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将合成开关插入胰岛素中,提供了激素-受体激活的代谢物依赖性调节。

Insertion of a synthetic switch into insulin provides metabolite-dependent regulation of hormone-receptor activation.

机构信息

Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, IN 46202.

Thermalin Inc., Cleveland, OH 44106.

出版信息

Proc Natl Acad Sci U S A. 2021 Jul 27;118(30). doi: 10.1073/pnas.2103518118.

Abstract

Insulin-signaling requires conformational change: whereas the free hormone and its receptor each adopt autoinhibited conformations, their binding leads to structural reorganization. To test the functional coupling between insulin's "hinge opening" and receptor activation, we inserted an artificial ligand-dependent switch into the insulin molecule. Ligand-binding disrupts an internal tether designed to stabilize the hormone's native closed and inactive conformation, thereby enabling productive receptor engagement. This scheme exploited a diol sensor (-fluoro-phenylboronic acid at Gly) and internal diol (3,4-dihydroxybenzoate at Lys). 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.

摘要

胰岛素信号需要构象变化

游离激素及其受体各自采用自动抑制构象,它们的结合导致结构重组。为了测试胰岛素“铰链打开”和受体激活之间的功能偶联,我们在胰岛素分子中插入了一个人工配体依赖性开关。配体结合破坏了设计用于稳定激素天然封闭和非活性构象的内部系链,从而能够进行有效的受体结合。该方案利用二醇传感器(甘氨酸处的 - 氟苯硼酸)和内部二醇(赖氨酸处的 3,4-二羟基苯甲酸)。传感器识别单糖(果糖>葡萄糖)。在人肝癌衍生细胞(HepG2)中进行的胰岛素信号研究表明,果糖依赖性受体自磷酸化导致适当的下游信号事件,包括特定的激酶级联和代谢基因调节(糖异生和脂肪生成)。添加葡萄糖(一种具有可忽略不计的传感器亲和力的异构配体)不会激活激素。同样,在对照研究中也没有观察到代谢物调节的信号:1)未修饰的胰岛素类似物,或 2)不含内部系链的二醇传感器的类似物。尽管配体结合并未影响二级结构(如圆二色性探测),但异核 NMR 研究揭示了结构中微妙的局部和非局部单糖依赖性变化。将合成开关插入胰岛素中,证明了铰链打开和全受体变构信号之间的偶联。除了这一基础发现外,我们的结果还为设计基于机制的代谢物响应胰岛素提供了原理证明。特别是,用类似的葡萄糖传感器取代当前的果糖传感器,可能会为开发一种“智能”胰岛素类似物以减轻糖尿病治疗中的低血糖风险提供转化开发的依据。

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