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通过嵌入可变形纳米障碍物增强水凝胶的溶胀性能。

Swelling-strengthening hydrogels by embedding with deformable nanobarriers.

机构信息

Shanghai Key Laboratory for Nucleic Acid Chemistry and Nanomedicine, Institute of Molecular Medicine, State Key Laboratory of Oncogenes and Related Genes, Shanghai Cancer Institute, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, 200127, Shanghai, China.

Department of Ophthalmology, Shanghai Ninth People's Hospital, School of Medicine, Shanghai Jiao Tong University, 200011, Shanghai, China.

出版信息

Nat Commun. 2020 Sep 9;11(1):4502. doi: 10.1038/s41467-020-18308-9.

Abstract

Biological tissues, such as muscle, can increase their mechanical strength after swelling due to the existence of many biological membrane barriers that can regulate the transmembrane transport of water molecules and ions. Oppositely, typical synthetic materials show a swelling-weakening behavior, which always suffers from a sharp decline in mechanical strength after swelling, because of the dilution of the network. Here, we describe a swelling-strengthening phenomenon of polymer materials achieved by a bioinspired strategy. Liposomal membrane nanobarriers are covalently embedded in a crosslinked network to regulate transmembrane transport. After swelling, the stretched network deforms the liposomes and subsequently initiates the transmembrane diffusion of the encapsulated molecules that can trigger the formation of a new network from the preloaded precursor. Thanks to the tough nature of the double-network structure, the swelling-strengthening phenomenon is achieved to polymer hydrogels successfully. Swelling-triggered self-strengthening enables the development of various dynamic materials.

摘要

生物组织(如肌肉)在肿胀后可以增加其机械强度,这是因为存在许多生物膜屏障,这些屏障可以调节水分子和离子的跨膜运输。相反,典型的合成材料表现出肿胀-弱化行为,由于网络的稀释,在肿胀后其机械强度总是会急剧下降。在这里,我们描述了一种通过仿生策略实现的聚合物材料的肿胀增强现象。脂质体膜纳米屏障通过共价键嵌入交联网络中以调节跨膜运输。肿胀后,拉伸的网络会使脂质体变形,随后引发封装分子的跨膜扩散,这可以触发预加载前体从形成新网络。由于双网络结构的坚韧性质,成功地实现了聚合物水凝胶的肿胀增强现象。肿胀触发的自增强使各种动态材料的开发成为可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0db/7481780/ae1bcc6605f8/41467_2020_18308_Fig1_HTML.jpg

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