Li Feng, Li Suming, Ghzaoui Abdelsalm El, Nouailhas Helene, Zhuo Renxi
Centre de Recherche sur les biopolymères Artificiels, Faculté de Pharmachie, University Montpellier I, 34060 Montpellier, France.
Langmuir. 2007 Feb 27;23(5):2778-83. doi: 10.1021/la0629025. Epub 2007 Jan 23.
Ring-opening polymerization of D,L-lactide was carried out in the presence of monohydroxylated poly(ethylene glycol) (PEG) with Mn of 2000 and 5000, using zinc powder as catalyst. The resulting PEG-b-polylactide (PEG-PLA) diblocks with various ethylene oxide/lactyl (EO/LA) ratios were coupled with adipoyl chloride to yield PEG-PLA-PEG triblock copolymers. N-Dimethylaminopyridine (DMAP) was used as catalyst. The obtained PEG-PLA-PEG triblock copolymers were characterized by various analytical techniques such as IR, 1H NMR, size exclusion chromatography, X-ray diffraction, and differential scanning calorimetry. Data showed that all the copolymers were semicrystalline with the PEG-type crystalline structure, the crystallinity decreasing with increasing PLA block length. Bioresorbable hydrogels were prepared from the water-soluble triblock copolymers. Rheological measurements showed a gel-sol transition with increasing temperature and gelation was found to be thermoreversible. The copolymer solution behaves like a viscoelastic liquid above the gel point and like a viscoelastic solid below the gel point. The critical gelation concentration, the gel-sol transition temperature at a given concentration, and corresponding moduli depend on both the EO/LA ratio and the molecular weight of the copolymers. It is assumed that gelation results from interactions between PEG blocks at low temperatures and that these interactions are disrupted as the temperature is elevated. The shrinking of PEG blocks with increasing temperature seems to be in agreement with the variation of the gel-sol transition temperatures.
在分子量为2000和5000的单羟基聚乙二醇(PEG)存在下,以锌粉为催化剂进行D,L-丙交酯的开环聚合反应。将得到的具有不同环氧乙烷/丙交酯(EO/LA)比率的PEG-b-聚丙交酯(PEG-PLA)二嵌段与己二酰氯偶联,得到PEG-PLA-PEG三嵌段共聚物。使用N-二甲基氨基吡啶(DMAP)作为催化剂。通过红外光谱(IR)、核磁共振氢谱(1H NMR)、尺寸排阻色谱法、X射线衍射和差示扫描量热法等多种分析技术对所得的PEG-PLA-PEG三嵌段共聚物进行表征。数据表明,所有共聚物均为具有PEG型晶体结构的半结晶聚合物,结晶度随PLA嵌段长度的增加而降低。由水溶性三嵌段共聚物制备了生物可吸收水凝胶。流变学测量表明,随着温度升高出现凝胶-溶胶转变,并且发现凝胶化是热可逆的。共聚物溶液在凝胶点以上表现为粘弹性液体,在凝胶点以下表现为粘弹性固体。临界凝胶化浓度、给定浓度下的凝胶-溶胶转变温度以及相应的模量取决于EO/LA比率和共聚物的分子量。据推测,凝胶化是由于低温下PEG嵌段之间的相互作用引起的,并且随着温度升高这些相互作用被破坏。PEG嵌段随温度升高而收缩似乎与凝胶-溶胶转变温度的变化一致。