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利用原位动态培养快速生物制造用于抗菌伤口敷料的壳聚糖/细菌纳米纤维素织物增强复合材料。

Using In situ Dynamic Cultures to Rapidly Biofabricate Fabric-Reinforced Composites of Chitosan/Bacterial Nanocellulose for Antibacterial Wound Dressings.

作者信息

Zhang Peng, Chen Lin, Zhang Qingsong, Hong Feng F

机构信息

Group of Microbiological Engineering and Industrial Biotechnology, College of Chemistry, Chemical Engineering and Biotechnology, Donghua University Shanghai, China.

Group of Microbiological Engineering and Industrial Biotechnology, College of Chemistry, Chemical Engineering and Biotechnology, Donghua UniversityShanghai, China; Key Laboratory of High Performance Fibers and Products, Ministry of Education, Donghua UniversityShanghai, China.

出版信息

Front Microbiol. 2016 Mar 4;7:260. doi: 10.3389/fmicb.2016.00260. eCollection 2016.

Abstract

Bacterial nano-cellulose (BNC) is considered to possess incredible potential in biomedical applications due to its innate unrivaled nano-fibrillar structure and versatile properties. However, its use is largely restricted by inefficient production and by insufficient strength when it is in a highly swollen state. In this study, a fabric skeleton reinforced chitosan (CS)/BNC hydrogel with high mechanical reliability and antibacterial activity was fabricated by using an efficient dynamic culture that could reserve the nano-fibrillar structure. By adding CS in culture media to 0.25-0.75% (w/v) during bacterial cultivation, the CS/BNC composite hydrogel was biosynthesized in situ on a rotating drum composed of fabrics. With the proposed method, BNC biosynthesis became less sensitive to the adverse antibacterial effects of CS and the production time of the composite hydrogel with desirable thickness could be halved from 10 to 5 days as compared to the conventional static cultures. Although, its concentration was low in the medium, CS accounted for more than 38% of the CS/BNC dry weight. FE-SEM observation confirmed conservation of the nano-fibrillar networks and covering of CS on BNC. ATR-FTIR showed a decrease in the degree of intra-molecular hydrogen bonding and water absorption capacity was improved after compositing with CS. The fabric-reinforced CS/BNC composite exhibited bacteriostatic properties against Escherichia coli and Staphylococcus aureus and significantly improved mechanical properties as compared to the BNC sheets from static culture. In summary, the fabric-reinforced CS/BNC composite constitutes a desired candidate for advanced wound dressings. From another perspective, coating of BNC or CS/BNC could upgrade the conventional wound dressings made of cotton gauze to reduce pain during wound healing, especially for burn patients.

摘要

细菌纳米纤维素(BNC)因其固有的无与伦比的纳米纤维结构和多功能特性,在生物医学应用中被认为具有巨大潜力。然而,其应用在很大程度上受到生产效率低下以及处于高度肿胀状态时强度不足的限制。在本研究中,通过一种能够保留纳米纤维结构的高效动态培养方法,制备了具有高机械可靠性和抗菌活性的织物骨架增强壳聚糖(CS)/BNC水凝胶。在细菌培养过程中,通过将培养基中的CS添加至0.25 - 0.75%(w/v),CS/BNC复合水凝胶在由织物组成的转鼓上原位生物合成。采用该方法,BNC生物合成对CS的不利抗菌作用变得不那么敏感,与传统静态培养相比,具有理想厚度的复合水凝胶的生产时间可从10天减半至5天。尽管培养基中CS的浓度较低,但CS在CS/BNC干重中占比超过38%。场发射扫描电子显微镜(FE-SEM)观察证实了纳米纤维网络得以保留,且CS覆盖在BNC上。衰减全反射傅里叶变换红外光谱(ATR-FTIR)显示分子内氢键程度降低,与CS复合后吸水能力得到提高。与静态培养的BNC片材相比,织物增强的CS/BNC复合材料对大肠杆菌和金黄色葡萄球菌具有抑菌性能,且机械性能显著提高。总之,织物增强的CS/BNC复合材料是先进伤口敷料的理想候选材料。从另一个角度来看,BNC或CS/BNC涂层可以升级由棉纱布制成的传统伤口敷料,以减轻伤口愈合过程中的疼痛,尤其是对于烧伤患者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef0a/4777949/406f62f9f375/fmicb-07-00260-g0001.jpg

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