快速发现含有环β-氨基酸的抗SARS-CoV-2主要蛋白酶的细胞渗透性螺旋肽抑制剂。

IF 3.1 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Marina Kawai, Tika R. Malla, H. T. Henry Chan, Anthony Tumber, Lennart Brewitz, Eidarus Salah, Naohiro Terasaka, Takayuki Katoh, Akane Kawamura, Christopher J. Schofield, Fernanda Duarte and Hiroaki Suga
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引用次数: 0

摘要

结构受限的环β-氨基酸是有吸引力的构建块肽药物,因为它们诱导独特和稳定的构象。在多肽中引入(1S,2S)-2-氨基环戊烷羧酸[(1S,2S)-2-ACPC]可以稳定螺旋构象,从而提高蛋白水解稳定性和细胞膜通透性。我们报道了核糖体合成的螺旋肽库,每3个位置包含(1S,2S)-2-ACPC,并将其应用于发现SARS-CoV-2主要蛋白酶(Mpro)抑制剂。我们发现了两个含有多个(1S,2S)-2-ACPC残基的肽序列,与α-Ala或β-Ala相比,它们具有螺旋构象和优越的蛋白水解稳定性。使用氯烷烃细胞穿透实验的研究表明,它们的细胞穿透值(CP50)与穿透细胞的nona-arginine (R9)肽相当甚至略好。因此,新方法是一种高效的方法,它将含有结构受限的环状β-氨基酸的螺旋肽库与经典的快速发现方法相结合,从而能够重新发现蛋白水解稳定且穿透细胞的靶向细胞内蛋白质的生物活性肽。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

RaPID discovery of cell-permeable helical peptide inhibitors con-taining cyclic β-amino acids against SARS-CoV-2 main protease†

RaPID discovery of cell-permeable helical peptide inhibitors con-taining cyclic β-amino acids against SARS-CoV-2 main protease†

Structurally constrained cyclic β-amino acids are attractive building blocks for peptide drugs because they induce unique and stable conformations. Introduction of (1S,2S)-2-aminocyclopentanecarboxylic acid [(1S,2S)-2-ACPC] into peptides stabilizes helical conformations, so improving proteolytic stability and cell membrane permeability. We report on the ribosomal synthesis of a helical peptide library incorporating (1S,2S)-2-ACPC at every third position and its application for the discovery of SARS-CoV-2 main protease (Mpro) inhibitors. We identified two peptide sequences containing multiple (1S,2S)-2-ACPC residues, which exhibit helical conformations and superior proteolytic stability compared with their α-Ala or β-Ala counterparts. Studies using the chloroalkane cell-penetration assay showed that their cell permeability values (CP50) are comparable with or even slightly better than that of the cell-penetrating nona-arginine (R9) peptide. The new approach is thus a highly efficient method that combines a helical peptide library containing structurally constrained cyclic β-amino acids with the classical RaPID discovery method, enabling de novo discovery of proteolytically stable and cell-penetrating bioactive peptides that target intracellular proteins.

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CiteScore
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