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首页> 外文期刊>ACS applied materials & interfaces >Construction of Biofunctionalized Anisotropic Hydrogel Micropatterns and Their Effect on Schwann Cell Behavior in Peripheral Nerve Regeneration
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Construction of Biofunctionalized Anisotropic Hydrogel Micropatterns and Their Effect on Schwann Cell Behavior in Peripheral Nerve Regeneration

机译:生物官能化各向异性水凝胶微图案的构建及其对周围神经再生中施万细胞行为的影响

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Hydrogels have promising application in tissue regeneration due to their excellent physicochemical and biocompatible properties, whereas anisotropic micropatterns are been proven to directionally induce cell alignment and accelerate cell migration. However, an effect of biofunctionalized anisotropic hydrogel micropatterns on nerve regeneration has rarely been reported. In this study, the anisotropic polyacrylamide (PAM) hydrogel micropatterns with aligned ridge/ groove structures were first prepared via in situ free radical polymerization and micromolding, and then biofunctionalized using YIGSR peptide for better promoting cell growth. The morphology, swelling ratio, wettability, mechanical properties, and stability of the prepared hydrogel were characterized. The successful immobilization of YIGSR peptide on the PAM hydrogel was monitored using FTIR, immunofluorescence staining, and ELISA. The effects on adhesion, directional growth, and biological function of Schwann cells were evaluated. The results displayed that the anisotropic PAM hydrogel micropatterns with inner porous structure possessed good stability, swelling, and mechanical properties. The YIGSR peptide could be well immobilized on hydrogel micropatterns with a percentage of 62.6%. The biofunctionalized anisotropic hydrogel micropatterns could effectively regulate the orientation growth of Schwann cells, and obviously up-regulate BDNF (40%) and beta-actin (50%) expression compared with single hydrogel micropatterns, without negatively affecting the normal secretion of neurotropic factors by Schwann cells. To the best of our knowledge, this is the first time to study the construction and effect of biofunctionalized anisotropic hydrogel micropatterns on nerve regeneration, which may provide an experimental and theoretical basis for the design and development of artificial implants for nerve regeneration application.
机译:由于其优异的物理化学和生物相容性,水凝胶具有有希望的组织再生应用,而各向异性微图案被证明是方向诱导细胞对准并加速细胞迁移。然而,已经报道了生物官能化各向异性水凝胶微型器对神经再生的影响。在该研究中,首先通过原位自由基聚合和微胶体制备具有对准脊/槽结构的各向异性聚丙烯酰胺(PAM)水凝胶微图案,然后使用Yigsr肽生物官能化,以更好地促进细胞生长。表征了制备水凝胶的形态,溶胀比,润湿性,机械性能和稳定性。使用FTIR,免疫荧光染色和ELISA监测MAM水凝胶上的yigsr肽的成功固定。评估了对施万细胞的粘附,定向生长和生物学功能的影响。结果显示,具有内部多孔结构的各向异性PAM水凝胶微图案具有良好的稳定性,溶胀和机械性能。百分比肽可以良好地固定在水凝胶微图中,百分比为62.6%。生物官能化各向异性水凝胶微图案可以有效地调节施曼细胞的取向生长,与单个水凝胶微图案相比,明显上调的BDNF(40%)和β-肌动蛋白(50%)表达,而不会产生伴随的神经熵因素的正常分泌施万细胞。据我们所知,这是第一次研究生物官能化各向异性水凝胶MicroPatterns对神经再生的结构和效果,这可以为神经再生应用的人工植入物的设计和发展提供实验和理论依据。

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