Key Laboratory of Biomedical Polymers of Ministry of Education & Department of Chemistry, Wuhan University, Wuhan 430072, PR China.
Department of Cardiovascular Surgery, Union Hospital, Huazhong University of Science and Technology, Wuhan 430022, PR China.
Colloids Surf B Biointerfaces. 2013 Nov 1;111:732-40. doi: 10.1016/j.colsurfb.2013.07.017. Epub 2013 Jul 13.
To develop low toxic, high efficient, and excellent serum-tolerant polycation gene delivery systems, a series of oligoamines grafted hyperbranched polyether (oligoamines-g-HBP) were synthesized by conjugating different oligoamines, including triethylenetetramine (TETA) and tetraethylenepentamine (TEPA), onto COOH-functionalized hyperbranched poly(3-ethyl-3-oxetanemethanol). It was found that oligoamines-g-HBP exhibited good buffering capacity, strong DNA binding and high resistance against protein adsorption. In vitro cytotoxicity measurement indicated that oligoamines-g-HBP had much lower cytotoxicity as compared with 25 kDa PEI. The transfection efficiency of TEPA-g-HBP/DNA complexes at a certain N/P ratio was significantly higher than that of 25 kDa PEI/DNA complexes. Interestingly, it was found that TEPA-g-HBP had much improved serum-tolerant capability as compared with 25 kDa PEI even when serum concentration was increased to 30%. Confocal laser images further showed that the amount of YOYO-1 labeled DNA in nuclei got increased with increasing the number of secondary amino ethylene groups in oligoamines-g-HBP. The oligoamines-g-HBP presented great potential as gene delivery vectors for further clinical applications.
为了开发低毒、高效、优良的耐血清聚阳离子基因传递系统,通过将不同的低聚胺(包括三亚乙基四胺(TETA)和四亚乙基五胺(TEPA))接枝到 COOH 功能化的超支化聚(3-乙基-3-恶唑烷甲醇)上,合成了一系列的超支化聚醚接枝低聚胺(oligoamines-g-HBP)。研究发现,oligoamines-g-HBP 具有良好的缓冲能力、强 DNA 结合能力和高抗蛋白吸附能力。体外细胞毒性测量表明,oligoamines-g-HBP 的细胞毒性比 25 kDa PEI 低得多。在一定的 N/P 比下,TEPA-g-HBP/DNA 复合物的转染效率明显高于 25 kDa PEI/DNA 复合物。有趣的是,与 25 kDa PEI 相比,即使血清浓度增加到 30%,TEPA-g-HBP 也具有显著提高的耐血清能力。共聚焦激光图像进一步表明,随着低聚胺-g-HBP 中仲氨基乙撑基数量的增加,YOYO-1 标记的 DNA 进入细胞核的量增加。oligoamines-g-HBP 作为基因传递载体具有很大的应用潜力,可进一步应用于临床。