Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A

碩士 === 中國醫藥大學 === 醫學研究所 === 96 === Voltage-gated K+ (Kv) channels are important in repolarization of excitable cells such as neurons and endocrine cells. Kv channel gating exhibits slow inactivation (slow current decay) during continuous depolarization. The molecular mechanism involved in such slow...

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Main Authors: Chia-Chia Chao, 趙家佳
Other Authors: 梁育民
Format: Others
Language:zh-TW
Published: 2008
Online Access:http://ndltd.ncl.edu.tw/handle/36927521940454039470
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spelling ndltd-TW-096CMCH55340022015-11-20T04:22:37Z http://ndltd.ncl.edu.tw/handle/36927521940454039470 Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A HMJ-53A加速Kv通道慢性鈍化之機轉 Chia-Chia Chao 趙家佳 碩士 中國醫藥大學 醫學研究所 96 Voltage-gated K+ (Kv) channels are important in repolarization of excitable cells such as neurons and endocrine cells. Kv channel gating exhibits slow inactivation (slow current decay) during continuous depolarization. The molecular mechanism involved in such slow inactivation is not completely understood, but evidence has suggested that it involves a restriction of the outer channel pore surrounding the selectivity filter. Pharmacological tools probing this slow inactivation process are scarce. In this work we reported that bath application of HMJ-53A (30 μM), a novel compound, could drastically speed up the slow decay (decay τ=1677±120 ms and 85.6 ±7.7 ms, respectively, in the absence and presence of HMJ-53A) of Kv currents in neuroblastoma N2A cells. HMJ-53A also significantly left-shifted the steady-state inactivation curve by 12 mV. HMJ-53A, however, did not affect voltage-dependence of activation and the kinetics of channel activation. Intracellular application of this drug through patch pipette dialysis was ineffective at all in accelerating the slow current decay, suggesting that HMJ-53A acted extracellularly. Blockade of currents by HMJ-53A did not require an open state of channels. In addition, the inactivation time constants and percentage block of Kv currents in the presence of HMJ-53A were independent of the (i) degree of depolarization and (ii) intracellular K+ concentration. Therefore, this drug did not appear to directly occlude the outer channel pore during stimulation (depolarization). Taken together, our results suggest that HMJ-53A selectively affected (accelerated) the slow inactivation gating process of Kv channels, and could thus be a selective and novel probe for the inactivation gate. 梁育民 2008 學位論文 ; thesis 87 zh-TW
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language zh-TW
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description 碩士 === 中國醫藥大學 === 醫學研究所 === 96 === Voltage-gated K+ (Kv) channels are important in repolarization of excitable cells such as neurons and endocrine cells. Kv channel gating exhibits slow inactivation (slow current decay) during continuous depolarization. The molecular mechanism involved in such slow inactivation is not completely understood, but evidence has suggested that it involves a restriction of the outer channel pore surrounding the selectivity filter. Pharmacological tools probing this slow inactivation process are scarce. In this work we reported that bath application of HMJ-53A (30 μM), a novel compound, could drastically speed up the slow decay (decay τ=1677±120 ms and 85.6 ±7.7 ms, respectively, in the absence and presence of HMJ-53A) of Kv currents in neuroblastoma N2A cells. HMJ-53A also significantly left-shifted the steady-state inactivation curve by 12 mV. HMJ-53A, however, did not affect voltage-dependence of activation and the kinetics of channel activation. Intracellular application of this drug through patch pipette dialysis was ineffective at all in accelerating the slow current decay, suggesting that HMJ-53A acted extracellularly. Blockade of currents by HMJ-53A did not require an open state of channels. In addition, the inactivation time constants and percentage block of Kv currents in the presence of HMJ-53A were independent of the (i) degree of depolarization and (ii) intracellular K+ concentration. Therefore, this drug did not appear to directly occlude the outer channel pore during stimulation (depolarization). Taken together, our results suggest that HMJ-53A selectively affected (accelerated) the slow inactivation gating process of Kv channels, and could thus be a selective and novel probe for the inactivation gate.
author2 梁育民
author_facet 梁育民
Chia-Chia Chao
趙家佳
author Chia-Chia Chao
趙家佳
spellingShingle Chia-Chia Chao
趙家佳
Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
author_sort Chia-Chia Chao
title Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
title_short Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
title_full Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
title_fullStr Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
title_full_unstemmed Mechanisms for the acceleration of Kv channelslow inactivation by HMJ-53A
title_sort mechanisms for the acceleration of kv channelslow inactivation by hmj-53a
publishDate 2008
url http://ndltd.ncl.edu.tw/handle/36927521940454039470
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