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Block by 4-aminopyridine of a Kv1.2 Delayed Rectifier K+ Current Expressed in Xenopus Oocytes

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Journal J Physiol
Specialty Physiology
Date 1994 Dec 15
PMID 7707226
Citations 17
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Abstract

1. The blocking action of 4-aminopyridine (4-AP) on a delayed rectifier Kv1.2 K+ channel expressed in oocytes was investigated at room temperature (22 degrees C) and physiological temperature (34 degrees C) using the double-electrode voltage clamp and patch clamp techniques. 2. At room temperature, 4-AP (100 microM) inhibition occurred only after activation of current. The rate of onset of block was dependent upon the length of time current was activated by a depolarizing step. Similarly, removal of block required current activation. The degree of steady-state block by 4-AP was not reduced by increasingly more depolarized step potentials. The degree of steady-state block also did not change over the duration of a 1 s step. 3. When channels were nearly fully inactivated, 4-AP produced no additional block of a subsequent depolarizing step, suggesting that 4-AP did not bind when channels were in the inactivated state. In single channel experiments, 4-AP decreased the mean open time in a dose-dependent manner but did not alter the single-channel current amplitude. 4. At 34 degrees C the I-V relationship and inactivation curve shifted to more negative potentials. Increasing the temperature to 34 degrees C did not alter the degree of block by 4-AP, although the rate of onset of block was greatly enhanced. 5. Results suggest that 4-AP binds to the open state of the Kv1.2 channel and is trapped when the channel closes. 4-AP cannot bind when the channel is closed or inactivated prior to the addition of the drug. C-type inactivation and 4-AP binding to the channel are mutually exclusive. A model for the proposed mechanism of action of 4-AP on the Kv1.2 channel is proposed based on experimental data.

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References
1.
Langton P, Nelson M, Huang Y, Standen N . Block of calcium-activated potassium channels in mammalian arterial myocytes by tetraethylammonium ions. Am J Physiol. 1991; 260(3 Pt 2):H927-34. DOI: 10.1152/ajpheart.1991.260.3.H927. View

2.
Yeh J, Oxford G, Wu C, Narahashi T . Dynamics of aminopyridine block of potassium channels in squid axon membrane. J Gen Physiol. 1976; 68(5):519-35. PMC: 2228444. DOI: 10.1085/jgp.68.5.519. View

3.
Isacoff E, Jan Y, Jan L . Putative receptor for the cytoplasmic inactivation gate in the Shaker K+ channel. Nature. 1991; 353(6339):86-90. DOI: 10.1038/353086a0. View

4.
Paulmichl M, Nasmith P, Hellmiss R, Reed K, Boyle W, Nerbonne J . Cloning and expression of a rat cardiac delayed rectifier potassium channel. Proc Natl Acad Sci U S A. 1991; 88(17):7892-5. PMC: 52410. DOI: 10.1073/pnas.88.17.7892. View

5.
Hoshi T, Zagotta W, Aldrich R . Two types of inactivation in Shaker K+ channels: effects of alterations in the carboxy-terminal region. Neuron. 1991; 7(4):547-56. DOI: 10.1016/0896-6273(91)90367-9. View