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Novel use of biodegradable casein conduits for guided peripheral nerve regeneration

机译:可生物降解酪蛋白导管在引导性周围神经再生中的新用途

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摘要

Recent advances in nerve repair technology have focused on finding more biocompatible, non-toxic materials to imitate natural peripheral nerve components. In this study, casein protein cross-linked with naturally occurring genipin (genipin-cross-linked casein (GCC)) was used for the first time to make a biodegradable conduit for peripheral nerve repair. The GCC conduit was dark blue in appearance with a concentric and round lumen. Water uptake, contact angle and mechanical tests indicated that the conduit had a high stability in water and did not collapse and cramped with a sufficiently high level of mechanical properties. Cytotoxic testing and terminal deoxynucleotidyl transferase dUTP nick-end labelling assay showed that the GCC was non-toxic and non-apoptotic, which could maintain the survival and outgrowth of Schwann cells. Non-invasive real-time nuclear factor-κB bioluminescence imaging accompanied by histochemical assessment showed that the GCC was highly biocompatible after subcutaneous implantation in transgenic mice. Effectiveness of the GCC conduit as a guidance channel was examined as it was used to repair a 10 mm gap in the rat sciatic nerve. Electrophysiology, labelling of calcitonin gene-related peptide in the lumbar spinal cord, and histology analysis all showed a rapid morphological and functional recovery for the disrupted nerves. Therefore, we conclude that the GCC can offer great nerve regeneration characteristics and can be a promising material for the successful repair of peripheral nerve defects.
机译:神经修复技术的最新进展集中在寻找更具生物相容性,无毒的材料来模仿自然的周围神经成分。在这项研究中,酪蛋白蛋白质与天然存在的Genipin交联(Genipin交联的酪蛋白(GCC))首次用于制造可生物降解的周围神经修复导管。 GCC导管外观为深蓝色,具有同心圆管腔。吸水率,接触角和机械测试表明,该导管在水中具有很高的稳定性,并且不会塌陷并具有足够高的机械性能。细胞毒性试验和末端脱氧核苷酸转移酶dUTP缺口末端标记试验表明,GCC无毒,无凋亡,可以维持雪旺细胞的存活和生长。无创实时核因子-κB生物发光成像和组织化学评估表明,皮下植入转基因小鼠后,GCC具有高度的生物相容性。由于将GCC导管用于修复大鼠坐骨神经中的10 mm间隙,因此对其进行了检查。电生理学,腰脊髓降钙素基因相关肽的标记以及组织学分析均显示神经受到破坏后形态和功能得以迅速恢复。因此,我们得出的结论是,GCC可以提供出色的神经再生特性,并且可以成为成功修复周围神经缺损的有前途的材料。

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