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通过仿生环状丙基膦酸酐(T3P)介导的快速溶液相和液相肽合成(SolPSS 和 LPPS)。

Fast Solution-Phase and Liquid-Phase Peptide Syntheses (SolPSS and LPPS) Mediated by Biomimetic Cyclic Propylphosphonic Anhydride (T3P).

机构信息

Tolomelli-Cabri/P4I Lab-Peptidomimetics and Peptides Targeting Protein-Protein Interaction, Department of Chemistry "Giacomo Ciamician", Alma Mater Studiorum-University of Bologna, Via Gobetti 87, 40129 Bologna, Italy.

Consorzio C.I.N.M.P.I.S. (National Interuniversity Research Consortium in Innovative Synthesis Methodologies and Processes) c/o, Alma Mater Studiorum-University of Bologna, Via Gobetti 87, 40129 Bologna, Italy.

出版信息

Molecules. 2023 Oct 19;28(20):7183. doi: 10.3390/molecules28207183.

Abstract

The growing applications of peptide-based therapeutics require the development of efficient protocols from the perspective of an industrial scale-up. T3P (cyclic propylphosphonic anhydride) promotes amidation in the solution-phase through a biomimetic approach, similar to the activation of carboxylic moiety catalyzed by ATP-grasp enzymes in metabolic pathways. The T3P induced coupling reaction was applied in this study to the solution-phase peptide synthesis (SolPPS). Peptide bond formation occurred in a few minutes with high efficiency and no epimerization, generating water-soluble by-products, both using -Boc or -Fmoc amino acids. The optimized protocol, which was successfully applied to the iterative synthesis of a pentapeptide, also allowed for a decrease in the solvent volume, thus improving process sustainability. The protocol was finally extended to the liquid-phase peptide synthesis (LPPS), where the isolation of the peptide was performed using precipitation, thus also showing the suitability of this coupling reagent to this emerging technique.

摘要

基于肽的治疗方法的应用不断增加,需要从工业规模扩大的角度开发有效的方案。T3P(环状丙基膦酸酐)通过仿生方法促进溶液相中的酰胺化,类似于代谢途径中 ATP 抓取酶催化的羧酸部分的激活。在这项研究中,T3P 诱导的偶联反应被应用于溶液相肽合成(SolPPS)。使用 Boc 或 Fmoc 氨基酸,几分钟内即可高效且无差向异构化地形成肽键,生成水溶性副产物。优化后的方案成功应用于五肽的迭代合成,还可以减少溶剂体积,从而提高工艺可持续性。该方案最终扩展到液相肽合成(LPPS)中,其中使用沉淀法分离肽,因此也表明这种偶联试剂适用于这种新兴技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96ec/10609394/3bd31a571218/molecules-28-07183-g001.jpg

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