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Molecular design and validation of halogen bonding orthogonal to hydrogen bonding in breast cancer MDM2-peptide complex

机译:乳腺癌MDM2肽复合物中卤素键合卤素键合的分子设计及验证

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Peptide therapeutics has been raised as an attractive approach for the treatment of breast cancer by targeting the oncogenic protein MDM2 that inactivates p53 tumor suppressor. Here, we performed molecular design of halogen bonding orthogonal to hydrogen bonding at the complex interface of MDM2 protein with its cognate peptide ligand to improve the peptide binding affinity and specificity. Crystal structure analysis, high-level quantum chemistry (QC) calculations and combined quantum mechanics/molecular mechanics (QM/MM) modeling revealed that halogen substitution at position 3 of the benzene moiety of peptide Phe3 residue can constitute a putative halogen bonding, which is shown to be geometrically perpendicular to and energetically independent of a native hydrogen bonding that share a common carbonyl oxygen acceptor. The designed halogen bonding was then validated by surface plasmon resonance (SPR) assays, that is, substitution with bromine at position 3 can considerably improve peptide affinity by similar to 4-fold, but the peptide binding does not change substantially upon the bromine substitution at other positions of the Phe3 benzene moiety (the negative controls that are theoretically unable to form the halogen bonding), indicating that the orthogonal molecular interaction (OMI) system between the designed halogen bonding and native hydrogen bonding can co-work well at the complex interface of MDM2 protein with its halogenated peptide ligands. (C) 2016 Elsevier Inc. All rights reserved.
机译:通过靶向灭活P53肿瘤抑制剂的致癌蛋白MDM2,肽治疗剂已被提出为治疗乳腺癌的吸引方法。这里,我们对MDM2蛋白的复合界面进行了与其同源肽配体的卤素键合与氢键的分子设计,以改善肽结合亲和力和特异性。晶体结构分析,高级量子化学(QC)计算和组合量子力学/分子力学(QM / mm)建模显示,肽Phe3残基的苯部分氮素部分3处的卤素取代可以构成推定的卤素键,即示出在与共同羰基氧对受体的天然氢键相比,几何垂直于和能量地垂直。然后通过表面等离子体共振(SPR)测定验证设计的卤素键,即,在位置3的用溴取代可以显着改善肽亲和力,通过类似于4倍,但肽结合不会在溴替代时基本上改变PHE3苯部分的其他位置(理论上是无法形成卤素键的阴性对照),表明设计的卤素键合和天然氢键之间的正交分子相互作用(OMI)系统可以在复杂的界面中良好工作MDM2蛋白质与卤代肽配体。 (c)2016年Elsevier Inc.保留所有权利。

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