Determining K+ channel activation curves from K+ channel currents

被引:0
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作者
John R. Clay
机构
[1] Laboratory of Neurophysiology,
[2] National Institute of Neurological Disorders and Stroke,undefined
[3] National Institutes of Health,undefined
[4] Bldg 36,undefined
[5] Rm 2C02,undefined
[6] Bethesda,undefined
[7] MD 20892,undefined
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关键词
Potassium channels Current-voltage relations Xenopus oocytes HEK-293 cells;
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摘要
Potassium ion channels are generally believed to have current-voltage (IV) relations which are linearly related to driving force (V–EK), where V is membrane potential and EK is the potassium ion equilibrium potential. Consequently, activation curves for K+ channels have often been measured by normalizing voltage-clamp families of macroscopic K+ currents with (V–EK), where V is the potential of each successive step in the voltage clamp sequence. However, the IV relation for many types of K+ channels actually has a non-linear dependence upon driving force which is well described by the Goldman-Hodgkin-Katz relation. When the GHK dependence on (V–EK) is used in the normalization procedure, a very different voltage dependence of the activation curve is obtained which may more accurately reflect this feature of channel gating. Novel insights into the voltage dependence of the rapidly inactivating IA channels Kv1.4 and Kv4.2 have been obtained when this procedure was applied to recently published results.
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页码:555 / 557
页数:2
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