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基于六甲基瓜环的超分子室温磷光水凝胶用于细胞成像。

Supramolecular Room-Temperature Phosphorescent Hydrogel Based on Hexamethyl Cucurbit[5]uril for Cell Imaging.

机构信息

Key Laboratory of Macrocyclic and Supramolecular Chemistry of Guizhou Province, Applied Chemistry, Guizhou University, Guiyang 550025, China.

Department of Nephrology, Children's Hospital of Chongqing Medical University, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development and Disorders, Chongqing Key Laboratory of Pediatrics, Chongqing 400014, China.

出版信息

ACS Appl Mater Interfaces. 2023 Jan 25;15(3):4668-4676. doi: 10.1021/acsami.2c17891. Epub 2023 Jan 14.

Abstract

The host-guest interaction between hexamethyl cucurbit[5]uril (HmeQ[5]) and 1,4-diaminobenzene (DB) was investigated, and a new low-molecular-weight supramolecular gel was prepared by a simple heating/mixing cooling method. The structure and properties of the supramolecular gel were characterized. Results revealed that DB molecules did not enter the cavity of HmeQ[5] and that hydrogen bonding between the carbonyl group at the HmeQ[5] port and the DB amino groups, together with dipole-dipole interactions and outer wall interactions, were the main driving forces for the formation of the supramolecular gel. The HmeQ[5]/DB gel system exhibits temperature sensitivity. The phosphor 6-bromo-2-naphthol (BrNp) was embedded in the gel to give the gel fluorescent phosphorescence double emission. The double emission ability at room temperature can be attributed to the ordered microstructure of the supramolecular gel, which effectively avoids the nonradiative transition of BrNp. Meanwhile, HmeQ[5]/DB-BrNp has good biocompatibility and low biotoxicity, which is compatible with HeLa cells to achieve cytoplasmic staining of HeLa in the red channel. The supramolecular gels constructed by this supramolecular assembly strategy not only have good temperature sensitivity but also extend the application of Q[]s in biomedical fields.

摘要

主体-客体相互作用研究了六甲基杯[5]芳烃(HmeQ[5])和 1,4-二氨基苯(DB)之间的相互作用,并通过简单的加热/混合冷却方法制备了一种新的低分子量超分子凝胶。对超分子凝胶的结构和性能进行了表征。结果表明,DB 分子未进入 HmeQ[5]的空腔,HmeQ[5]端口的羰基与 DB 氨基之间的氢键以及偶极-偶极相互作用和外壁相互作用是形成超分子凝胶的主要驱动力。HmeQ[5]/DB 凝胶体系具有温度敏感性。将磷光体 6-溴-2-萘酚(BrNp)嵌入凝胶中,赋予凝胶荧光磷光双重发射。室温下的双发射能力归因于超分子凝胶的有序微结构,这有效地避免了 BrNp 的非辐射跃迁。同时,HmeQ[5]/DB-BrNp 具有良好的生物相容性和低细胞毒性,与 HeLa 细胞兼容,可实现 HeLa 在红色通道中的细胞质染色。这种超分子组装策略构建的超分子凝胶不仅具有良好的温度敏感性,而且扩展了 Q[]s 在生物医学领域的应用。

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