神经导管
去细胞化
坐骨神经
同种移植
神经外膜修复
解剖
神经丝
组织工程
周围神经损伤
轴突
三色染色
移植
生物医学工程
医学
病理
外科
免疫组织化学
作者
Kyle A. Alberti,Caleb Neufeld,Jun Wang,Qiaobing Xu
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2016-05-02
卷期号:2 (6): 937-945
被引量:16
标识
DOI:10.1021/acsbiomaterials.6b00034
摘要
There is an urgent need for a peripheral nerve repair product that can match or exceed the abilities of the current "gold-standard", nerve autografts. Using a sectioning-based fabrication technique, decellularized tendon sections formed into tubular conduits that maintain the native structure of the collagen. Our previous studies have demonstrated that these collagen structures provide nanotopographical growth guidance cues for regenerating neurons and support glia. Here, the regenerative abilities of the tendon-derived nerve guidance conduits to repair a critically sized defect (15 mm) are evaluated in a rat sciatic nerve model. Using the conduits, functional recovery occurs at a similar rate to isografts, when evaluated with a sciatic function index test. However, muscular recovery, as measured by gastrocnemius weight, was not as great in the conduit-treated group. Both conduit and isograft repairs are histologically evaluated using Masson's trichrome stain and immunofluorescent staining for neurofilament-160 and S100 (markers for neurons and Schwann cells, respectively). This evaluation shows that by week 14, conduits promote regrowth of both neuronal tissue and some physiological support structures, such as blood vessels and epi/perineurium-like structures. Lastly, positive staining for these two markers at week 14 is calculated as a quantitative means of assessment, and shows greater total content of neurofilament-160 and S100 in conduits than in isografts, but a smaller percent area, which may be a result of the greater cross-sectional area of the conduit.
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