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Structure of the insulin receptor-insulin complex by single-particle cryo-EM analysis

机译:胰岛素受体-胰岛素复合物的单粒子冷冻电磁分析结构

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摘要

The insulin receptor is a dimeric protein that has a crucial role in controlling glucose homeostasis, regulating lipid, protein and carbohydrate metabolism, and modulating brain neurotransmitter levels1,2. Insulin receptor dysfunction has been associated with many diseases, including diabetes, cancer and Alzheimer's disease(1,3,4). The primary sequence of the receptor has been known since the 1980s(5), and is composed of an extracellular portion (the ectodomain, ECD), a single transmembrane helix and an intracellular tyrosine kinase domain. Binding of insulin to the dimeric ECD triggers autophosphorylation of the tyrosine kinase domain and subsequent activation of downstream signalling molecules. Biochemical and mutagenesis data have identified two putative insulin-binding sites, S1 and S2(6). The structures of insulin bound to an ECD fragment containing S1 and of the apo ectodomain have previously been reported(7,8), but details of insulin binding to the full receptor and the signal propagation mechanism are still not understood. Here we report single-particle cryo-electron microscopy reconstructions of the 1: 2 (4.3 angstrom) and 1: 1 (7.4 angstrom) complexes of the insulin receptor ECD dimer with insulin. The symmetrical 4.3 angstrom structure shows two insulin molecules per dimer, each bound between the leucine-rich subdomain L1 of one monomer and the first fibronectin-like domain (FnIII-1) of the other monomer, and making extensive interactions with the alpha-subunit C-terminal helix (alpha-CT helix). The 7.4 angstrom structure has only one similarly bound insulin per receptor dimer. The structures confirm the binding interactions at S1 and define the full S2 binding site. These insulin receptor states suggest that recruitment of the alpha-CT helix upon binding of the first insulin changes the relative subdomain orientations and triggers downstream signal propagation.
机译:胰岛素受体是一种二聚体蛋白,在控制葡萄糖稳态,调节脂质,蛋白质和碳水化合物的代谢以及调节脑神经递质的水平上具有关键作用1,2。胰岛素受体功能障碍与许多疾病有关,包括糖尿病,癌症和阿尔茨海默氏病(1,3,4)。受体的主要序列自1980年代(5)起就已为人所知,它由细胞外部分(胞外域,ECD),单个跨膜螺旋和细胞内酪氨酸激酶域组成。胰岛素与二聚体ECD的结合会触发酪氨酸激酶域的自磷酸化,并随后激活下游信号分子。生化和诱变数据已经确定了两个假定的胰岛素结合位点S1和S2(6)。胰岛素与包含S1的ECD片段和apo胞外域结合的结构以前已有报道(7,8),但胰岛素与全受体结合的细节和信号传播机制仍不清楚。在这里,我们报告了胰岛素受体ECD二聚体与胰岛素的1:2(4.3埃)和1:1(7.4埃)复合物的单粒子冷冻电子显微镜重建。对称的4.3埃结构在每个二聚体上显示两个胰岛素分子,每个分子都结合在一个单体的富亮氨酸亚结构域L1和另一个单体的第一个纤连蛋白样结构域(FnIII-1)之间,并且与α亚基发生广泛相互作用C末端螺旋线(α-CT螺旋线)。每个受体二聚体的7.4埃结构只有一个类似的结合胰岛素。这些结构确认了在S1处的结合相互作用并定义了完整的S2结合位点。这些胰岛素受体状态表明,第一种胰岛素结合后募集α-CT螺旋改变了相对亚域的方向并触发了下游信号的传播。

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  • 来源
    《Nature》 |2018年第7699期|122-125|共4页
  • 作者单位

    Merck & Co Inc, Dept Biochem Engn & Struct, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    New York Struct Biol Ctr, Simons Elect Microscopy Ctr, Natl Resource Automated Mol Microscopy, 89 Convent Ave, New York, NY 10027 USA;

    New York Struct Biol Ctr, Simons Elect Microscopy Ctr, Natl Resource Automated Mol Microscopy, 89 Convent Ave, New York, NY 10027 USA;

    Merck & Co Inc, Dept Biochem Engn & Struct, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    Merck & Co Inc, Dept Biochem Engn & Struct, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    Merck & Co Inc, Dept Biophys, NMR & Prot Prod Characterizat, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    Merck & Co Inc, Dept Biophys, NMR & Prot Prod Characterizat, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    Merck & Co Inc, Dept Biochem Engn & Struct, 2000 Galloping Hill Rd, Kenilworth, NJ 07033 USA;

    New York Struct Biol Ctr, Simons Elect Microscopy Ctr, Natl Resource Automated Mol Microscopy, 89 Convent Ave, New York, NY 10027 USA;

    New York Struct Biol Ctr, Simons Elect Microscopy Ctr, Natl Resource Automated Mol Microscopy, 89 Convent Ave, New York, NY 10027 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);
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