首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >A voltage-driven switch for ion-independent signaling by ether-a-go-go K+ channels
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A voltage-driven switch for ion-independent signaling by ether-a-go-go K+ channels

机译:电压驱动开关,可通过以太K +通道进行离子无关的信号传递

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Voltage-gated channels maintain cellular resting potentials and generate neuronal action potentials by regulating ion flux. Here, we show that Ether-a-go-go (EAG) K+ channels also regulate intracellular signaling pathways by a mechanism that is independent of ion flux and depends on the position of the voltage sensor. Regulation of intracellular signaling was initially inferred from changes in proliferation. Specifically, transfection of NIH 3T3 fibroblasts or C2C12 myoblasts with either wild-type or nonconducting (F456A) eag resulted in dramatic increases in cell density and BrdUrd incorporation over vector- and Shaker-transfected controls. The effect of EAG was independent of serum and unaffected by changes in extracellular calcium. Inhibitors of p38 mitogen-activated protein (MAP) kinases, but not p44/42 MAP kinases (extracellular signal-regulated kinases), blocked the proliferation induced by nonconducting EAG in serum-free media, and EAG increased p38 MAP kinase activity. Importantly, mutations that increased the proportion of channels in the open state inhibited EAG-induced proliferation, and this effect could not be explained by changes in the surface expression of EAG. These results indicate that channel conformation is a switch for the signaling activity of EAG and suggest an alternative mechanism for linking channel activity to the activity of intracellular messengers, a role that previously has been ascribed only to channels that regulate calcium influx.
机译:电压门控通道通过调节离子通量来维持细胞的静息电位并产生神经元动作电位。在这里,我们显示以太(EAG)K +通道也通过独立于离子通量并取决于电压传感器位置的机制来调节细胞内信号通路。最初从增殖的变化推断出细胞内信号传导的调节。具体而言,用野生型或非导电性(F456A)eag转染NIH 3T3成纤维细胞或C2C12成肌细胞比载体和Shaker转染的对照导致细胞密度和BrdUrd掺入的急剧增加。 EAG的作用独立于血清,不受细胞外钙变化的影响。 p38促分裂原活化蛋白(MAP)激酶的抑制剂,而非p44 / 42 MAP激酶(细胞外信号调节的激酶)的抑制剂,阻断了非导电EAG在无血清培养基中诱导的增殖,并且EAG增加了p38 MAP激酶的活性。重要的是,在开放状态下增加通道比例的突变抑制了EAG诱导的增殖,这种作用不能由EAG表面表达的改变来解释。这些结果表明,通道构象是EAG信号转导活性的开关,并提出了将通道活性与细胞内信使的活性联系起来的另一种机制,这种作用以前仅归因于调节钙流入的通道。

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