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首页> 外文期刊>The Journal of biological chemistry >Uncoupling Charge Movement from Channel Opening in Voltage-gated Potassium Channels by Ruthenium Complexes
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Uncoupling Charge Movement from Channel Opening in Voltage-gated Potassium Channels by Ruthenium Complexes

机译:通过钌配合物从电压门控钾通道中的通道开口的脱耦

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The Kv2.1 channel generates a delayed-rectifier current in neurons and is responsible for modulation of neuronal spike frequency and membrane repolarization in pancreatic β-cells and cardiomyocytes. As with other tetrameric voltage-activated K+-channels, it has been proposed that each of the four Kv2.1 voltage-sensing domains activates independently upon depolarization, leading to a final concerted transition that causes channel opening. The mechanism by which voltage-sensor activation is coupled to the gating of the pore is still not understood. Here we show that the carbon-monoxide releasing molecule 2 (CORM-2) is an allosteric inhibitor of the Kv2.1 channel and that its inhibitory properties derive from the CORM-2 ability to largely reduce the voltage dependence of the opening transition, uncoupling voltage-sensor activation from the concerted opening transition. We additionally demonstrate that CORM-2 modulates Shaker K+-channels in a similar manner. Our data suggest that the mechanism of inhibition by CORM-2 may be common to voltage-activated channels and that this compound should be a useful tool for understanding the mechanisms of electromechanical coupling.
机译:KV2.1通道产生神经元中的延迟整流器电流,并负责在胰腺β-细胞和心肌细胞中调节神经元尖峰频率和膜上倒钩。与其他四聚体电压激活的k + -Channel一样,已经提出了四个KV2.1电压感测结构域中的每一个在去极化时独立地激活,导致导致通道开口的最终协调过渡。电压传感器激活耦合到孔的门控的机制仍然不理解。在这里,我们表明,碳一氧化碳释放分子2(COMM-2)是KV2.1通道的变构抑制剂,其抑制性能从CINT-2产生的能力大大降低了开口过渡的电压依赖性,不耦合从协调开口过渡的电压传感器激活。我们还证明了CORM-2以类似的方式调制振荡器K + -Channels。我们的数据表明,CINT-2的抑制机制可能是常见的电压激活通道,并且该化合物应该是理解机电耦合机制的有用工具。

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