Wang Yanxiang, Wu Haiwa, Wang Zihao, Zhang Jingjing, Zhu Jing, Ma Yifan, Yang Zhaogang, Yuan Yuan
Engineering Research Center for Biomaterials of Ministry of Education, East China University of Science and Technology, Shanghai 200237, China.
Key Laboratory for Ultrafine Materials of Ministry of Education, East China University of Science and Technology, Shanghai 200237, China.
Polymers (Basel). 2019 Jun 3;11(6):965. doi: 10.3390/polym11060965.
Poly(glycerol sebacate) (PGS), a biodegradable elastomer, has been extensively explored in biomedical applications for its favorable mechanical properties and biocompatibility. Efforts have been made to fabricate multifunctional PGS copolymer in recent years, in particular PGS--PEG (poly(glycerol sebacate)--polyethylene glycol) polymers. However, rare research has been systematically conducted on the effect of reactant ratios on physicochemical properties and biocompatibility of PGS copolymer till now. In this study, a serial of PEGylated PGS (PEGS) with PEG content from 20% to 40% and carboxyl to hydroxyl from 0.67 to 2 were synthesized by thermal curing process. The effects of various PEGS on the mechanical strength and biological activity were further compared and optimized. The results showed that the PEGS elastomers around 20PEGS-1.0C/H and 40PEGS-1.5C/H exhibited the desirable hydrophilicity, degradation behaviors, mechanical properties and cell viability. Subsequently, the potential applications of the 20PEGS-1.0C/H and 40PEGS-1.5C/H in bone repair scaffold and vascular reconstruction were investigated and the results showed that 20PEGS-1.0C/H and 40PEGS-1.5C/H could significantly improve the mechanical strength for the calcium phosphate scaffolds and exhibited preferable molding capability for fabrication of the vascular substitute. These results confirmed that the optimized PEGS elastomers should be promising multifunctional substrates in biomedical applications.
聚癸二酸甘油酯(PGS)是一种可生物降解的弹性体,因其良好的机械性能和生物相容性,在生物医学应用中得到了广泛研究。近年来,人们致力于制备多功能PGS共聚物,特别是PGS-PEG(聚癸二酸甘油酯-聚乙二醇)聚合物。然而,迄今为止,关于反应物比例对PGS共聚物物理化学性质和生物相容性影响的系统性研究较少。在本研究中,通过热固化工艺合成了一系列PEG含量为20%至40%、羧基与羟基比例为0.67至2的聚乙二醇化PGS(PEGS)。进一步比较并优化了各种PEGS对机械强度和生物活性的影响。结果表明,20PEGS-1.0C/H和40PEGS-1.5C/H左右的PEGS弹性体表现出理想的亲水性、降解行为、机械性能和细胞活力。随后,研究了20PEGS-1.0C/H和40PEGS-1.5C/H在骨修复支架和血管重建中的潜在应用,结果表明,20PEGS-1.0C/H和40PEGS-1.5C/H可显著提高磷酸钙支架的机械强度,并在制备血管替代物方面表现出较好的成型能力。这些结果证实,优化后的PEGS弹性体有望成为生物医学应用中有前途的多功能基质。