European Molecular Biology Laboratory (EMBL), Structural and Computational Biology Unit, Meyerhofstraße 1, 69117, Heidelberg, Germany.
The Walter and Eliza Hall Institute of Medical Research, 1G Royal Parade, Parkville, Victoria, 3015, Australia.
Nat Commun. 2018 Oct 24;9(1):4420. doi: 10.1038/s41467-018-06826-6.
Understanding the structural biology of the insulin receptor and how it signals is of key importance in the development of insulin analogs to treat diabetes. We report here a cryo-electron microscopy structure of a single insulin bound to a physiologically relevant, high-affinity version of the receptor ectodomain, the latter generated through attachment of C-terminal leucine zipper elements to overcome the conformational flexibility associated with ectodomain truncation. The resolution of the cryo-electron microscopy maps is 3.2 Å in the insulin-binding region and 4.2 Å in the membrane-proximal region. The structure reveals how the membrane proximal domains of the receptor come together to effect signalling and how insulin's negative cooperativity of binding likely arises. Our structure further provides insight into the high affinity of certain super-mitogenic insulins. Together, these findings provide a new platform for insulin analog investigation and design.
了解胰岛素受体的结构生物学及其信号转导方式对于开发治疗糖尿病的胰岛素类似物至关重要。我们在此报告了一个冷冻电镜结构,该结构显示了一个单独的胰岛素与生理相关的高亲和力受体胞外域的结合,后者通过连接 C 端亮氨酸拉链元件来克服与胞外域截断相关的构象灵活性而产生。冷冻电镜图谱的分辨率在胰岛素结合区域为 3.2 Å,在膜近端区域为 4.2 Å。该结构揭示了受体的膜近端结构域如何聚集以发挥信号转导作用,以及胰岛素结合的负协同作用如何产生。我们的结构进一步深入了解了某些超促有丝分裂胰岛素的高亲和力。总之,这些发现为胰岛素类似物的研究和设计提供了新的平台。