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Solid Phase Synthesis of a Functionalized Bis-Peptide Using Safety Catch Methodology

机译:固相合成功能化的双肽使用安全捕获方法

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摘要

In 1962, R.B. Merrifield published the first procedure using solid-phase peptide synthesis as a novel route to efficiently synthesize peptides. This technique quickly proved advantageous over its solution-phase predecessor in both time and labor. Improvements concerning the nature of solid support, the protecting groups employed and the coupling methods employed over the last five decades have only increased the usefulness of Merrifield's original system. Today, use of a Boc-based protection and baseucleophile cleavable resin strategy or Fmoc-based protection and acidic cleavable resin strategy, pioneered by R.C. Sheppard, are most commonly used for the synthesis of peptides1.Inspired by Merrifield's solid supported strategy, we have developed a Boc/tert-butyl solid-phase synthesis strategy for the assembly of functionalized bis-peptides2, which is described herein. The use of solid-phase synthesis compared to solution-phase methodology is not only advantageous in both time and labor as described by Merrifield1, but also allows greater ease in the synthesis of bis-peptide libraries. The synthesis that we demonstrate here incorporates a final cleavage stage that uses a two-step "safety catch" mechanism to release the functionalized bis-peptide from the resin by diketopiperazine formation.Bis-peptides are rigid, spiro-ladder oligomers of bis-amino acids that are able to position functionality in a predictable and designable way, controlled by the type and stereochemistry of the monomeric units and the connectivity between each monomer. Each bis-amino acid is a stereochemically pure, cyclic scaffold that contains two amino acids (a carboxylic acid with an α-amine)3,4. Our laboratory is currently investigating the potential of functional bis-peptides across a wide variety of fields including catalysis, protein-protein interactions and nanomaterials.
机译:1962年,R.B。Merrifield发表了第一个使用固相肽合成方法的方法,该方法是有效合成肽的新途径。这项技术很快就证明了在时间和精力上都优于其解决方案的前身。在过去的五十年中,有关固体载体性质,所用保护基和所用偶联方法的改进,仅增加了Merrifield原始体系的实用性。如今,R.C。率先采用了基于Boc的保护和碱基/亲核可裂解树脂策略或基于Fmoc的保护和酸性可裂解树脂策略。 Sheppard是最常用于合成肽 1 的方法。受Merrifield固相支持策略的启发,我们开发了Boc /叔丁基固相合成策略,用于组装功能化双肽< sup> 2 ,在此进行说明。与固相合成方法相比,固相合成的使用不仅在时间和精力上都具有优势,如Merrifield 1 所述,而且还使合成二肽文库更加容易。我们在此处演示的合成过程包括一个最终的裂解阶段,该裂解阶段采用两步“安全捕获”机制,通过二酮哌嗪形成从树脂中释放出官能化双肽。双肽是双氨基的刚性,螺旋梯形低聚物。能够以可预测和可设计的方式定位官能团的酸,受单体单元的类型和立体化学以及每个单体之间的连接性控制。每个双氨基酸是一种立体化学纯的环状支架,其中包含两个氨基酸(带有α-胺的羧酸) 3,4 。我们的实验室目前正在研究功能双肽在许多领域的潜力,包括催化,蛋白质-蛋白质相互作用和纳米材料。

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