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首页> 外文期刊>Organic & biomolecular chemistry >Design and synthesis of a new orthogonally protected glutamic acid analog and its use in the preparation of high affinity polo-like kinase 1 polo-box domain - binding peptide macrocycles
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Design and synthesis of a new orthogonally protected glutamic acid analog and its use in the preparation of high affinity polo-like kinase 1 polo-box domain - binding peptide macrocycles

机译:新的正交保护谷氨酸类似物的设计与合成制备高亲和力酚类激酶1个Polo-Box结构域 - 结合肽大环γ的制备

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摘要

Targeting protein - protein interactions (PPIs) has emerged as an important area of discovery for anti-cancer therapeutic development. In the case of phospho-dependent PPIs, such as the polo-like kinase 1 (Plk1) polo-box domain (PBD), a phosphorylated protein residue can provide high-affinity recognition and binding to target protein hot spots. Developing antagonists of the Plk1 PBD can be particularly challenging if one relies solely on interactions within and proximal to the phospho-binding pocket. Fortunately, the affinity of phospho-dependent PPI antagonists can be significantly enhanced by taking advantage of interactions in both the phospho-binding site and hidden "cryptic" pockets that may be revealed on ligand binding. In our current paper, we describe the design and synthesis of macrocyclic peptide mimetics directed against the Plk1 PBD, which are characterized by a new glutamic acid analog that simultaneously serves as a ring-closing junction that provides accesses to a cryptic binding pocket, while at the same time achieving proper orientation of a phosphothreonine (pT) residue for optimal interaction in the signature phospho-binding pocket. Macrocycles prepared with this new amino acid analog introduce additional hydrogen-bonding interactions not found in the open-chain linear parent peptide. It is noteworthy that this new glutamic acid-based amino acid analog represents the first example of extremely high affinity ligands where access to the cryptic pocket from the pT-2 position is made possible with a residue that is not based on histidine. The concepts employed in the design and synthesis of these new macrocyclic peptide mimetics should be useful for further studies directed against the Plk1 PBD and potentially for ligands directed against other PPI targets.
机译:靶向蛋白质 - 蛋白质相互作用(PPI)被出现为抗癌治疗发育的重要发现领域。在磷酸依赖性PPI的情况下,例如马酚样激酶1(PLK1)母箱结构域(PBD),磷酸化的蛋白质残余物可以提供高亲和力的识别和结合目标蛋白质热点。如果一个人完全依赖于磷酸粘合口袋内和近端的相互作用,则PLK1 PBD的拮抗剂可以特别具有挑战性。幸运的是,通过利用可以在配体结合上揭示的磷酸粘合位点和隐藏的“隐蔽”袋中的相互作用,可以显着提高磷酸依赖性PPI拮抗剂的亲和力。在我们目前的论文中,我们描述了针对PLK1 PBD的大环肽模拟物的设计和合成,其特征在于一种新的谷氨酸类似物,其同时用作闭合结的闭合结合袋,而在同时实现磷酸胆碱(Pt)残基的正确取向,以便在签名磷胶结合口袋中的最佳相互作用。用这种新的氨基酸类似物制备的宏γ引入露天链线母肽中未发现的额外的氢键相互作用。值得注意的是,这种新的谷氨酸基氨基酸类似物代表了极高亲和力配体的第一实例,其中与不基于组氨酸的残余物使得从PT-2位置获得与Pt-2位置的粘附袋的进入。这些新的大环肽模拟物的设计和合成中使用的概念对于针对PLK1 PBD的进一步研究,并且可能用于针对其他PPI靶标的配体。

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  • 来源
    《Organic & biomolecular chemistry》 |2021年第36期|7843-7854|共12页
  • 作者单位

    Chemical Biology Laboratory Center for Cancer Research National Cancer Institute National Institutes of Health Frederick MD 21702 USA Discovery Chemistry Novo Nordisk Research Center Seattle Seattle WA 98109 USA;

    Chemical Biology Laboratory Center for Cancer Research National Cancer Institute National Institutes of Health Frederick MD 21702 USA Department of Medicinal Chemistry Institute of Biomaterials and Bioengineering Tokyo Medical and Dental University Tokyo 101-0062 Japan;

    Department of Biology and Biological Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

    Chemical Biology Laboratory Center for Cancer Research National Cancer Institute National Institutes of Health Frederick MD 21702 USA;

    Chemical Biology Laboratory Center for Cancer Research National Cancer Institute National Institutes of Health Frederick MD 21702 USA;

    Department of Biology and Biological Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

    Chemical Biology Laboratory Center for Cancer Research National Cancer Institute National Institutes of Health Frederick MD 21702 USA;

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