聚合
链式转移
可控性
质子
化学
三氟乙酸
催化作用
工作(物理)
链式传播
控制(管理)
链条(单位)
调制(音乐)
组合化学
传输(计算)
执行机构
控制理论(社会学)
计算机科学
平衡(能力)
木筏
自由基聚合
反应中间体
化学物理
动力学
材料科学
化学平衡
作者
J Huang,Haonan Sheng,Jianjun Cheng,Xingliang Liu
摘要
Since its inception in 2003, the concept of "reversible deactivation" to control chain propagation has emerged as a promising, though still evolving, strategy for precise polypeptide synthesis. Beyond a simple polymerization method, this concept is expected to promote unique reaction pathways. Nevertheless, achieving both rapid and well-controlled ring-opening polymerization of N-carboxyanhydrides through the equilibrium between dormant and active species is rare and challenging. In this study, we report a proton transfer shuttle-assisted strategy that accelerates chain growth via trifluoroacetic acid (TFA) /tetrabutylammonium acetate (TBAA) cooperative system. Central to this strategy is reversible acceptance and donation of proton, thereby shifting the dormant-active equilibrium without disrupting it. This modulation increases the proportion of active chain ends while maintaining control over rapid polymerization process. Moreover, cooperative TFA/TBAA catalysis has streamlined the synthesis of well-defined polypeptides, which are amenable to further chemical modifications. Control experiments and density functional theory calculations provide insights into the origin of controllability and critical role of TFA/TBAA in regulating the reversible deactivation equilibrium. Consequently, this work establishes a robust and efficient approach for accelerated yet controlled preparation of polypeptides and generates fundamental insights that advance understanding and application of the "reversible deactivation" concept for precision polypeptide synthesis.
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