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倒置的人脐动脉作为大鼠坐骨神经再生的 3D 支架。

Inverted human umbilical artery as a 3D scaffold for sciatic nerve regeneration in rats.

机构信息

Institut de la Main Nantes Atlantique, Elsan Santé Atlantique, Saint Herblain, France.

Tissue Bank of France (TBF), 6 rue d'Italie, 69780, Mions, France.

出版信息

Cell Tissue Bank. 2022 Dec;23(4):909-922. doi: 10.1007/s10561-022-10006-8. Epub 2022 May 3.

Abstract

Treatment of peripheral nerve injuries (PNIs) remains a challenge. Interposing a graft delivers better regenerative outcomes. Autografts present major drawbacks which have given rise to the development of alternatives such as artificial scaffolds, some of which are very promising. This study was designed to investigate the potential use of an inverted human umbilical cord artery (iHUA) as a 3D scaffold nerve chamber, for nerve regeneration after transection of the sciatic nerve (SN) in rats. Rats underwent surgical SN transection in their right hindlimb, followed by suture of the device at the resected stumps. Local tolerance, insert biodegradability and nerve reconstruction over time were thoroughly studied by histopathological and morphometric analysis, completed by functional test assessment of sensitivity and motricity recovery. We have demonstrated that nerve reconstruction in the presence of an iHUA insert is effective. The device is well tolerated and highly biodegraded. Although the regenerated nerve is still immature at the end of our study, signs of sensitivity and partial functional recovery were witnessed, confirming our histological findings. Our results support the potential clinical use of iHUA as a 3D scaffold to bridge nerve discontinuity and guide axonal regrowth in selected cases of PNIs.

摘要

周围神经损伤(PNI)的治疗仍然是一个挑战。植入移植物可以带来更好的再生效果。自体移植物存在很大的缺点,这促使人们开发了替代物,如人工支架,其中一些非常有前途。本研究旨在探讨倒置人脐动脉(iHUA)作为 3D 支架神经室在大鼠坐骨神经(SN)横断后神经再生中的潜在用途。大鼠右侧后肢行 SN 横断手术,然后将装置缝合在切除的残端上。通过组织病理学和形态计量学分析,以及感觉和运动功能恢复的功能测试评估,全面研究了局部耐受性、插入物的生物降解性和随时间推移的神经重建。我们已经证明,在存在 iHUA 插入物的情况下进行神经重建是有效的。该装置具有良好的耐受性和高度的生物降解性。尽管在研究结束时再生的神经仍然不成熟,但已经观察到敏感性和部分功能恢复的迹象,这证实了我们的组织学发现。我们的结果支持将 iHUA 作为 3D 支架用于桥接神经连续性和指导特定 PNI 情况下轴突再生的潜在临床应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1243/9675695/ddb3b2724058/10561_2022_10006_Fig1_HTML.jpg

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