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An Intermediate Unit-Mediated, Continuous Structural Inheritance Strategy for the Dilemma between Injectability and Robustness of Hydrogels

机译:一种中间单元介导的连续结构遗传策略,用于水凝胶的可注射性和鲁棒性之间的困境

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摘要

Hydrogels with injectability and robustness have great promise in clinical practice. However, current injectable hydrogels are usually mechanically weak. Here, an idea, "preformed hydrogel reversion", is proposed to develop robust injectable hydrogels through an intermediate unit-mediated, continuous structural inheritance strategy. In this strategy, robust preformed hydrogels are physically disassembled into intermediate injectable structure-inherited microgels (SIMs), and upon encountering water in physiological environment, the SIMs can construct a macroscopical robust structure with the driving force of hydrogen bonds (H-bonds). The physical disassembly and construction process enables the inheritance of robust structures through SIMs, thereby realizing both excellent injectability and robustness. Beyond that, the SIMs also exhibit long-term storage stability and convenient usability. Using protein drug loading and hemostasis as examples, it is demonstrated that the SIM system shows superiorities in biomedical applications. The proposed idea of "preformed hydrogel reversion" can open new horizons for developing robust injectable hydrogels for diverse applications.
机译:具有可注射性和稳定性的水凝胶在临床实践中具有广阔的前景。然而,目前的可注射水凝胶通常机械性能较弱。在这里,提出了一种“预制水凝胶逆转”的想法,即通过中间单元介导的连续结构遗传策略来开发强大的可注射水凝胶。在该策略中,将稳健的预制水凝胶物理分解成中间可注射结构遗传的微凝胶(SIM),当在生理环境中遇到水时,SIMs可以在氢键(H键)的驱动力下构建宏观稳健结构。通过物理拆卸和施工过程,可以通过SIM继承坚固的结构,从而实现出色的可注射性和坚固性。除此之外,SIM卡还具有长期存储稳定性和方便的可用性。以蛋白质载药和止血为例,证明了SIM系统在生物医学应用中表现出优越性。提出的“预成型水凝胶逆转”的想法可以为开发用于各种应用的稳健的可注射水凝胶开辟新的视野。

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