基于固相fmoc的dna编码化学文库肽合成:反应条件,保护基团策略和陷阱

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Olivier B. C. Monty, Nicholas Simmons, Srinivas Chamakuri, Martin M. Matzuk, Damian W. Young*
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引用次数: 9

摘要

自2000年以来,多肽药物的发现显示出复苏的迹象,有28种非胰岛素治疗药物进入市场,而自1923年第一种多肽药物胰岛素以来,已有56种药物进入市场。虽然主要的发现方法是生物展示-噬菌体,mRNA和核糖体-但生物系统的合成局限性限制了对肽化学空间的探索深度。相比之下,dna编码化学提供了大量的协同作用和不依赖核糖体的合成灵活性,可以快速和更深入地探索同一空间。因此,作为构建肽dna编码化学文库(DECLs)的桥梁,我们开发了氨基酸单体的底物耐受性酰胺偶联反应条件,进行了偶联筛选以说明这种耐受性,开发了相关氨基酸的保护基团策略并报告了其局限性,开发了与全烃钉接肽药物开发相关的α,α-二取代烯基氨基酸偶联策略。开发了可能用于DECL构建的三肽偶联的反应条件,并合成了完全去保护的dna -十聚体偶联物,以说明所开发的方法在dna上合成肽的效力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Solution-Phase Fmoc-Based Peptide Synthesis for DNA-Encoded Chemical Libraries: Reaction Conditions, Protecting Group Strategies, and Pitfalls

Solution-Phase Fmoc-Based Peptide Synthesis for DNA-Encoded Chemical Libraries: Reaction Conditions, Protecting Group Strategies, and Pitfalls

Peptide drug discovery has shown a resurgence since 2000, bringing 28 non-insulin therapeutics to the market compared to 56 since its first peptide drug, insulin, in 1923. While the main method of discovery has been biological display—phage, mRNA, and ribosome—the synthetic limitations of biological systems has restricted the depth of exploration of peptide chemical space. In contrast, DNA-encoded chemistry offers the synergy of large numbers and ribosome-independent synthetic flexibility for the fast and deeper exploration of the same space. Hence, as a bridge to building DNA-encoded chemical libraries (DECLs) of peptides, we have developed substrate-tolerant amide coupling reaction conditions for amino acid monomers, performed a coupling screen to illustrate such tolerance, developed protecting group strategies for relevant amino acids and reported the limitations thereof, developed a strategy for the coupling of α,α-disubstituted alkenyl amino acids relevant to all-hydrocarbon stapled peptide drug discovery, developed reaction conditions for the coupling of tripeptides likely to be used in DECL builds, and synthesized a fully deprotected DNA-decamer conjugate to illustrate the potency of the developed methodology for on-DNA peptide synthesis.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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