上临界溶液温度
共聚物
材料科学
纳米颗粒
高分子化学
单体
氢键
化学工程
链式转移
聚合
聚合物
粘附
纳米技术
低临界溶液温度
分子
有机化学
自由基聚合
化学
复合材料
工程类
作者
Yueyi Tian,Jiahui Lai,Chen Li,Jialin Sun,Kang Liu,Chuanzhuang Zhao,Mingming Zhang
标识
DOI:10.1021/acsami.2c22267
摘要
Poly( N -acryloyl glycinamide) (PNAGA) can form high-strength hydrogen bonds (H-bonds) through the dual amide motifs in the side chain, allowing the polymer to exhibit gelation behavior and an upper critical solution temperature (UCST) property. These features make PNAGA a candidate platform for biomedical devices. However, most applications focused on PNAGA hydrogels, while few focused on PNAGA nanoparticles. Improving the UCST tunability and bio-interfacial adhesion of the PNAGA nanoparticles may expand their applications in biomedical fields. To address the issues, we established a reactive H-bond-type P(NAGA- co -NAS) copolymer via reversible addition–fragmentation chain transfer polymerization of NAGA and N -acryloxysuccinimide (NAS) monomers. The UCST behaviors and the bio-interfacial adhesion toward the proteins and cells along with the potential application of the copolymer nanoparticles were investigated in detail. Taking advantage of the enhanced H-bonding and reactivity, the copolymer exhibited a tunable UCST in a broad temperature range, showing thermo-reversible transition between nanoparticles (PNPs) and soluble chains; the PNPs efficiently bonded proteins into nano-biohybrids while keeping the secondary structure of the protein, and more importantly, they also exhibited good adhesion ability to the cell membrane and significantly inhibited cell-specific propagation. These features suggest broad prospects for the P(NAGA- co -NAS) nanoparticles in the fields of biosensors, protein delivery, cell surface decoration, and cell-specific function regulation.
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