A sodium channel mutant removes fast inactivation with the inactivation particle bound.

IF 3.3 2区 医学 Q1 PHYSIOLOGY Journal of General Physiology Pub Date : 2025-01-06 Epub Date: 2024-11-27 DOI:10.1085/jgp.202413667
Yichen Liu, Francisco Bezanilla
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Abstract

Fast inactivation is a key feature of voltage-gated sodium channels and is pivotal for countless physiological functions. Despite the prevalence of the canonical ball-and-chain model, more recent structural results suggest that fast inactivation requires multiple conformational changes beyond the binding of the inactivation particle, the IFM motif. Combining ionic current, gating current, and fluorescent measurements, here we showed that a double mutant at the bottom of the pore domain (CW) removes fast inactivation by interrupting the communication of the IFM motif and the pore. Instead of triggering fast inactivation, the IFM motif binding in CW allows the channel to enter an alternative open state. This alternative open state severely influenced the voltage sensor movements and was not accessible to wild type or other fast inactivation-deficient channels. Our results highlight the multistep nature of the fast inactivation process in mammalian voltage-gated sodium channels and demonstrate that CW modifies the channel behaviors more profoundly than simple removal of fast inactivation.

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钠通道突变体在失活粒子结合的情况下消除了快速失活。
快速失活是电压门控钠通道的一个关键特征,对无数生理功能至关重要。尽管典型的球链模型非常普遍,但最近的结构研究结果表明,除了结合失活粒子 IFM motif 之外,快速失活还需要多种构象变化。结合离子电流、门控电流和荧光测量结果,我们发现孔结构域底部的双突变体(CW)通过中断 IFM 动机和孔的通信而消除了快速失活。CW 中的 IFM 基序结合并没有触发快速失活,而是使通道进入了另一种开放状态。这种替代开放状态严重影响了电压传感器的运动,野生型或其他快速失活缺陷通道都无法进入这种状态。我们的研究结果突显了哺乳动物电压门控钠通道快速失活过程的多步性质,并证明了 CW 对通道行为的改变比简单的去除快速失活更为深远。
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来源期刊
CiteScore
6.00
自引率
10.50%
发文量
88
审稿时长
6-12 weeks
期刊介绍: General physiology is the study of biological mechanisms through analytical investigations, which decipher the molecular and cellular mechanisms underlying biological function at all levels of organization. The mission of Journal of General Physiology (JGP) is to publish mechanistic and quantitative molecular and cellular physiology of the highest quality, to provide a best-in-class author experience, and to nurture future generations of independent researchers. The major emphasis is on physiological problems at the cellular and molecular level.
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