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Structures of human pannexin 1 reveal ion pathways and mechanism of gating

机译:人类Pankexin 1的结构揭示了浇注的离子途径和机制

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摘要

Cryo-electron microscopy structures of the ATP-permeable channel pannexin 1 reveal a gating mechanism involving multiple distinct ion-conducting pathways.Pannexin 1 (PANX1) is an ATP-permeable channel with critical roles in a variety of physiological functions such as blood pressure regulation(1), apoptotic cell clearance(2) and human oocyte development(3). Here we present several structures of human PANX1 in a heptameric assembly at resolutions of up to 2.8 angstrom, including an apo state, a caspase-7-cleaved state and a carbenoxolone-bound state. We reveal a gating mechanism that involves two ion-conducting pathways. Under normal cellular conditions, the intracellular entry of the wide main pore is physically plugged by the C-terminal tail. Small anions are conducted through narrow tunnels in the intracellular domain. These tunnels connect to the main pore and are gated by a long linker between the N-terminal helix and the first transmembrane helix. During apoptosis, the C-terminal tail is cleaved by caspase, allowing the release of ATP through the main pore. We identified a carbenoxolone-binding site embraced by W74 in the extracellular entrance and a role for carbenoxolone as a channel blocker. We identified a gap-junction-like structure using a glycosylation-deficient mutant, N255A. Our studies provide a solid foundation for understanding the molecular mechanisms underlying the channel gating and inhibition of PANX1 and related large-pore channels.
机译:ATP透气通道Pannexin 1的冷冻电子显微镜结构揭示了涉及多个不同离子传导途径的浇注机构.Pannexin 1(Panx1)是ATP渗透通道,具有诸如血压调节的各种生理功能中的关键作用(1),凋亡细胞间隙(2)和人卵母细胞发育(3)。在这里,我们在高达2.8埃的分辨率下呈现几种人Panx1的人PanX1结构,包括APO状态,胱天蛋白酶-7切割状态和碳氧酮结合状态。我们揭示了一种涉及两个离子导电途径的门控机构。在正常的细胞条件下,宽主孔的细胞内进入由C末端尾部物理堵塞。小阴离子通过细胞内域中的窄隧道进行。这些隧道连接到主孔,并通过N末端螺旋和第一透射膜之间的长连接器门控。在细胞凋亡中,C末端尾巴通过Caspase切割,允许通过主孔释放ATP。我们鉴定了在细胞外入口处的W74拥有的碳雄氧酮结合位点,并作为渠道阻滞剂的碳氧酮的作用。我们使用糖基化缺陷突变体N255A鉴定了一种间隙结合的结构。我们的研究提供了一种坚实的基础,用于理解渠道门控的分子机制和Panx1的抑制和相关的大孔通道。

著录项

  • 来源
    《Nature》 |2020年第7822期|646-651|共6页
  • 作者单位

    Van Andel Inst Grand Rapids MI 49503 USA;

    Van Andel Inst Grand Rapids MI 49503 USA;

    Van Andel Inst Grand Rapids MI 49503 USA;

    Van Andel Inst Grand Rapids MI 49503 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:15:32

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