利用 AIE 荧光探针实时监测手性嵌段共聚多肽组装的可视化策略

Zenghao Li, Yanan Liu, Jing Sun
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引用次数: 0

摘要

聚集诱导发光(AIE)致光剂在许多应用领域都显示出巨大的潜力。在这项研究中,我们通过开环聚合和后修饰合成了具有相反手性的聚(乙二醇)-b-聚(9-蒽丙基甲基-L-赖氨酸)(PEG-b-PLLys-An)和聚(乙二醇)-b-聚(9-蒽丙基甲基-D-赖氨酸)PEG-b-PDLys-An 二嵌段共聚物。这两种二嵌段共聚物可在不同的水份含量下自组装成球形胶束或平面连接的圆盘状聚集体。此外,这两种共聚物在自组装过程中还会出现典型的 AIE 过程。为了便于研究链交换动力学,我们开发了一种基于荧光变化的新型可视化策略。通过这种策略,我们可以将 PEG44-b-PDLys20-An 和 PEG44-b-PLLys20-An 的等摩尔溶液与不同体积分数的水混合,实时监测链交换过程。我们发现,链交换主要是通过单分子萃取和再分配机制而不是胶束裂变和融合在低水量时发生的。与此相反,胶束在高水分时似乎被 "动力学冻结",这表明在这些条件下链交换受到抑制。重要的是,我们的方法为实时探测胶束链交换动力学提供了一种可视化观察方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A visualizable strategy to real-time monitor chiral block copolypeptide assembly by AIE fluorescent probes

A visualizable strategy to real-time monitor chiral block copolypeptide assembly by AIE fluorescent probes

Aggregation-induced emission (AIE) luminogens show great potential in many applications. In this study, we have synthesized diblock copolymers poly (ethylene glycol) -b-poly (9-anthrylmethyl-L-lysine) (PEG-b-PLLys-An) and poly (ethylene glycol) -b-poly (9-anthrylmethyl-D-lysine) PEG-b-PDLys-An with opposite handedness by ring-opening polymerization and post-modification. Both diblock copolymers can self-assemble into spherical micelles or planar connected disc-like aggregates at different water fractions. In addition, the copolymers present a typical AIE process concomitant with the self-assembly process. To facilitate the study of chain exchange kinetics, we develope a novel visualizable strategy based on fluorescence variation. This strategy allows us to monitor the real-time chain exchange process by mixing equimolar solutions of PEG44-b-PDLys20-An and PEG44-b-PLLys20-An with varying water volume fractions. We indicate that chain exchange predominantly occurs at low water fractions through a single-molecule extraction and redistribution mechanism rather than micellar fission and fusion. In contrast, the micelles appear to be "kinetically frozen" at high water fractions, suggesting suppressed chain exchange under these conditions. Importantly, our approach offers a visually observable method for probing the dynamics of micellar chain exchange in real time.

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