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葫芦脲-咔唑类双光子光引发剂用于激光直写在水溶液中制备生物相容性三维水凝胶支架。

Cucurbit[7]uril-Carbazole Two-Photon Photoinitiators for the Fabrication of Biocompatible Three-Dimensional Hydrogel Scaffolds by Laser Direct Writing in Aqueous Solutions.

机构信息

Laboratory of Organic NanoPhotonics and CAS Key Laboratory of Bio-Inspired Materials and Interfacial Science , Technical Institute of Physics and Chemistry, Chinese Academy of Sciences , No. 29, Zhongguancun East Road , Beijing 100190 , P. R. China.

Research Institute of Chemical Defense , Academy of Military Sciences , Changping District, Beijing 102205 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2019 Jan 16;11(2):1782-1789. doi: 10.1021/acsami.8b15011. Epub 2019 Jan 4.

DOI:10.1021/acsami.8b15011
PMID:30608644
Abstract

We have introduced a novel water-soluble two-photon photoinitiator based on the host-guest interaction between 3,6-bis[2-(1-methyl-pyridinium)vinyl]-9-pentyl-carbazole diiodide (BMVPC) and cucurbit[7]uril (CB7) because most of the commercial photoinitiators have poor two-photon initiating efficiency in aqueous solutions. The binding ratio of BMVPC and CB7 was determined as 1:1 by isothermal titration calorimetry and quantum chemical calculation. The formation of the host-guest complex increases the two-photon absorption cross-section about five times, and improves the water solubility required as the photoinitiator for hydrogel fabrication. The BMVPC-CB7 inclusion complex was used as the one-component photoinitiator, and the polyethylene glycol diacrylate with promising biocompatibility was used as the hydrogel monomer to form the aqueous-phase photoresist system applied to two-photon polymerization microfabrication. A relatively low laser threshold of 4.5 mW, a high fabricating resolution of 180 nm, and the true three-dimensional (3D) fabricating capability in the aqueous solution have been obtained by using the as-prepared photoresist system. Finally, 3D engineering hydrogel scaffold microstructures with low toxicity and good biocompatibility have been fabricated and cocultured with living HeLa cells, which demonstrates the potential for further application in tissue engineering.

摘要

我们引入了一种新型的水溶性双光子光引发剂,该引发剂基于 3,6-双[2-(1-甲基吡啶基)乙烯基]-9-戊基咔唑二碘化物(BMVPC)和瓜环(CB7)之间的主客体相互作用,因为大多数商业光引发剂在水溶液中的双光子引发效率都很差。通过等温热滴定法和量子化学计算确定了 BMVPC 和 CB7 的结合比为 1:1。主客体配合物的形成使双光子吸收截面增加了约五倍,并且提高了作为水凝胶制造用光引发剂所需的水溶性。将 BMVPC-CB7 包合物用作单组分光引发剂,并将具有良好生物相容性的聚乙二醇二丙烯酸酯用作水凝胶单体,以形成用于双光子聚合微加工的水相光致抗蚀剂体系。通过使用所制备的光致抗蚀剂体系,获得了相对较低的激光阈值 4.5 mW、较高的制造分辨率 180nm 以及在水溶液中的真正三维(3D)制造能力。最后,制造了具有低毒性和良好生物相容性的 3D 工程水凝胶支架微结构,并与活 HeLa 细胞共培养,这证明了其在组织工程中的进一步应用潜力。

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