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底物选择性抑制剂可重新编程胰岛素降解酶的活性。

Substrate-selective inhibitors that reprogram the activity of insulin-degrading enzyme.

机构信息

Merkin Institute of Transformative Technologies in Healthcare, Broad Institute of MIT and Harvard, Cambridge, MA, USA.

Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, USA.

出版信息

Nat Chem Biol. 2019 Jun;15(6):565-574. doi: 10.1038/s41589-019-0271-0. Epub 2019 May 13.

Abstract

Enzymes that act on multiple substrates are common in biology but pose unique challenges as therapeutic targets. The metalloprotease insulin-degrading enzyme (IDE) modulates blood glucose levels by cleaving insulin, a hormone that promotes glucose clearance. However, IDE also degrades glucagon, a hormone that elevates glucose levels and opposes the effect of insulin. IDE inhibitors to treat diabetes, therefore, should prevent IDE-mediated insulin degradation, but not glucagon degradation, in contrast with traditional modes of enzyme inhibition. Using a high-throughput screen for non-active-site ligands, we discovered potent and highly specific small-molecule inhibitors that alter IDE's substrate selectivity. X-ray co-crystal structures, including an IDE-ligand-glucagon ternary complex, revealed substrate-dependent interactions that enable these inhibitors to potently block insulin binding while allowing glucagon cleavage, even at saturating inhibitor concentrations. These findings suggest a path for developing IDE-targeting therapeutics, and offer a blueprint for modulating other enzymes in a substrate-selective manner to unlock their therapeutic potential.

摘要

作用于多种底物的酶在生物学中很常见,但作为治疗靶点却带来了独特的挑战。金属蛋白酶胰岛素降解酶(IDE)通过切割胰岛素来调节血糖水平,胰岛素是一种促进葡萄糖清除的激素。然而,IDE 也会降解胰高血糖素,后者会升高血糖水平并拮抗胰岛素的作用。因此,用于治疗糖尿病的 IDE 抑制剂应该防止 IDE 介导的胰岛素降解,但不应降解胰高血糖素,这与传统的酶抑制模式不同。我们使用高通量筛选非活性位点配体的方法发现了强效且高度特异的小分子抑制剂,这些抑制剂改变了 IDE 的底物选择性。X 射线共晶结构,包括 IDE-配体-胰高血糖素三元复合物,揭示了底物依赖性相互作用,使这些抑制剂能够有效地阻断胰岛素结合,同时允许胰高血糖素切割,即使在饱和抑制剂浓度下也是如此。这些发现为开发针对 IDE 的治疗药物提供了思路,并为以底物选择性方式调节其他酶以释放其治疗潜力提供了蓝图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a10e/6551522/c812a6208094/nihms-1524085-f0001.jpg

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