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首页> 外文期刊>Chemical engineering journal >Hierarchically multi-functionalized graded membrane with enhanced bone regeneration and self-defensive antibacterial characteristics for guided bone regeneration
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Hierarchically multi-functionalized graded membrane with enhanced bone regeneration and self-defensive antibacterial characteristics for guided bone regeneration

机译:具有增强的骨再生和自我防御抗菌特征的分层多功能的分级膜,用于引导骨再生

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摘要

Functional graded nanofibrous membrane (FGM) are gaining great attention in biomedical fields for the reason that it allows tunning the composition, structure, and bioactivity of each layer. Herein, we reported a novel FGM prepared by sequential electrospinning technique to guide bone tissue regeneration. The FGM consisted of two aligned gelatin nanofiber surface layers to improve the biocompatibility and enhance bone regeneration, and a random PCL nanofiber core layer to render the membrane isotropic mechanical strength. To eliminate bacterial infection risk, the pro-metronidazole (Pro-MNA) with infection-responsive release property was synthesized and loaded into the outer layer. The FGM displayed comparable mechanical strength with PCL, and similar biocompatibility to gelatin. The surface aligned nanofiber structure could regulate epithelial cell spread along the aligned direction, instead of infiltration growth, and were more beneficial for the migration and proliferation of osteoblast. In addition, the loaded Pro-MNA displayed infection-responsive release behavior, and robust self-defensive antibacterial function was achieved. These results suggested that the FGM simultaneously fulfil several criteria of biocompatibility, space maintaining capability, antibacterial property, and osteoconductivity. Consequently, the FGM displayed better bone regeneration performance than the commercial Bio-Gide membrane, evaluated by the skull defect model of rabbit. We concluded that the FGM had potential to be used as an ideal GTRM due to its improved overall performance.
机译:功能性梯度纳米纤维膜(FGM)在生物医学领域中越来越大,因为它允许调整每层的组成,结构和生物活性。这里,我们报道了一种通过顺序静电纺丝技术制备的新型FGM,以引导骨组织再生。 FGM由两个对齐明胶纳米纤维表面层组成,以改善生物相容性和增强骨再生,以及随机PCL纳米纤维芯层,以使膜各向同性机械强度。为了消除细菌感染风险,合成具有感染响应性释放性的Pro-甲胺唑(Pro-MNA)并装入外层。 FGM与PCL显示出相当的机械强度,以及与明胶相似的生物相容性。表面排列的纳米纤维结构可以调节沿着对齐方向的上皮细胞,而不是渗透生长,并且对成骨细胞的迁移和增殖更有利。此外,达到了令人敏感的响应释放行为和稳健的自我防御抗菌功能。这些结果表明,FGM同时满足了若干生物相容性,空间维持能力,抗菌性和骨导电性的标准。因此,FGM显示了由兔子颅骨缺陷模型评估的商业生物基辅膜的更好的骨再生性能。我们得出结论,由于其完善的整体性能,FGM可能被用作理想的GTRM。

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