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Fully Convergent Chemical Synthesis of Ester Insulin: Determination of the High Resolution X-ray Structure by Racemic Protein Crystallography

机译:酯类胰岛素的完全会聚化学合成:外消旋蛋白质晶体学测定高分辨率X射线结构

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摘要

Efficient total synthesis of insulin is important to enable the application of medicinal chemistry to the optimization of the properties of this important protein molecule. Recently we described "ester insulin"-a novel form of insulin in which the function of the 35 residue C-peptide of proinsulin is replaced by a single covalent bond-as a key intermediate for the efficient total synthesis of insulin. Here we describe a fully convergent synthetic route to the ester insulin molecule from three unprotected peptide segments of approximately equal size. The synthetic ester insulin polypeptide chain folded much more rapidly than proinsulin, and at physiological pH. Both the d-protein and l-protein enantiomers of monomeric DKP ester insulin (i.e., [Asp~(B10), Lys~(B28), Pro~(B29)] ester insulin) were prepared by total chemical synthesis. The atomic structure of the synthetic ester insulin molecule was determined by racemic protein X-ray crystallography to a resolution of 1.6 A. Diffraction quality crystals were readily obtained from the racemic mixture of {d-DKP ester insulin + l-DKP ester insulin}, whereas crystals were not obtained from the L-ester insulin alone even after extensive trials. Both the d-protein and L-protein enantiomers of monomeric DKP ester insulin were assayed for receptor binding and in diabetic rats, before and after conversion by saponification to the corresponding DKP insulin enantiomers. l-DKP ester insulin bound weakly to the insulin receptor, while synthetic l-DKP insulin derived from the l-DKP ester insulin intermediate was fully active in binding to the insulin receptor. The d- and l-DKP ester insulins and d-DKP insulin were inactive in lowering blood glucose in diabetic rats, while synthetic l-DKP insulin was fully active in this biological assay. The structural basis of the lack of biological activity of ester insulin is discussed.
机译:胰岛素的有效全合成对于使药物化学应用于优化这一重要蛋白质分子的性质非常重要。最近,我们描述了“酯胰岛素”-一种新的胰岛素形式,其中胰岛素原的35个残基C肽的功能被单个共价键取代-作为有效有效合成胰岛素的关键中间体。在这里,我们描述了从三个大小几乎相等的未保护的肽段到酯胰岛素分子的完全收敛的合成途径。在生理pH下,合成酯胰岛素多肽链的折叠比胰岛素原快得多。 DKP酯胰岛素单体的d蛋白和l蛋白对映体(即[Asp〜(B10),Lys〜(B28),Pro〜(B29)]酯胰岛素)都是通过全化学合成制备的。合成酯胰岛素分子的原子结构通过消旋蛋白X射线晶体学测定,分辨率为1.6A。从{d-DKP酯胰岛素+ 1-DKP酯胰岛素}的外消旋混合物中可轻松获得衍射级晶体。而即使经过广泛的试验,也不能仅从L-酯胰岛素中获得晶体。通过皂化成相应的DKP胰岛素对映体,在糖尿病大鼠中和在糖尿病大鼠中,分析了单体DKP酯胰岛素的d-蛋白和L-蛋白对映体的受体结合。 1-DKP酯胰岛素与胰岛素受体弱结合,而衍生自1-DKP酯胰岛素中间体的合成1-DKP胰岛素在结合胰岛素受体方面具有完全活性。 d-和1-DKP酯胰岛素和d-DKP胰岛素在降低糖尿病大鼠的血糖方面不起作用,而合成的1-DKP胰岛素在该生物学测定中具有完全活性。讨论了酯胰岛素缺乏生物活性的结构基础。

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  • 来源
    《Journal of the American Chemical Society》 |2013年第8期|3173-3185|共13页
  • 作者单位

    Departments of Chemistry, The University of Chicago, Chicago, Illinois 60637, United States;

    Departments of Biochemistry and Molecular Biology, The University of Chicago, Chicago, Illinois 60637, United States;

    Departments of Chemistry, The University of Chicago, Chicago, Illinois 60637, United States;

    Department of Biochemistry, Case Western Reserve School of Medicine, Cleveland, Ohio 44106, United States;

    Department of Biochemistry, Case Western Reserve School of Medicine, Cleveland, Ohio 44106, United States;

    Departments of Chemistry, The University of Chicago, Chicago, Illinois 60637, United States,Departments of Biochemistry and Molecular Biology, The University of Chicago, Chicago, Illinois 60637, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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