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多组分、非平衡动态体系中实现类细胞的合成超分子软材料。

Cell-Like Synthetic Supramolecular Soft Materials Realized in Multicomponent, Non-/Out-of-Equilibrium Dynamic Systems.

机构信息

Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo-ku, Kyoto, 615-8510, Japan.

JST-ERATO, Hamachi Innovative Molecular Technology for Neuroscience, Kyoto University, Nishikyo-ku, Katsura, 615-8530, Japan.

出版信息

Adv Sci (Weinh). 2024 Feb;11(8):e2306830. doi: 10.1002/advs.202306830. Epub 2023 Nov 28.

Abstract

Living cells are complex, nonequilibrium supramolecular systems capable of independently and/or cooperatively integrating multiple bio-supramolecules to execute intricate physiological functions that cannot be accomplished by individual biomolecules. These biological design strategies offer valuable insights for the development of synthetic supramolecular systems with spatially controlled hierarchical structures, which, importantly, exhibit cell-like responses and functions. The next grand challenge in supramolecular chemistry is to control the organization of multiple types of supramolecules in a single system, thus integrating the functions of these supramolecules in an orthogonal and/or cooperative manner. In this perspective, the recent progress in constructing multicomponent supramolecular soft materials through the hybridization of supramolecules, such as self-assembled nanofibers/gels and coacervates, with other functional molecules, including polymer gels and enzymes is highlighted. Moreover, results show that these materials exhibit bioinspired responses to stimuli, such as bidirectional rheological responses of supramolecular double-network hydrogels, temporal stimulus pattern-dependent responses of synthetic coacervates, and 3D hydrogel patterning in response to reaction-diffusion processes are presented. Autonomous active soft materials with cell-like responses and spatially controlled structures hold promise for diverse applications, including soft robotics with directional motion, point-of-care disease diagnosis, and tissue regeneration.

摘要

活细胞是复杂的、非平衡的超分子体系,能够独立地和/或协作地整合多种生物超分子来执行复杂的生理功能,而这些功能是单个生物分子无法完成的。这些生物设计策略为具有空间控制的层次结构的合成超分子体系的发展提供了有价值的见解,这些体系重要的是表现出类似细胞的响应和功能。超分子化学的下一个重大挑战是控制单个体系中多种类型超分子的组织,从而以正交和/或协作的方式整合这些超分子的功能。在这篇观点文章中,强调了通过超分子(如自组装纳米纤维/凝胶和凝聚物)与其他功能分子(如聚合物凝胶和酶)的杂交来构建多组分超分子软材料的最新进展。此外,结果表明,这些材料对刺激表现出仿生响应,例如超分子双网络水凝胶的双向流变响应、合成凝聚物的时间刺激模式依赖性响应以及对反应-扩散过程的 3D 水凝胶图案化。具有类似细胞的响应和空间控制结构的自主活性软材料有望在各种应用中得到应用,包括具有定向运动的软机器人、即时疾病诊断和组织再生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/93a7/10885657/1f10fe8a9fc8/ADVS-11-2306830-g007.jpg

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