自磷酸化
变构调节
生物化学
胰岛素受体
胰岛素
苯硼酸
配体(生物化学)
信号转导
化学
受体
生物
内分泌学
激酶
蛋白激酶A
胰岛素抵抗
催化作用
作者
Yen‐Shan Chen,Jeremy Gleaton,Yanwu Yang,Balamurugan Dhayalan,Nelson B. Phillips,Yule Liu,Laurie Broadwater,Mark A. Jarosinski,Deepak Chatterjee,Michael C. Lawrence,Thomas Hattier,M. Dodson Michael,Michael A. Weiss
标识
DOI:10.1073/pnas.2103518118
摘要
). The sensor recognizes monosaccharides (fructose > glucose). Studies of insulin-signaling in human hepatoma-derived cells (HepG2) demonstrated fructose-dependent receptor autophosphorylation leading to appropriate downstream signaling events, including a specific kinase cascade and metabolic gene regulation (gluconeogenesis and lipogenesis). Addition of glucose (an isomeric ligand with negligible sensor affinity) did not activate the hormone. Similarly, metabolite-regulated signaling was not observed in control studies of 1) an unmodified insulin analog or 2) an analog containing a diol sensor without internal tethering. Although secondary structure (as probed by circular dichroism) was unaffected by ligand-binding, heteronuclear NMR studies revealed subtle local and nonlocal monosaccharide-dependent changes in structure. Insertion of a synthetic switch into insulin has thus demonstrated coupling between hinge-opening and allosteric holoreceptor signaling. In addition to this foundational finding, our results provide proof of principle for design of a mechanism-based metabolite-responsive insulin. In particular, replacement of the present fructose sensor by an analogous glucose sensor may enable translational development of a "smart" insulin analog to mitigate hypoglycemic risk in diabetes therapy.
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