Joanna Bojarska, Martin Breza, Paweł Borowiecki, Izabela D Madura, Krzysztof Kaczmarek, Zyta M Ziora, Wojciech M Wolf
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Our Cambridge Structural Database (CSD) overview for the peptide-based crystals revealed the exclusivity of this compound from the viewpoint of the unusual pseudo-bicyclic system via C-H<sup>…</sup>O and C-O<sup>…</sup>π interactions, in which cyclopentene shields the amide bond. Notably, cyclopentene as a bioisostere of proline is an appealing scaffold in medicinal chemistry. An extensive combined experimental and computational study provided more profound insight into the supramolecular landscape of <b>1</b> with respect to similar derivatives deposited in the CSD, including the tendency of cyclopentene for the generation of pseudo-cyclic motifs through weak H-bonding and π-based intramolecular interactions. These weak interactions have been examined by either the quantum theory of 'atoms-in-molecules' (QTAIM) or complex Hirshfeld surface methodology, including enrichment ratios, molecular electrostatic potential surfaces and energy frameworks. 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引用次数: 0
摘要
构象灵活性是肽类化合物的主要缺点之一。我们的研究重点是它们的分子 "变色性",这与通过调节微弱的分子内相互作用形成伪环图案有关。这是控制极性开放构象和非极性封闭构象之间平衡的一种有吸引力的策略。在此背景下,我们在此报告了(R)-(2-叔丁氧羰基)氨基-1-氧代-3-苯基)丙基)-1-环戊烯(1)的晶体结构。我们在剑桥结构数据库(CSD)中对该肽基晶体进行了概述,发现该化合物通过 C-H...O 和 C-O...π相互作用形成不寻常的伪双环体系,环戊烯在其中屏蔽了酰胺键,从这个角度来看,该化合物具有独特性。值得注意的是,环戊烯作为脯氨酸的生物异构体,在药物化学中是一个极具吸引力的支架。通过广泛的实验和计算研究,我们更深入地了解了 1 与沉积在 CSD 中的类似衍生物的超分子结构,包括环戊烯通过微弱的 H 键和π型分子内相互作用生成伪环图案的趋势。这些弱相互作用已通过 "分子中原子 "量子理论(QTAIM)或复杂的希什费尔德表面方法(包括富集比、分子静电位面和能量框架)进行了研究。在所有分析过的晶体中,涉及环戊烯的所有类型的 H 键图案都在超分子结构的各个层次上形成。提供了一个以环戊烯为基础的 H 键合成物库。分子对接研究描绘了环戊烯与两种著名蛋白激酶活性位点内关键氨基酸残基的重要相互作用,揭示了环戊烯对乳腺癌的治疗潜力。在很大程度上,分散力对稳定配体和配体-蛋白质生物复合物的超分子结构具有重要意义。最后,研究还揭示了 1 的令人满意的与药物亲和性和血脑屏障渗透有关的硅学生物药代动力学特征。
An experimental and computational investigation of the cyclopentene-containing peptide-derived compounds: focus on pseudo-cyclic motifs via intramolecular interactions.
Conformational flexibility is one of the main disadvantages of peptide-based compounds. We focus on their molecular 'chameleonicity' related to forming pseudo-cyclic motifs via modulation of weak intramolecular interactions. It is an appealing strategy for controlling equilibrium between the polar open and the nonpolar closed conformations. Within this context, we report here the crystal structure of the (R)-(2-tert-butoxycarbonyl)amino-1-oxo-3-phenyl)propyl)-1-cyclopentene (1), synthesis of which in high yield was achieved by a facile multi-step protocol. Our Cambridge Structural Database (CSD) overview for the peptide-based crystals revealed the exclusivity of this compound from the viewpoint of the unusual pseudo-bicyclic system via C-H…O and C-O…π interactions, in which cyclopentene shields the amide bond. Notably, cyclopentene as a bioisostere of proline is an appealing scaffold in medicinal chemistry. An extensive combined experimental and computational study provided more profound insight into the supramolecular landscape of 1 with respect to similar derivatives deposited in the CSD, including the tendency of cyclopentene for the generation of pseudo-cyclic motifs through weak H-bonding and π-based intramolecular interactions. These weak interactions have been examined by either the quantum theory of 'atoms-in-molecules' (QTAIM) or complex Hirshfeld surface methodology, including enrichment ratios, molecular electrostatic potential surfaces and energy frameworks. In all analysed crystals, all types of H-bonded motifs involving cyclopentene are formed at all levels of supramolecular architecture. A library of cyclopentene-based H-bonding synthons is provided. A molecular docking study depicted vital interactions of cyclopentene with key amino acid residues inside the active sites of two prominent protein kinases, uncovering the therapeutic potential of 1 against breast cancer. To a large extent, dispersion forces have significance in stabilizing the supramolecular structure of both ligand and bio-complex ligand-protein. Finally, the satisfactory in silico bio-pharmacokinetic profile of 1 related to drug-likeness and blood-brain barrier permeation was also revealed.
期刊介绍:
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