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Versatile Peptide Macrocyclization with Diels-Alder Cycloadditions

机译:具有Diels-Alder环加成反应的多功能肽大环化

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Macrocyclization can improve bioactive peptide ligands through preorganization of molecular topology, leading to improvement of pharmacologic properties like binding affinity, cell permeability, and metabolic stability. Here we demonstrate that Diels-Alder [4 + 2] cycloadditions can be harnessed for peptide macrocyclization and stabilization within a range of peptide scaffolds and chemical environments. Diels-Alder cyclization of diverse diene-dienophile reactive pairs proceeds rapidly, in high yield and with tunable stereochemical preferences on solid-phase or in aqueous solution. This reaction can be applied alone or in concert with other stabilization chemistries, such as ring-closing olefin metathesis, to stabilize loop, turn, and a-helical secondary structural motifs. NMR and molecular dynamics studies of model loop peptides confirmed preferential formation of endo cycloadduct stereochemistry, imparting significant structural rigidity to the peptide backbone that resulted in augmented protease resistance and increased biological activity of a Diels-Alder cyclized (DAC) RGD peptide. Separately, we demonstrated the stabilization of DAC alpha-helical peptides derived from the ER alpha-binding protein SRC2. We solved a 2.25 angstrom cocrystal structure of one DAC helical peptide bound to ER alpha, which unequivocally corroborated endo stereochemistry of the resulting Diels-Alder adduct, and confirmed that the unique architecture of stabilizing motifs formed with this chemistry can directly contribute to target binding. These data establish Diels-Alder cyclization as a versatile approach to stabilize diverse protein structural motifs under a range of chemical environments.
机译:大环化可以通过分子拓扑的预组织来改善生物活性肽配体,从而改善药理特性,例如结合亲和力,细胞通透性和代谢稳定性。在这里,我们证明Diels-Alder [4 + 2]环加成可在一系列肽支架和化学环境中用于肽的大环化和稳定化。各种二烯-亲二烯体反应对的Diels-Alder环化反应快速进行,产率高,在固相或水溶液中具有可调的立体化学偏好。该反应可以单独应用,也可以与其他稳定化学方法(例如,闭环烯烃复分解反应)一起应用,以稳定环,转向和α-螺旋二级结构基序。对模型环肽的NMR和分子动力学研究证实,优先形成内环加合物的立体化学结构,赋予肽主链显着的结构刚性,这导致蛋白酶抗性增强和Diels-Alder环化(DAC)RGD肽的生物活性增强。另外,我们证明了衍生自ERα结合蛋白SRC2的DACα螺旋肽的稳定性。我们解决了一个与ERα结合的DAC螺旋肽的2.25埃共晶体结构,该结构明确证实了所得Diels-Alder加合物的内部立体化学,并证实了用这种化学方法形成的稳定基序的独特结构可以直接促进目标结合。这些数据证明Diels-Alder环化是一种在多种化学环境下稳定各种蛋白质结构基序的通用方法。

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