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神经组织工程:从生物活性支架与原位监测到再生

Neural tissue engineering: From bioactive scaffolds and in situ monitoring to regeneration.

作者信息

Gong Bowen, Zhang Xindan, Zahrani Ahmed Al, Gao Wenwen, Ma Guolin, Zhang Liqun, Xue Jiajia

机构信息

Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology Beijing China.

State Key Laboratory of Organic-Inorganic Composites Beijing University of Chemical Technology Beijing China.

出版信息

Exploration (Beijing). 2022 Apr 16;2(3):20210035. doi: 10.1002/EXP.20210035. eCollection 2022 Jun.

Abstract

Peripheral nerve injury is a large-scale problem that annually affects more than several millions of people all over the world. It remains a great challenge to effectively repair nerve defects. Tissue engineered nerve guidance conduits (NGCs) provide a promising platform for peripheral nerve repair through the integration of bioactive scaffolds, biological effectors, and cellular components. Herein, we firstly describe the pathogenesis of peripheral nerve injuries at different orders of severity to clarify their microenvironments and discuss the clinical treatment methods and challenges. Then, we discuss the recent progress on the design and construction of NGCs in combination with biological effectors and cellular components for nerve repair. Afterward, we give perspectives on imaging the nerve and/or the conduit to allow for the in situ monitoring of the nerve regeneration process. We also cover the applications of different postoperative intervention treatments, such as electric field, magnetic field, light, and ultrasound, to the well-designed conduit and/or the nerve for improving the repair efficacy. Finally, we explore the prospects of multifunctional platforms to promote the repair of peripheral nerve injury.

摘要

周围神经损伤是一个大规模问题,每年影响全球数百万人。有效修复神经缺损仍然是一个巨大的挑战。组织工程神经引导导管(NGCs)通过整合生物活性支架、生物效应物和细胞成分,为周围神经修复提供了一个有前景的平台。在此,我们首先描述不同严重程度的周围神经损伤的发病机制,以阐明其微环境,并讨论临床治疗方法和挑战。然后,我们讨论结合生物效应物和细胞成分用于神经修复的NGCs设计与构建的最新进展。之后,我们展望对神经和/或导管进行成像以实现神经再生过程原位监测的前景。我们还涵盖了不同术后干预治疗(如电场、磁场、光和超声)对精心设计的导管和/或神经的应用,以提高修复效果。最后,我们探索多功能平台促进周围神经损伤修复的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/abf7/10190951/6bedc7fc84eb/EXP2-2-20210035-g005.jpg

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