Elimination of fast inactivation in Kv4 A-type potassium channels by an auxiliary subunit domain

被引:150
作者
Holmqvist, MH
Cao, J
Hernandez-Pineda, R
Jacobson, MD
Carroll, KI
Sung, MA
Betty, M
Ge, P
Gilbride, KJ
Brown, ME
Jurman, ME
Lawson, D
Silos-Santiago, I
Xie, Y
Covarrubias, M
Rhodes, KJ
Distefano, PS
An, WF
机构
[1] Millennium Pharmaceut Inc, Cambridge, MA 02139 USA
[2] Thomas Jefferson Univ, Dept Pathol Anat & Cell Biol, Philadelphia, PA 19107 USA
[3] Wyeth Ayerst Res, Div Neurosci, Princeton, NJ 08543 USA
关键词
D O I
10.1073/pnas.022509299
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The Kv4 A-type potassium currents contribute to controlling the frequency of slow repetitive firing and back-propagation of action potentials in neurons and shape the action potential in heart. Kv4 currents exhibit rapid activation and inactivation and are specifically modulated by K-channel interacting proteins (KChIPs). Here we report the discovery and functional characterization of a modular K-channel inactivation suppressor (KIS) domain located in the first 34 aa of an additional KChIP (KChIP4a). Coexpression of KChIP4a with Kv4 alpha-subunits abolishes fast inactivation of the Kv4 currents in various cell types, including cerebellar granule neurons. Kinetic analysis shows that the KIS domain delays Kv4.3 opening, but once the channel is open, it disrupts rapid inactivation and slows Kv4.3 closing. Accordingly, KChIP4a increases the open probability of single Kv4.3 channels. The net effects of KChIP4a and KChIP1-3 on Kv4 gating are quite different. When both KChIP4a and KChIP1 are present, the Kv4.3 current shows mixed inactivation profiles dependent on KChIP4a/KChIP1 ratios. The KIS domain effectively converts the A-type Kv4 current to a slowly inactivating delayed rectifier-type potassium current. This conversion is opposite to that mediated by the Kv1-specific "ball" domain of the Kvbeta1 subunit. Together, these results demonstrate that specific auxiliary subunits with distinct functions actively modulate gating of potassium channels that govern membrane excitability.
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页码:1035 / 1040
页数:6
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