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Distinctive degradation behaviors of electrospun PGA, PLGA and P(LLA-CL) nanofibers cultured with/without cell culture

机译:电纺PGA,PLGA和P(LLA-CL)培养的独特降解行为与/不含细胞培养的纳米纤维

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Biodegradable nanofiber has become a popular candidate as tissue engineering scaffolds due to its biomimic structure as natural extracellular matrix (ECM). Certain tissue regeneration may require prolonged in vitro culture time for cellular reorganization and tissue remodeling. Therefore, long term understanding of cellular effects on scaffold degradation is needed. Although there are some degradation studies on nanofiber, degradation study of nanofibers with cell culture is rare. In our study, polyglycolide (PGA), poly (DL-lactide-co-glycolide) (PLGA), poly(L-lactide-co-ε-caprolactone) [P(LLA-CL)] were electrospun into nanofiber scaffolds. The scaffolds were cultured with porcine smooth muscle cells (PSMC) for up to 3 months to evaluate their degradation behavior and cellular response. The results showed that their degradation rates were in the order of PGAPLGA>P(LLA-CL). PGA nanofiber degraded in 3 weeks and only supported cell growth in the first few days. Cell culture accelerated the surface erosion of PLGA and P(LLA-CL) nanofiber while the bulk degradation remained unaffected. Furthermore, the cell culture did not significantly reduce the mechanical strength of PLGA and P(LLA-CL) during degradation.
机译:可生物降解的纳米纤维成为一种受组织工程支架的受欢迎的候选者,因为其生物结构是天然细胞外基质(ECM)。某些组织再生可能需要长时间的体外培养时间进行细胞重组和组织重塑。因此,需要长期理解对支架降解的细胞效应。虽然对纳米纤维有一些降解研究,但稀有细胞培养的纳米纤维的降解研究是罕见的。在我们的研究中,聚乙酰胺(PGA),聚(DL-Lactide-Co-乙酰化)(PLGA),将聚(L-丙交酯-Co-ε-己内酯)[P(LLA-CL)]静电渗入纳米纤维支架中。支架用猪平滑肌细胞(PSMC)培养,长达3个月以评估其降解行为和细胞反应。结果表明,它们的降解率为PGA PLGA> P(LLA-CL)的顺序。 PGA纳米纤维在3周内降解,并且在前几天中仅支持细胞生长。细胞培养加速了PLGA和P(LLA-CL)纳米纤维的表面腐蚀,而大部分劣化仍未受到影响。此外,细胞培养物在降解期间没有显着降低PLGA和P(LLA-CL)的机械强度。

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