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In situ Fabrication of Nano ZnO/BCM Biocomposite Based on MA Modified Bacterial Cellulose Membrane for Antibacterial and Wound Healing

机译:基于MA改性细菌纤维素膜的纳米ZnO / BCM生物复合材料的原位制造抗菌和伤口愈合

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Background: Developing an ideal wound dressing that meets the multiple demands of safe and practical, good biocompatibility, superior mechanical property and excellent antibacterial activity is highly desirable for wound healing. Bacterial cellulose (BC) is one of such promising class of biopolymers since it can control wound exudates and can provide moist environment to a wound resulting in better wound healing. However, the lack of antibacterial activity has limited its application. Methods and Results: We prepared a flexible dressing based on a bacterial cellulose membrane and then modified it by chemical crosslinking to prepare in situ synthesis of nZnO/BCM via a facile and eco-friendly approach. Scanning electron microscopy (SEM) results indicated that nZnO/BCM membranes were characterized by an ideal porous structure (pore size: 30~ 90 μm), forming a unique string-beaded morphology. The average water vapor transmission of nZnO/BCM was 2856.60 g/msup2/sup/day, which improved the moist environment of nZnO/BCM. ATR-FITR further confirmed the stepwise deposition of nano-zinc oxide. Tensile testing indicated that our nanocomposites were flexible, comfortable and resilient. Bacterial suspension assay and plate counting methods demonstrated that 5wt. % nZnO/BCM possessed excellent antibacterial activity against S.aureus and E. coli , while MTT assay demonstrated that they had no measurable cytotoxicity toward mammalian cells. Moreover, skin irritation test and histocompatibility examination supported that 5wt. % nZnO/BCM had no stimulation to skin and had acceptable biocompatibility with little infiltration of the inflammatory cells. Finally, by using a bacteria-infected ( S. aureus and E. coli ) murine wound model, we found that nZnO/BCM could prevent in vivo bacterial infections and promote wound healing via accelerating the re-epithelialization and wound contraction, and these membranes had no obvious toxicity toward normal tissues. Conclusion: Therefore, the constructed nZnO/BCM has great potential for biomedical applications as an efficient antibacterial wound dressing.
机译:背景技术:开发符合安全实用,良好的生物相容性,优异的机械性能和优异的抗菌活性的多重需求,非常希望伤口愈合来造成良好的伤口敷料。细菌纤维素(Bc)是这种有前途的生物聚合物类别之一,因为它可以控制伤口渗出物,并且可以向伤口提供湿润的环境,从而导致更好的伤口愈合。然而,缺乏抗菌活性限制了其应用。方法和结果:我们制备了一种基于细菌纤维素膜的柔性敷料,然后通过化学交联通过化学交联来改造它,以通过容易和环保的方法制备NZNO / BCM的原位合成。扫描电子显微镜(SEM)结果表明,NZNO / BCM膜的特征在于理想的多孔结构(孔径:30〜90μm),形成独特的串珠形态。 NZNO / BCM的平均水蒸气透射为2856.60g / m 2 /天,改善了NZNO / BCM的潮湿环境。 ATR-FITR进一步证实了纳米氧化锌的逐步沉积。拉伸检测表明,我们的纳米复合材料是柔性,舒适且有弹性的。细菌悬浮法和板计数方法表明5wt。 %NZNO / BCM具有优异的抗菌活性对抗S.aureus和大肠杆菌,而MTT测定表明它们对哺乳动物细胞没有可测量的细胞毒性。此外,皮肤刺激测试和组织相容性检查支持5wt。 %NZNO / BCM对皮肤没有刺激,并且具有可接受的生物相容性,炎症细胞几乎没有渗透。最后,通过使用细菌感染(金黄色葡萄球菌和大肠杆菌)鼠伤口模型,我们发现NZNO / BCM可以通过加速重新上皮和伤口收缩和这些膜来预防体内细菌感染并促进伤口愈合对正常组织没有明显的毒性。结论:因此,构建的NZNO / BCM对生物医学应用具有巨大潜力,作为一种有效的抗菌伤口敷料。

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