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神经导管技术从实验室到临床治疗外周神经损伤的转化:进展与临床挑战。

Advances and clinical challenges for translating nerve conduit technology from bench to bed side for peripheral nerve repair.

机构信息

Department of Life Sciences, Datt Mediproducts Pvt. Ltd., Roz Ka Meo Industrial Area, District Mewat, Nuh, 122103, District Haryana, India.

出版信息

Cell Tissue Res. 2021 Feb;383(2):617-644. doi: 10.1007/s00441-020-03301-x. Epub 2020 Nov 17.

DOI:10.1007/s00441-020-03301-x
PMID:33201351
Abstract

Injuries to the peripheral nervous system remain a large-scale clinical problem. These injuries often lead to loss of motor and/or sensory function that significantly affects patients' quality of life. The current neurosurgical approach for peripheral nerve repair involves autologous nerve transplantation, which often leads to clinical complications. The most pressing need is to increase the regenerative capacity of existing tubular constructs in the repair of large nerve gaps through development of tissue-engineered approaches that can surpass the performance of autografts. To fully realize the clinical potential of nerve conduit technology, there is a need to reconsider design strategies, biomaterial selection, fabrication techniques and the various potential modifications to optimize a conduit microenvironment that can best mimic the natural process of regeneration. In recent years, a significant progress has been made in the designing and functionality of bioengineered nerve conduits to bridge long peripheral nerve gaps in various animal models. However, translation of this work from lab to commercial scale has not been achieve. The current review summarizes recent advances in the development of tissue engineered nerve guidance conduits (NGCs) with regard to choice of material, novel fabrication methods, surface modifications and regenerative cues such as stem cells and growth factors to improve regeneration performance. Also, the current clinical potential and future perspectives to achieve therapeutic benefits of NGCs will be discussed in context of peripheral nerve regeneration.

摘要

周围神经系统损伤仍然是一个大规模的临床问题。这些损伤常常导致运动和/或感觉功能丧失,严重影响患者的生活质量。目前用于周围神经修复的神经外科方法包括自体神经移植,但这往往会导致临床并发症。最迫切的需要是通过开发组织工程方法来提高现有管状结构在修复大神经间隙时的再生能力,这种方法可以超越自体移植物的性能。为了充分发挥神经导管技术的临床潜力,有必要重新考虑设计策略、生物材料选择、制造技术以及各种潜在的改进,以优化导管微环境,使其能够最好地模拟自然再生过程。近年来,在各种动物模型中设计和功能方面,生物工程神经导管在桥接长距离周围神经间隙方面取得了重大进展。然而,这项工作从实验室到商业规模的转化尚未实现。本综述总结了组织工程神经引导导管(NGC)在材料选择、新型制造方法、表面改性以及干细胞和生长因子等再生线索方面的最新进展,以提高再生性能。此外,还将讨论 NGC 在周围神经再生方面实现治疗效益的当前临床潜力和未来展望。

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