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在氧化细菌纳米纤维素中原位制备神经生长因子包封壳聚糖纳米颗粒用于大鼠坐骨神经再生。

In Situ Fabrication of Nerve Growth Factor Encapsulated Chitosan Nanoparticles in Oxidized Bacterial Nanocellulose for Rat Sciatic Nerve Regeneration.

机构信息

College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, No. 2999 North Ren Min Road, Shanghai, 201620, China.

Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, Donghua University, Shanghai 201620, China.

出版信息

Biomacromolecules. 2021 Dec 13;22(12):4988-4999. doi: 10.1021/acs.biomac.1c00947. Epub 2021 Nov 1.

Abstract

Autograft is currently the gold standard in the clinical treatment of peripheral nerve injury (PNI), which, however, is limited by the availability of a donor nerve and secondary injuries. Nerve guidance conduits (NGC) provide a suitable microenvironment to promote the regeneration of injured nerves, which could be the substitutes for autografts. In this study, nerve growth factor (NGF) encapsulated chitosan nanoparticles (CSNPs) were first constructed in situ in an oxidized bacterial cellulose (OBC) conduit using the ion gel method after the introduction of a CS/NGF solution under pressure to enable a sustainable release of NGF. A novel NGF@CSNPs/OBC nanocomposite with antibacterial activity, biodegradability, and porous microstructure was successfully developed. In vitro experiments showed that the nanocomposite promoted the adhesion and proliferation of Schwann cells. When the nanocomposite was applied as NGC to repair the sciatic nerve defect of rats, a successful repair of the 10 mm nerve defect was observed after 4 weeks. At week 9, the diameter, morphology, histology, and functional recovery of the regenerated nerve was comparable to the autografts, indicating that the NGC effectively promoted the regeneration and function recovery of the nerve. In summary, the NGF@CSNPs/OBC as a novel NGC provides great potential in the treatment of PNI.

摘要

自体移植物目前是治疗周围神经损伤(PNI)的金标准,但它受到供体神经的可用性和继发性损伤的限制。神经引导导管(NGC)为受伤神经的再生提供了合适的微环境,可以作为自体移植物的替代品。在这项研究中,首先通过离子凝胶法在氧化细菌纤维素(OBC)导管中原位构建了壳聚糖纳米颗粒(CSNPs)包封的神经生长因子(NGF),在加压下引入 CS/NGF 溶液后,实现了 NGF 的可持续释放。成功开发了具有抗菌活性、可生物降解性和多孔微观结构的新型 NGF@CSNPs/OBC 纳米复合材料。体外实验表明,该纳米复合材料促进了施万细胞的黏附和增殖。当将纳米复合材料用作 NGC 修复大鼠坐骨神经缺损时,在 4 周后观察到 10mm 神经缺损的成功修复。在第 9 周,再生神经的直径、形态、组织学和功能恢复与自体移植物相当,表明 NGC 有效促进了神经的再生和功能恢复。综上所述,NGF@CSNPs/OBC 作为一种新型 NGC,在治疗 PNI 方面具有巨大的潜力。

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