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首页> 外文期刊>Toxicology and Applied Pharmacology >In vitro assessment of TAT - Ciliary Neurotrophic Factor therapeutic potential for peripheral nerve regeneration
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In vitro assessment of TAT - Ciliary Neurotrophic Factor therapeutic potential for peripheral nerve regeneration

机译:TAT-睫状神经营养因子对周围神经再生的治疗潜力的体外评估

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摘要

In regenerative neurobiology, Ciliary Neurotrophic Factor (CNTF) is raising high interest as a multifunctional neurocytoldne, playing a key role in the regeneration of injured peripheral nerves. Despite its promising trophic and regulatory activity, its clinical application is limited by the onset of severe side effects, due to the lack of efficient intracellular trafficking after administration. In this study, recombinant CNTF linked to the transactivator transduction domain (TAT) was investigated in vitro and found to be an optimized fusion protein which preserves neurotrophic activity, besides enhancing cellular uptake for therapeutic advantage. Moreover, a compelling protein delivery method was defined, in the future perspective of improving nerve regeneration strategies. Following determination of TAT-CNTF molecular weight and concentration, its specific effect on neural SHSY5Y and PC12 cultures was assessed. Cell proliferation assay demonstrated that the fusion protein triggers PC12 cell growth within 6 h of stimulation. At the same time, the activation of signal transduction pathway and enhancement of cellular trafficking were found to be accomplished in both neural cell lines after specific treatment with TAT-CNTF. Finally, the recombinant growth factor was successfully loaded on oxidized polyvinyl alcohol (PVA) scaffolds, and more efficiently released when polymer oxidation rate increased.
机译:在再生神经生物学中,睫状神经营养因子(CNTF)作为多功能神经细胞因子受到了广泛的关注,在受伤的周围神经再生中起关键作用。尽管其有希望的营养和调节活性,但由于给药后缺乏有效的细胞内运输,其临床应用受到严重副作用的限制。在这项研究中,对与反式激活子转导结构域(TAT)连接的重组CNTF进行了体外研究,发现该重组CNTF是一种优化的融合蛋白,除了可以提高细胞摄取的治疗优势之外,还可以保留神经营养活性。此外,在改善神经再生策略的未来观点中,定义了一种引人注目的蛋白质递送方法。确定TAT-CNTF的分子量和浓度后,评估了其对神经SHSY5Y和PC12培养物的特异性作用。细胞增殖测定表明融合蛋白在刺激后6小时内触发PC12细胞生长。同时,在用TAT-CNTF进行特殊处理后,发现在两种神经细胞系中都完成了信号传导途径的激活和细胞运输的增强。最终,重组生长因子成功加载到氧化聚乙烯醇(PVA)支架上,并在聚合物氧化速率增加时更有效地释放。

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