Guo Kai, Chu Chih-Chang
Fiber and Polymer Science Program, Department of Fiber Science and Apparel Design, and Biomedical Engineering Program, Cornell University, Ithaca, NY 14853-4401, USA.
Biomaterials. 2007 Aug;28(22):3284-94. doi: 10.1016/j.biomaterials.2007.03.031. Epub 2007 Apr 6.
The biodegradability of both unsaturated (UPEA) and saturated (SPEA) poly(ester-amide)s and a series of hydrogels (UPEA-G) fabricated from UPEA and poly(ethylene glycol) diacrylate (PEG-DA) was examined as a function of PEA chemical structures in both phosphate buffered saline (PBS) and alpha-chymotrypsin solutions. Based on the weight loss data, alpha-chymotrypsin had a much more profound effect on the hydrolyses of UPEA, SPEA polymers (up to 32% weight loss on day 1 for FPBe) and UPEA-G hydrogels (up to 32% weight loss on day 31 for FPBe-G28) than a PBS buffer (less than 10% for polymers and 16% for hydrogels). The changes in elastic moduli and the interior morphology of the hydrogels in both PBS buffer and alpha-chymotrypsin solutions were also monitored for 2 months, and the hydrogels' crosslinking density (n(e)) and molecular weight between crosslinks (M(c)) before and after biodegradation were then examined as a function of biodegradation time, enzyme concentration, and different chemical structure of precursors. The differences in biodegradation rates among PEA polymer and UPEA-G hydrogels are ascribed to differences in hydrophilicity and saturated or unsaturated structure of the polymers and hydrogel precursors. Our results showed that, by changing the concentration of alpha-chymotrypsin, the type of UPEA precursors and their feed ratio, the UPEA-G hydrogels could have controllable biodegradability, which is quite desirable for a wide range of biomedical and pharmaceutical applications.
研究了不饱和(UPEA)和饱和(SPEA)聚(酯 - 酰胺)以及由UPEA和聚(乙二醇)二丙烯酸酯(PEG - DA)制备的一系列水凝胶(UPEA - G)在磷酸盐缓冲盐水(PBS)和α - 胰凝乳蛋白酶溶液中的生物降解性,该生物降解性是PEA化学结构的函数。基于失重数据,与PBS缓冲液(聚合物失重小于10%,水凝胶失重16%)相比,α - 胰凝乳蛋白酶对UPEA、SPEA聚合物(FPBe在第1天失重高达32%)和UPEA - G水凝胶(FPBe - G28在第31天失重高达32%)的水解作用更为显著。还监测了PBS缓冲液和α - 胰凝乳蛋白酶溶液中2个月内水凝胶弹性模量和内部形态的变化,然后研究了生物降解前后水凝胶的交联密度(n(e))和交联点间分子量(M(c))随生物降解时间、酶浓度和前体不同化学结构的变化情况。PEA聚合物和UPEA - G水凝胶生物降解速率的差异归因于聚合物和水凝胶前体的亲水性以及饱和或不饱和结构的差异。我们的结果表明,通过改变α - 胰凝乳蛋白酶的浓度、UPEA前体的类型及其进料比,UPEA - G水凝胶可具有可控的生物降解性,这对于广泛的生物医学和制药应用来说是非常理想的。