Mao Shirui, Shuai Xintao, Unger Florian, Wittmar Matthias, Xie Xiulan, Kissel Thomas
Department of Pharmaceutics and Biopharmacy, Philipps-University of Marburg, Ketzerbach 63, D-35032 Marburg, Germany.
Biomaterials. 2005 Nov;26(32):6343-56. doi: 10.1016/j.biomaterials.2005.03.036.
PEGylated trimethyl chitosan (TMC) copolymers were synthesized in an attempt to both increase the solubility of chitosan in water, and improve the biocompatibility of TMC. A series of copolymers with different degrees of substitution were obtained by grafting activated poly(ethylene glycol)s (PEG) of different MW onto TMC via primary amino groups. Structure of the copolymers was characterized using 1H, 13C NMR spectroscopy and GPC. Solubility experiments demonstrated that PEG-g-TMC copolymers were completely water-soluble over the entire pH range of 1-14 regardless of the PEG MW, even when the graft density was as low as 10%. Using the methyl tetrazolium (MTT) assay, the effect of TMC molecular weight, PEGylation ratio, PEG and TMC molecular weight in the copolymers, and complexation with insulin on the cytotoxicity of TMC was examined, and IC50 values were calculated with L929 cell line. All polymers exhibited a time- and dose-dependent cytotoxic response that increased with molecular weight. PEGylation can decrease the cytotoxicity of TMC to a great extent in the case of low molecular weight TMCs. According to the cytotoxicity results, PEG 5 kDa is superior for PEGylation when compared to PEG 550 Da at similar graft ratios. Complexation with insulin further increased cell viability. In addition, Lactate dehydrogenase (LDH) assays were performed to quantify the membrane-damaging effects of the copolymers, which is in line with the conclusion drawn from MTT assay. Moreover, the safety of the copolymers was corroborated by observing the morphological change of the cells with inverted phase contrast microscopy. Based upon these results PEG-g-TMC merits further investigations as a drug delivery vehicle.
合成了聚乙二醇化三甲基壳聚糖(TMC)共聚物,旨在提高壳聚糖在水中的溶解度,并改善TMC的生物相容性。通过将不同分子量的活性聚乙二醇(PEG)通过伯氨基接枝到TMC上,获得了一系列具有不同取代度的共聚物。使用1H、13C核磁共振光谱和凝胶渗透色谱对共聚物的结构进行了表征。溶解度实验表明,无论PEG分子量如何,即使接枝密度低至10%,PEG-g-TMC共聚物在1-14的整个pH范围内都完全可溶于水。使用甲基噻唑基四唑(MTT)测定法,研究了TMC分子量、聚乙二醇化率、共聚物中PEG和TMC分子量以及与胰岛素络合对TMC细胞毒性的影响,并用L929细胞系计算了IC50值。所有聚合物均表现出随分子量增加的时间和剂量依赖性细胞毒性反应。在低分子量TMC的情况下,聚乙二醇化可以在很大程度上降低TMC的细胞毒性。根据细胞毒性结果,在相似的接枝率下,与550 Da的PEG相比,5 kDa的PEG在聚乙二醇化方面更具优势。与胰岛素络合进一步提高了细胞活力。此外,进行了乳酸脱氢酶(LDH)测定以量化共聚物的膜损伤作用,这与MTT测定得出的结论一致。此外,通过倒置相差显微镜观察细胞的形态变化,证实了共聚物的安全性。基于这些结果,PEG-g-TMC作为药物递送载体值得进一步研究。