University of Washington, Department of Bioengineering, Seattle, Washington 98195, USA.
J Biomed Mater Res A. 2013 Mar;101(3):775-86. doi: 10.1002/jbm.a.34380. Epub 2012 Sep 8.
Biodegradable poly(N-isopropyl acrylamide) (polyNIPAM) hydrogels with controlled molecular weight of the parent polymer and its degradation products were synthesized by atom transfer radical polymerization in the presence of a polycaprolactone-based di-chlorinated macroinitiator and polycaprolactone dimethacrylate. The phase transition temperature, swelling, hydrolytic degradability, and mechanical properties at 25 and 37°C were explored. A cytocompatibility study showed good NIH3T3 cell response over 5 days culture on the surface of the hydrogels, demonstrated by a consistent increase in cell proliferation detected by an Alamar Blue assay. MTT [3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide] results suggested that the hydrogels and their degradation products in the concentration range of 1-25 mg/mL were not cytotoxic to NIH3T3 cells. A sphere-templating technique was utilized to fabricate biodegradable polyNIPAM scaffolds with monodisperse, pore size. Scaffolds with pore diameter of 48 ± 6 μm were loaded with A-10 smooth muscle cells and then warmed to 37°C entrapping cells in pores approximately 40 μm in diameter, a size we have found to be optimal for angiogenesis and biointegration. Due to their degradable nature, tunable molecular weight, highly interconnected morphology, thermally controlled monodisperse pore size, and temperature-induced volume expansion-contraction, the polyNIPAM-based scaffolds developed in this work will be valuable in tissue engineering.
通过原子转移自由基聚合在聚己内酯基二氯代大分子引发剂和聚己内酯二甲基丙烯酸酯的存在下合成了具有受控分子量的双亲聚合物及其降解产物的可生物降解的聚 N-异丙基丙烯酰胺(polyNIPAM)水凝胶。研究了 25°C 和 37°C 时的相转变温度、溶胀、水解降解性和机械性能。细胞相容性研究表明,在水凝胶表面培养 5 天,NIH3T3 细胞的反应良好,通过 Alamar Blue 测定法检测到细胞增殖持续增加。MTT[3-(4,5-二甲基噻唑-2-基)-2,5-二苯基四氮唑溴盐]结果表明,水凝胶及其降解产物在 1-25mg/mL 的浓度范围内对 NIH3T3 细胞没有细胞毒性。利用球模板技术制备了具有单分散性、孔径的可生物降解的 polyNIPAM 支架。孔径为 48±6μm 的支架中装载了 A-10 平滑肌细胞,然后加热至 37°C 将细胞困在直径约 40μm 的孔中,我们发现该大小有利于血管生成和生物整合。由于其可降解性、可调分子量、高度互联的形态、热控单分散孔径和温度诱导的体积膨胀-收缩,本工作中开发的基于 polyNIPAM 的支架将在组织工程中具有重要价值。