A novel extracellular calcium sensing mechanism in voltage-gated potassium ion channels

A novel extracellular calcium sensing mechanism in voltage-gated potassium ion channels
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DOI:
10.1523/jneurosci.21-12-04143.2001
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发表时间:
2001-06-15
影响因子:
5.3
通讯作者:
Bennett, PB
Bennett, PB
中科院分区:
医学1区
文献类型:
--
作者:
Johnson, JP;Balser, JR;Bennett, PB

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Potassium (K+) channels influence neurotransmitter release, burst firing rate activity, pacing, and critical dampening of neuronal circuits. Internal and external factors that further modify K+ channel function permit fine-tuning of neuronal circuits. Human ether-a-go-go-related gene (HERG) K+ channels are unusually sensitive to external calcium concentration ([Ca2+](o)). Small changes in [Ca2+](o) shift the voltage dependence of channel activation to more positive membrane potentials, an effect that cannot be explained by nonspecific surface charge screening or channel pore block. The HERG-calcium concentration-response relationship spans the physiological range for [Ca2+](o). The modulatory actions of calcium are attributable to differences in the Ca2+ affinity between rested and activated channels. Adjacent extracellular, negatively charged amino acids (E518 and E519) near the S4 voltage sensor influence both channel gating and Ca2+ dependence. Neutralization of these charges had distinct effects on channel gating and calcium sensitivity. A change in the degree of energetic coupling between these amino acids on transition from closed to activated channel states reveals movement in this region during channel gating and defines a molecular mechanism for protein state-dependent ligand interactions. The results suggest a novel extracellular [Ca2+](o) sensing mechanism coupled to allosteric changes in channel gating and a mechanism for fine-tuning cell repolarization.