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生物反应器中预培养神经生长因子和骨髓基质细胞的纳米纤维神经导管用于周围神经再生。

Nanofibrous Nerve Conduits with Nerve Growth Factors and Bone Marrow Stromal Cells Pre-Cultured in Bioreactors for Peripheral Nerve Regeneration.

机构信息

Department of Biomedical Engineering, Stevens Institute of Technology, Hoboken, New Jersey 07030, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Apr 8;12(14):16168-16177. doi: 10.1021/acsami.0c04191. Epub 2020 Mar 25.

Abstract

Peripheral nerve injury (PNI) was the leading cause of permanent dysfunction in movement and sensation. Synthesized nerve guide conduits (NGCs) with Schwann Cells (SCs) can help peripheral nerve regeneration. However, poor accessibility of SCs and lack of full coverage of seeded cells on NGCs can lead to failure of nerve regeneration across long gaps and full functional recovery. To overcome these limitations, bone marrow stromal cells (BMSCs) and a novel culture method were proposed in the current study. BMSCs were harvested and seeded on a never growth factor (NGF)-loaded PCL nanofibrous NGCs and cultured with a rotary cell culture system (RCCS) before implantation. The NGCs were tested in vitro with PC-12 cells to validate the bioactivity of released NGF and to access its ability to promote neurite extension. Also, the NGCs were tested in vivo with rat sciatic nerve model to exam its potential in bridging the long gap (15 mm segmental defect). The efficacy of the NGCs was investigated based on the results of the functional test, electrophysiology test, muscle atrophy, and histological analysis. The results of in vitro PC-12 cell study confirmed the bioactivity of released NGF and showed a significant increase in the neurite extension with the help of PEG-diamine and BSA. These results showed that the novel loading method could preserve the bioactivity of growth factors and achieve a sustained release in vitro. Besides, the results of the in vivo study exhibited a significant increase with the combination of all additives. These results showed that with the help of NGF and RCCS, the NGCs with the seeded BMSCs could enhance peripheral nerve regeneration across long nerve injury gaps.

摘要

周围神经损伤 (PNI) 是导致运动和感觉功能永久障碍的主要原因。合成的雪旺细胞 (SCs) 神经引导导管 (NGCs) 有助于周围神经再生。然而,SCs 的可及性差和种子细胞在 NGCs 上的不完全覆盖可能导致长间隙的神经再生失败和完全功能恢复。为了克服这些限制,骨髓基质细胞 (BMSCs) 和一种新的培养方法在本研究中被提出。BMSCs 被收获并接种在负载神经生长因子 (NGF) 的 PCL 纳米纤维 NGCs 上,并在植入前用旋转细胞培养系统 (RCCS) 进行培养。在体外,用 PC-12 细胞对 NGCs 进行测试,以验证释放的 NGF 的生物活性,并评估其促进神经突延伸的能力。此外,还在大鼠坐骨神经模型中对 NGCs 进行了体内测试,以检查其在桥接长间隙 (15mm 节段性缺损) 方面的潜力。根据功能测试、电生理学测试、肌肉萎缩和组织学分析的结果,研究了 NGCs 的疗效。体外 PC-12 细胞研究的结果证实了释放的 NGF 的生物活性,并显示在 PEG-二胺和 BSA 的帮助下神经突延伸有显著增加。这些结果表明,新型加载方法可以保持生长因子的生物活性,并在体外实现持续释放。此外,体内研究的结果表明,所有添加剂的组合都有显著增加。这些结果表明,在 NGF 和 RCCS 的帮助下,接种 BMSCs 的 NGCs 可以增强长神经损伤间隙的周围神经再生。

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