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Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme

机译:集成cryoEM阐明了人胰岛素降解酶捕获和降解胰岛素的机​​制

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摘要

Insulin degrading enzyme (IDE) plays key roles in degrading peptides vital in type two diabetes, Alzheimer's, inflammation, and other human diseases. However, the process through which IDE recognizes peptides that tend to form amyloid fibrils remained unsolved. We used cryoEM to understand both the apo- and insulin-bound dimeric IDE states, revealing that IDE displays a large opening between the homologous ~55 kDa N- and C-terminal halves to allow selective substrate capture based on size and charge complementarity. We also used cryoEM, X-ray crystallography, SAXS, and HDX-MS to elucidate the molecular basis of how amyloidogenic peptides stabilize the disordered IDE catalytic cleft, thereby inducing selective degradation by substrate-assisted catalysis. Furthermore, our insulin-bound IDE structures explain how IDE processively degrades insulin by stochastically cutting either chain without breaking disulfide bonds. Together, our studies provide a mechanism for how IDE selectively degrades amyloidogenic peptides and offers structural insights for developing IDE-based therapies.
机译:胰岛素降解酶(IDE)在降解对2型糖尿病,阿尔茨海默氏病,炎症和其他人类疾病至关重要的肽中起关键作用。但是,IDE识别倾向于形成淀粉样蛋白原纤维的肽的过程仍未解决。我们使用cryoEM来了解载脂蛋白和胰岛素结合的二聚体IDE状态,发现IDE在同源的〜55 kDa N-和C-末端两半之间显示出较大的开口,从而可以根据大小和电荷互补性选择性捕获底物。我们还使用了cryoEM,X射线晶体学,SAXS和HDX-MS阐明了淀粉样蛋白生成肽如何稳定无序的IDE催化裂隙的分子基础,从而通过底物辅助催化诱导选择性降解。此外,我们与胰岛素结合的IDE结构解释了IDE如何通过随机切割任一链而不破坏二硫键来有效地降解胰岛素。总之,我们的研究为IDE如何选择性降解淀粉样肽提供了一种机制,并为开发基于IDE的疗法提供了结构上的见识。

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