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微流控辅助分子水凝胶剂在水-水界面的自组装用于超分子微胶囊的连续制备

Microfluidic-Assisted Self-Assembly of Molecular Hydrogelator at Water-Water Interfaces for Continuous Fabrication of Supramolecular Microcapsules.

作者信息

Li Zhongqi, Wang Hucheng, Gao Yuliang, Chen Jingjing, Gu Guanyao, Liu Jing, Chen Yuqian, Guo Xuhong, Wang Yiming

机构信息

State Key Laboratory of Chemical Engineering, East China University of Science and Technology, Shanghai, 200237, P. R. China.

Shanghai Key Laboratory for Intelligent Sensing and Detection Technology, East China University of Science and Technology, Shanghai, 200237, P. R. China.

出版信息

Small. 2024 Nov;20(45):e2403085. doi: 10.1002/smll.202403085. Epub 2024 Jul 25.

DOI:10.1002/smll.202403085
PMID:39051965
Abstract

Control over the self-assembly of small molecules at specific areas is of great interest for many high-tech applications, yet remains a formidable challenge. Here, how the self-assembly of hydrazone-based molecular hydrogelators can be specifically triggered at water-water interfaces for the continuous fabrication of supramolecular microcapsules by virtue of the microfluidic technique is demonstrated. The non-assembling hydrazide- and aldehyde-based hydrogelator precursors are distributed in two immiscible aqueous polymer solutions, respectively, through spontaneous phase separation. In the presence of catalysts, hydrazone-based hydrogelators rapidly form and self-assemble into hydrogel networks at the generated water-water interfaces. Relying on the microfluidic technique, microcapsules bearing a shell of supramolecular hydrogel are continuously produced. The obtained microcapsules can effectively load enzymes, enabling localized enzymatic growth of supramolecular fibrous supramolecular structures, reminiscent of the self-assembly of biological filaments within living cells. This work may contribute to the development of biomimetic supramolecular carriers for applications in biomedicine and fundamental research, for instance, the construction of protocells.

摘要

对小分子在特定区域的自组装进行控制,对于许多高科技应用而言具有重大意义,但仍是一项艰巨的挑战。在此,展示了如何借助微流控技术,在水 - 水界面特异性触发基于腙的分子水凝胶剂的自组装,以连续制备超分子微胶囊。基于酰肼和醛的非组装水凝胶剂前体分别通过自发相分离分布在两种互不相溶的聚合物水溶液中。在催化剂存在下,基于腙的水凝胶剂迅速形成并在产生的水 - 水界面自组装成水凝胶网络。依靠微流控技术,连续生产出带有超分子水凝胶壳的微胶囊。所获得的微胶囊能够有效地负载酶,实现超分子纤维超分子结构的局部酶促生长,这让人联想到活细胞内生物细丝的自组装。这项工作可能有助于开发用于生物医学和基础研究应用的仿生超分子载体,例如原细胞的构建。

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