首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >PNAS Plus: Small-molecule CaVα1⋅CaVβ antagonist suppresses neuronal voltage-gated calcium-channel trafficking
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PNAS Plus: Small-molecule CaVα1⋅CaVβ antagonist suppresses neuronal voltage-gated calcium-channel trafficking

机译:PNAS Plus:小分子CaVα1⋅CaVβ拮抗剂可抑制神经元电压门控性钙通道运输

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摘要

Extracellular calcium flow through neuronal voltage-gated CaV2.2 calcium channels converts action potential-encoded information to the release of pronociceptive neurotransmitters in the dorsal horn of the spinal cord, culminating in excitation of the postsynaptic central nociceptive neurons. The CaV2.2 channel is composed of a pore-forming α1 subunit (CaVα1) that is engaged in protein–protein interactions with auxiliary α2/δ and β subunits. The high-affinity CaV2.2α1⋅CaVβ3 protein–protein interaction is essential for proper trafficking of CaV2.2 channels to the plasma membrane. Here, structure-based computational screening led to small molecules that disrupt the CaV2.2α1⋅CaVβ3 protein–protein interaction. The binding mode of these compounds reveals that three substituents closely mimic the side chains of hot-spot residues located on the α-helix of CaV2.2α1. Site-directed mutagenesis confirmed the critical nature of a salt-bridge interaction between the compounds and CaVβ3 Arg-307. In cells, compounds decreased trafficking of CaV2.2 channels to the plasma membrane and modulated the functions of the channel. In a rodent neuropathic pain model, the compounds suppressed pain responses. Small-molecule α-helical mimetics targeting ion channel protein–protein interactions may represent a strategy for developing nonopioid analgesia and for treatment of other neurological disorders associated with calcium-channel trafficking.
机译:通过神经元电压门控CaV2.2钙通道的细胞外钙流将动作电位编码信息转换为脊髓背角中感受感受神经递质的释放,最终激发突触后中央伤害感受神经元。 CaV2.2通道由一个成孔的α1亚基(CaVα1)组成,该α1亚基与辅助α2/δ和β亚基参与蛋白质-蛋白质相互作用。 CaV2.2α1⋅CaVβ3蛋白之间的高亲和力对于将CaV2.2通道正确运输到质膜至关重要。在这里,基于结构的计算筛选导致了破坏CaV2.2α1⋅CaVβ3蛋白质与蛋白质相互作用的小分子。这些化合物的结合方式表明,三个取代基紧密地模拟了位于CaV2.2α 1 的α-螺旋上的热点残基的侧链。定点诱变证实了化合物与Ca V β 3 Arg-307之间盐桥相互作用的关键性质。在细胞中,化合物减少了Ca V 2.2通道向质膜的运输,并调节了通道的功能。在啮齿动物神经性疼痛模型中,这些化合物抑制了疼痛反应。针对离子通道蛋白-蛋白相互作用的小分子α-螺旋模拟物可能代表了发展非阿片类镇痛和治疗与钙通道运输有关的其他神经系统疾病的策略。

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