminoethyl) methanethiosulfonate; NEM, N-ethylmalei-mide; nPo, open-state probability.
Portions of these results have been previously presented in abstract form (Wang, Z.-W., and M.I. Kotlikoff. 1996. Biophys. J. 70:A401).
Zhao-Wen Wang's current address is Department of Anatomy and Neurobiology, Washington University School of Medicine, 660 S. Euclid Avenue, St. Louis, MO 63110.
Zhao-Wen Wang, Masayuki Nara, Yong-Xiao Wang, Michael I. Kotlikoff; Redox Regulation of Large Conductance Ca2+-activated K+ Channels in Smooth Muscle Cells . J Gen Physiol 1 July 1997; 110 (1): 35–44. doi: https://doi.org/10.1085/jgp.110.1.35
Download citation file:
Sign in
Client Account
Sign in via your Institution
Sign in via your InstitutionEmail alerts
Advertisement