Hiemstra Christine, Zhong Zhiyuan, Li Liangbin, Dijkstra Pieter J, Feijen Jan
Department of Polymer Chemistry and Biomaterials, Faculty of Science and Technology, Institute for Biomedical Technology, University of Twente, P. O. Box 217, 7500 AE Enschede, The Netherlands.
Biomacromolecules. 2006 Oct;7(10):2790-5. doi: 10.1021/bm060630e.
Eight-arm poly(ethylene glycol)-poly(L-lactide), PEG-(PLLA)(8), and poly(ethylene glycol)-poly(D-lactide), PEG-(PDLA)(8), star block copolymers were synthesized by ring-opening polymerization of either L-lactide or D-lactide at room temperature in the presence of a single-site ethylzinc complex and 8-arm PEG (M(n) = 21.8 x 10(3) or 43.5 x 10(3)) as a catalyst and initiator, respectively. High lactide conversions (>95%) and well-defined copolymers with PLLA or PDLA blocks of the desired molecular weights were obtained. Star block copolymers were water-soluble when the number of lactyl units per poly(lactide) (PLA) block did not exceed 14 and 17 for PEG21800-(PLA)(8) and PEG43500-(PLA)(8), respectively. PEG-(PLA)(8) stereocomplexed hydrogels were prepared by mixing aqueous solutions with equimolar amounts of PEG-(PLLA)(8) and PEG-(PDLA)(8) in a polymer concentration range of 5-25 w/v % for PEG21800-(PLA)(8) star block copolymers and of 6-8 w/v % for PEG43500-(PLA)(8) star block copolymers. The gelation is driven by stereocomplexation of the PLLA and PDLA blocks, as confirmed by wide-angle X-ray scattering experiments. The stereocomplexed hydrogels were stable in a range from 10 to 70 degrees C, depending on their aqueous concentration and the PLA block length. Stereocomplexed hydrogels at 10 w/v % polymer concentration showed larger hydrophilic and hydrophobic domains as compared to 10 w/v % single enantiomer solutions, as determined by cryo-TEM. Correspondingly, dynamic light scattering showed that 1 w/v % solutions containing both PEG-(PLLA)(8) and PEG-(PDLA)(8) have larger "micelles" as compared to 1 w/v % single enantiomer solutions. With increasing polymer concentration and PLLA and PDLA block length, the storage modulus of the stereocomplexed hydrogels increases and the gelation time decreases. Stereocomplexed hydrogels with high storage moduli (up to 14 kPa) could be obtained at 37 degrees C in PBS. These stereocomplexed hydrogels are promising for use in biomedical applications, including drug delivery and tissue engineering, because they are biodegradable and the in-situ formation allows for easy immobilization of drugs and cells.
八臂聚(乙二醇)-聚(L-丙交酯),PEG-(PLLA)(8),以及聚(乙二醇)-聚(D-丙交酯),PEG-(PDLA)(8),星形嵌段共聚物是通过在室温下,以单中心乙基锌配合物和八臂PEG(M(n)=21.8×10(3)或43.5×10(3))分别作为催化剂和引发剂,使L-丙交酯或D-丙交酯进行开环聚合而合成的。获得了高丙交酯转化率(>95%)以及具有所需分子量的、结构明确的含PLLA或PDLA嵌段的共聚物。当聚(丙交酯)(PLA)嵌段中每个丙交酯单元的数量分别对于PEG21800-(PLA)(8)和PEG43500-(PLA)(8)不超过14和17时,星形嵌段共聚物是水溶性的。PEG-(PLA)(8)立体复合水凝胶是通过将等摩尔量的PEG-(PLLA)(8)和PEG-(PDLA)(8)的水溶液在聚合物浓度范围为5 - 25 w/v%(对于PEG21800-(PLA)(8)星形嵌段共聚物)和6 - 8 w/v%(对于PEG43500-(PLA)(8)星形嵌段共聚物)下混合而制备的。如广角X射线散射实验所证实的,凝胶化是由PLLA和PDLA嵌段的立体复合驱动的。立体复合水凝胶在10至70摄氏度的范围内是稳定的,这取决于它们的水溶液浓度和PLA嵌段长度。通过低温透射电子显微镜测定,与10 w/v%的单一对映体溶液相比,聚合物浓度为10 w/v%的立体复合水凝胶显示出更大的亲水和疏水区域。相应地,动态光散射表明,与1 w/v%的单一对映体溶液相比,含有PEG-(PLLA)(8)和PEG-(PDLA)(8)两者的1 w/v%溶液具有更大的“胶束”。随着聚合物浓度以及PLLA和PDLA嵌段长度的增加,立体复合水凝胶的储能模量增加且凝胶化时间减少。在37摄氏度的PBS中可以获得具有高储能模量(高达14 kPa)的立体复合水凝胶。这些立体复合水凝胶在生物医学应用中具有应用前景,包括药物递送和组织工程,因为它们是可生物降解的,并且原位形成允许药物和细胞易于固定。