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利用细菌蛋白表达和化学修饰优化糖基化干扰素-β-多肽的半合成。

Optimizing the Semisynthesis towards glycosylated interferon-β-polypeptide by utilizing bacterial protein expression and chemical modification.

作者信息

Chong Yie Kie, Chandrashekar Chaitra, Zhao Donglin, Maki Yuta, Okamoto Ryo, Kajihara Yasuhiro

机构信息

Department of Chemistry and Project Research Centre for Fundamental Sciences, Graduate School of Science, Osaka University, 1-1 Machikaneyama, Toyonaka, Osaka 560-0043, Japan.

出版信息

Org Biomol Chem. 2022 Mar 2;20(9):1907-1915. doi: 10.1039/d1ob02391h.

Abstract

The synthesis of a sufficient amount of homogeneous glycoprotein is of great interest because natural glycoproteins show considerable heterogeneity in oligosaccharide structures, making the studies on glycan structure-function relationship difficult. Herein, we report optimized methods that can accelerate the semisynthesis of homogeneous glycoproteins based on recombinant expression and chemical conversion. Peptide thioesters and peptides with Cys residues at their N-terminals are necessary intermediates to perform native chemical ligation. We successfully performed thioesterification for a peptide prepared in Cys-cyanylation at its C-terminal followed by hydrazinolysis and acidic thiolysis. These optimized conditions could tolerate an acid labile Thz protected Cys at the N-terminal of a peptide-hydrazide and specific cyanylation of the C-terminal Cys to yield a peptide thioester. To reduce the amount of precious oligosaccharide that is required in the conventional SPPS method, an improved liquid phase glycopeptide coupling was also optimized in a good yield (46% over four steps). Lastly, chemoselective protection of the internal cysteines and activation of the N-terminal cysteine were optimized toward a long peptide prepared in . By using these strategies, a full-length interferon-β glycosyl polypeptide as a model was successfully obtained.

摘要

合成足量的均一糖蛋白具有重要意义,因为天然糖蛋白在寡糖结构上表现出相当大的异质性,这使得聚糖结构-功能关系的研究变得困难。在此,我们报告了基于重组表达和化学转化加速均一糖蛋白半合成的优化方法。肽硫酯和在其N端带有半胱氨酸残基的肽是进行天然化学连接的必要中间体。我们成功地对在其C端进行半胱氨酸氰化、随后进行肼解和酸性硫解制备的肽进行了硫酯化反应。这些优化条件能够耐受肽酰肼N端酸不稳定的噻唑啉保护的半胱氨酸以及C端半胱氨酸的特异性氰化,以产生肽硫酯。为了减少传统固相肽合成方法中所需的珍贵寡糖的量,还优化了一种改进的液相糖肽偶联方法,产率良好(四步反应产率为46%)。最后,针对在[具体条件]下制备的长肽,对内部半胱氨酸的化学选择性保护和N端半胱氨酸的活化进行了优化。通过使用这些策略,成功获得了全长干扰素-β糖基化多肽作为模型。

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