Key Laboratory of Macromolecular Synthesis and Functionalization (Ministry of Education), Department of Polymer Science and Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, People's Republic of China.
Biomacromolecules. 2009 Jul 13;10(7):1865-74. doi: 10.1021/bm9002877. Epub 2009 Jun 4.
The synthesis of stable, low toxic, multifunctional, and water-soluble quantum dots (QDs) is of crucial importance for nanobiotechnology. An in situ anionic ring-opening polymerization strategy was successfully employed to grow multihydroxyl hyperbranched polyglycerol (HPG) from surfaces of aqueous synthesized QDs directly, affording multifunctional CdTe@HPG nanohybrids. The grafted HPG content can be adjusted from about 25 to 80 wt % by manipulating the feed ratio of glycidol monomer to QDs. The resultant CdTe@HPGs still show strong fluorescence and well water-solubility, and can conjugate functional biomolecules (e.g., amino acids) with their multiple reactive hydroxyls. Cytotoxicity measurements reveal that the CdTe@HPGs are much less toxic than the pristine QDs in human lung cancer cells SPCAI and more grafted HPG leads to less toxicity, due to the envelope of biocompatible HPG on QDs. It was found that the pristine QDs were unstable and their fluorescence decreased greatly or was even completed quenched after 24 h in SPCAI cells, whereas the QD@HPGs still exhibited strong fluorescence. This report opens the door for using in situ controlled/living polymerization to tailor QDs with biocompatible dendritic polymers readily and casts a light for obtaining robust nontoxic functionalized QDs and applying them in vitro and in vivo.
合成稳定、低毒、多功能且水溶性的量子点(QD)对于纳米生物技术至关重要。本研究成功采用原位阴离子开环聚合策略,直接从水相合成的 QD 表面生长多羟基超支化聚甘油(HPG),得到多功能 CdTe@HPG 纳米杂化物。通过控制环氧丙烷单体与 QD 的进料比,可以将接枝的 HPG 含量从约 25wt%调节至 80wt%。所得的 CdTe@HPG 仍具有强荧光和良好的水溶性,并且可以通过其多个反应性羟基与功能性生物分子(例如氨基酸)结合。细胞毒性测量表明,CdTe@HPG 比原始 QD 在人肺癌细胞 SPCAI 中的毒性小得多,并且由于 QD 上的生物相容性 HPG 外壳,接枝更多的 HPG 导致毒性更小。研究发现,原始 QD 在 SPCAI 细胞中 24 小时后不稳定,其荧光大大降低甚至完全猝灭,而 QD@HPG 仍表现出强荧光。该报告为使用原位控制/活性聚合来制备具有生物相容性树枝状聚合物的 QD 开辟了道路,并为获得稳健的无毒功能化 QD 以及在体外和体内应用提供了思路。