首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >3D Electrospun scaffolds promote a cytotrophic phenotype of cultured primary astrocytes
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3D Electrospun scaffolds promote a cytotrophic phenotype of cultured primary astrocytes

机译:3D电纺丝支架可促进培养的原代星形胶质细胞的细胞营养表型

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Astrocytes are a target for regenerative neurobiology because in brain injury their phenotype arbitrates brain integrity, neuronal death and subsequent repair and reconstruction. We explored the ability of 3D scaffolds to direct astrocytes into phenotypes with the potential to support neuronal survival. Poly-c-caprolactone scaffolds were electrospun with random and aligned fibre orientations on which murine astrocytes were sub-cultured and analysed at 4 and 12 DIV. Astrocytes survived, proliferated and migrated into scaffolds adopting 3D morphologies, mimicking in vivo stellated phenotypes. Cells on random poly-e-caprolactone scaffolds grew as circular colonies extending processes deep within sub-micron fibres, whereas astrocytes on aligned scaffolds exhibited rectangular colonies with processes following not only the direction of fibre alignment but also penetrating the scaffold. Cell viability was maintained over 12 DIV, and cytochemistry for F-/G-actin showed fewer stress fibres on bioscaffolds relative to 2D astrocytes. Reduced cytoskeletal stress was confirmed by the decreased expression of glial fibrillary acidic protein. PCR demonstrated up-regulation of genes (excitatory amino acid transporter 2, brain-derived neurotrophic factor and anti-oxidant) reflecting healthy biologies of mature astrocytes in our extended culture protocol. This study illustrates the therapeutic potential of bioengineering strategies using 3D electrospun scaffolds which direct astrocytes into phenotypes supporting brain repair.
机译:星形胶质细胞是再生神经生物学的目标,因为在脑损伤中,它们的表型决定了大脑的完整性,神经元的死亡以及随后的修复和重建。我们探讨了3D支架将星形胶质细胞定向为具有支持神经元存活潜力的表型的能力。将聚-c-己内酯支架电纺成具有随机且对齐的纤维方向,在其上继代培养鼠星形胶质细胞并在4和12 DIV下进行分析。星形胶质细胞存活,增殖并迁移到采用3D形态的支架中,类似于体内星状表型。随机聚-ε-己内酯支架上的细胞随着圆形集落的扩展而在亚微米纤维内深处扩展,而对齐支架上的星形胶质细胞则呈现矩形集落,其过程不仅遵循纤维排列的方向,而且还穿透支架。细胞活力维持在12 DIV以上,F- / G-肌动蛋白的细胞化学分析显示,与2D星形胶质细胞相比,生物支架上的应力纤维更少。胶质纤维酸性蛋白表达的降低证实了细胞骨架压力的降低。 PCR证实了基因的上调(兴奋性氨基酸转运蛋白2,脑源性神经营养因子和抗氧化剂)反映了我们扩展培养方案中成熟星形胶质细胞的健康生物学特性。这项研究说明了使用3D电纺丝支架将星状细胞定向到支持脑修复的表型的生物工程策略的治疗潜力。

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