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Genomic and morphological changes of neuroblastoma cells in response to three-dimensional matrices.

机译:响应三维矩阵的神经母细胞瘤细胞的基因组和形态变化。

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Advances in neural tissue engineering require a comprehensive understanding of neuronal growth in 3 dimensions. This study compared the gene expression of SH-SY5Y human neuroblastoma cells cultured in 3-dimensional (3D) with those cultured in 2-dimensional (2D) environments. Microarray analysis demonstrated that, in response to varying matrix geometry, SH-SY5Y cells exhibited differential expression of 1,766 genes in collagen I, including those relevant to cytoskeleton, extracellular matrix, and neurite outgrowth. Cells extended longer neurites in 3D collagen I cultures than in 2D. Real-time reverse transcriptase polymerase chain reaction experiments and morphological analysis comparing collagen I and Matrigel tested whether the differential growth and gene expression reflected influences of culture dimension or culture material. SH-SY5Y neuroblastoma cells responded to geometry by differentially regulating cell spreading and genes associated with actin in similar patterns for both materials; however, neurite outgrowth and the expression of the gene encoding for neurofilament varied with the type of material. Electron microscopy and mechanical analysis showed that collagen I was more fibrillar than Matrigel, with larger inter-fiber distance and higher stiffness. Taken together, these results suggest complex cell-material interactions, in which the dimension of the culture material influences gene expression and cell spreading and the structural and mechanical properties of the culture material influence gene expression and neurite outgrowth.
机译:神经组织工程学的进步要求对3个方面的神经元生长有全面的了解。这项研究比较了在3维(3D)中培养的SH-SY5Y人神经母细胞瘤细胞与在2维(2D)环境中培养的人神经母细胞瘤细胞的基因表达。微阵列分析表明,响应于变化的基质几何形状,SH-SY5Y细胞在胶原I中表现出1,766个基因的差异表达,包括与细胞骨架,细胞外基质和神经突生长相关的基因。在3D胶原蛋白I培养物中,细胞延伸的神经突比在2D中长。实时逆转录酶聚合酶链反应实验以及比较胶原蛋白I和Matrigel的形态学分析测试了差异生长和基因表达是否反映了培养物尺寸或培养物的影响。 SH-SY5Y神经母细胞瘤细胞通过差异调节两种物质的细胞扩散和与肌动蛋白相关的基因来响应几何形状。然而,神经突生长和编码神经丝的基因的表达随材料的类型而变化。电子显微镜和力学分析表明,胶原蛋白I比Matrigel更具纤维状,纤维间距离更大,硬度更高。综上所述,这些结果表明复杂的细胞-材料相互作用,其中培养材料的尺寸影响基因表达和细胞扩散,并且培养材料的结构和机械性质影响基因表达和神经突生长。

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