Cui Yanjun, Zhao Xian, Tang Xiaozhen, Luo Yinpei
School of Chemistry and Chemical Technology, Shanghai Jiao Tong University, Shanghai 200240, China.
Biomaterials. 2004 Feb;25(3):451-7. doi: 10.1016/s0142-9612(03)00532-5.
As biodegradable materials, linear polyphosphazenes undergo rapid hydrolysis degradation but exhibit poor mechanical properties. Blending with biodegradable polyesters or inorganic particles strengthen their mechanical properties but give rise to slower degradation rate. To balance the mechanical properties and the degradation rate, micro-crosslinked polyphosphazenes were synthesized in this study. Their glass transition temperatures, mechanical properties, and in vitro degradation behavior were investigated. 2-hydroxyethyl methacrylate (HEMA) was firstly attached to the side chain along with glycine ethyl ester to prepare co-substituted poly(organophosphazene) with pendant ethenyl substituents. The co-substituted poly(organophosphazene) was blended with HEMA or acrylic acid (AA) followed by a free radical polymerization to prepare micro-crosslinked poly(organophosphazenes). The resulting crosslinked polymers showed two separate glass transition temperatures depending on the HEMA or AA feed. Incorporation of crosslinking affected the mechanical properties positively. Crosslinked poly(organophosphazenes) showed an approximately 11-17 fold increase in terms of modulus of elasticity when compared to the linear counterpart. In vitro degradation tests indicated that HEMA-crosslinked polymers hydrolyzed at a retarded rate while AA-crosslinked polymers hydrolyzed at a moderate rate compared to linear polymers.
作为可生物降解材料,线性聚磷腈会经历快速的水解降解,但机械性能较差。与可生物降解聚酯或无机颗粒共混可增强其机械性能,但会导致降解速率变慢。为了平衡机械性能和降解速率,本研究合成了微交联聚磷腈。研究了它们的玻璃化转变温度、机械性能和体外降解行为。首先将甲基丙烯酸2-羟乙酯(HEMA)与甘氨酸乙酯连接到侧链上,制备带有乙烯基取代基侧挂的共取代聚(有机磷腈)。将该共取代聚(有机磷腈)与HEMA或丙烯酸(AA)共混,然后进行自由基聚合反应,制备微交联聚(有机磷腈)。根据HEMA或AA的进料量,所得交联聚合物显示出两个不同的玻璃化转变温度。交联的引入对机械性能有积极影响。与线性聚磷腈相比,交联聚(有机磷腈)的弹性模量提高了约11至17倍。体外降解试验表明,与线性聚合物相比,HEMA交联聚合物的水解速度较慢,而AA交联聚合物的水解速度适中。