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Unfolding of a Temperature-Sensitive Domain Controls Voltage-Gated Channel Activation

机译:温度敏感域的展开控制电压门控通道的激活

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Voltage-gated ion channels (VGICs) are outfitted with diverse cytoplasmic domains that impact function. To examine how such elements may affect VGIC behavior, we addressed how the bacterial voltage-gated sodium channel (BacNa(V)) C-terminal cytoplasmic domain (CTD) affects function. Our studies show that the BacNa(V) CTD exerts a profound influence on gating through a temperature-dependent unfolding transition in a discrete cytoplasmic domain, the neck domain, proximal to the pore. Structural and functional studies establish that the BacNa(V) CTD comprises a bi-partite four-helix bundle that bears an unusual hydrophilic core whose integrity is central to the unfolding mechanism and that couples directly to the channel activation gate. Together, our findings define a general principle for how the widespread four-helix bundle cytoplasmic domain architecture can control VGIC responses, uncover a mechanism underlying the diverse BacNaV voltage dependencies, and demonstrate that a discrete domain can encode the temperature-dependent response of a channel.
机译:电压门控离子通道(VGIC)配备有多种影响功能的胞质域。若要检查这些元素如何影响VGIC行为,我们解决了细菌电压门控钠通道(BacNa(V))C端胞质域(CTD)如何影响功能。我们的研究表明,BacNa(V)CTD通过在孔附近的离散胞质域(脖子域)中的温度依赖性展开转变对门控产生深远影响。结构和功能研究表明,BacNa(V)CTD包含一个由两部分组成的四螺旋束,该束带有一个不寻常的亲水核心,其完整性是展开机制的核心,并直接耦合到通道激活门。在一起,我们的发现为广泛的四螺旋束胞质域体系结构如何控制VGIC反应,揭示潜在的BacNaV电压依赖性基础机制以及证明离散域可以编码通道的温度依赖性响应定义了一般原则。 。

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