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含环丁烷的受限锚定残基实现了几何特异性烃肽环化。

Cyclobutane-bearing restricted anchoring residues enabled geometry-specific hydrocarbon peptide stapling.

作者信息

Chen Baobao, Liu Chao, Cong Wei, Gao Fei, Zou Yan, Su Li, Liu Lei, Hillisch Alexander, Lehmann Lutz, Bierer Donald, Li Xiang, Hu Hong-Gang

机构信息

School of Medicine or Institute of Translational Medicine, Shanghai University Shanghai 200444 China

School of Pharmacy, Second Military Medical University Shanghai 200433 China

出版信息

Chem Sci. 2023 Sep 29;14(41):11499-11506. doi: 10.1039/d3sc04279k. eCollection 2023 Oct 25.

Abstract

Stapled peptides are regarded as the promising next-generation therapeutics because of their improved secondary structure, membrane permeability and metabolic stability as compared with the prototype linear peptides. Usually, stapled peptides are obtained by a hydrocarbon stapling technique, anchoring from paired olefin-terminated unnatural amino acids and the consequent ring-closing metathesis (RCM). To investigate the adaptability of the rigid cyclobutane structure in RCM and expand the chemical diversity of hydrocarbon peptide stapling, we herein described the rational design and efficient synthesis of cyclobutane-based conformationally constrained amino acids, termed ()-1-amino-3-(but-3-en-1-yl)cyclobutane-1-carboxylic acid (E) and ()-1-amino-3-(but-3-en-1-yl)cyclobutane-1-carboxylic acid (Z). All four combinations including E-E, E-Z, Z-Z and Z-E were proven to be applicable in RCM-mediated peptide stapling to afford the corresponding geometry-specific stapled peptides. With the aid of the combined quantum and molecular mechanics, the E-E combination was proven to be optimal in both the RCM reaction and helical stabilization. With the spike protein of SARS-CoV-2 as the target, a series of cyclobutane-bearing stapled peptides were obtained. Among them, E-E geometry-specific stapled peptides indeed exhibit higher α-helicity and thus stronger biological activity than canonical hydrocarbon stapled peptides. We believe that this methodology possesses great potential to expand the scope of the existing peptide stapling strategy. These cyclobutane-bearing restricted anchoring residues served as effective supplements for the existing olefin-terminated unnatural amino acids and the resultant geometry-specific hydrocarbon peptide stapling provided more potential for peptide therapeutics.

摘要

与原型线性肽相比,环肽由于其改善的二级结构、膜通透性和代谢稳定性,被视为有前景的下一代治疗药物。通常,环肽是通过碳氢订书钉技术获得的,该技术从成对的烯烃末端非天然氨基酸进行锚定,随后进行关环复分解反应(RCM)。为了研究刚性环丁烷结构在RCM中的适应性并扩大碳氢肽订书钉的化学多样性,我们在此描述了基于环丁烷的构象受限氨基酸(称为()-1-氨基-3-(丁-3-烯-1-基)环丁烷-1-羧酸(E)和()-1-氨基-3-(丁-3-烯-1-基)环丁烷-1-羧酸(Z))的合理设计与高效合成。包括E-E、E-Z、Z-Z和Z-E在内的所有四种组合都被证明可用于RCM介导的肽订书钉反应,以得到相应的几何特异性环肽。借助量子力学和分子力学相结合的方法,证明E-E组合在RCM反应和螺旋稳定方面都是最优的。以严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的刺突蛋白为靶点,获得了一系列含环丁烷的环肽。其中,E-E几何特异性环肽确实比典型的碳氢环肽表现出更高的α-螺旋性,因此具有更强的生物活性。我们相信,这种方法具有极大的潜力来扩大现有肽订书钉策略的范围。这些含环丁烷的受限锚定残基是对现有烯烃末端非天然氨基酸的有效补充,由此产生的几何特异性碳氢肽订书钉为肽治疗提供了更多潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9293/10599482/5dfc0862d17d/d3sc04279k-f1.jpg

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