C-type inactivation in Shaker potassium channels inhibits K+ permeation. The associated structural changes appear to involve the outer region of the pore. Recently, we have shown that C-type inactivation involves a change in the selectivity of the Shaker channel, such that C-type inactivated channels show maintained voltage-sensitive activation and deactivation of Na+ and Li+ currents in K+-free solutions, although they show no measurable ionic currents in physiological solutions. In addition, it appears that the effective block of ion conduction produced by the mutation W434F in the pore region may be associated with permanent C-type inactivation of W434F channels. These conclusions predict that permanently C-type inactivated W434F channels would also show Na+ and Li+ currents (in K+-free solutions) with kinetics similar to those seen in C-type-inactivated Shaker channels. This paper confirms that prediction and demonstrates that activation and deactivation parameters for this mutant can be obtained from macroscopic ionic current measurements. We also show that the prolonged Na+ tail currents typical of C-type inactivated channels involve an equivalent prolongation of the return of gating charge, thus demonstrating that the kinetics of gating charge return in W434F channels can be markedly altered by changes in ionic conditions.
Macroscopic Na+ Currents in the “Nonconducting” Shaker Potassium Channel Mutant W434F
Address correspondence to John G. Starkus, University of Hawaii, Békésy Laboratory of Neurobiology, 1993 East West Rd., Honolulu, Hawaii 96822-2359. Fax: 808-956-6984; E-mail: [email protected]
S.H. Heinemann was partially supported by an Human Frontiers Science Program grant. J.G. Starkus was supported in part by National Institutes of Health grant RO1-NS21151, by a grant from the American Heart Association (Hawaii Affiliate), by Pacific Biomedical Research Center Bridging Funds, and by the Max Planck Society. M.D. Rayner was supported by grants from the American Heart Association (Hawaii Affiliate) and from the Queen Emma Foundation.
Portions of this work were previously published in abstract form (Heinemann, S.H., J.G. Starkus, and M.D. Rayner. 1997. Biophys. J. 72:A29; Starkus, J.G., M.D. Rayner, and S.H. Heinemann. 1997. Biophys. J. 72: A232).
John G. Starkus, Lioba Kuschel, Martin D. Rayner, Stefan H. Heinemann; Macroscopic Na+ Currents in the “Nonconducting” Shaker Potassium Channel Mutant W434F . J Gen Physiol 1 July 1998; 112 (1): 85–93. doi: https://doi.org/10.1085/jgp.112.1.85
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