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首页> 外文期刊>Journal of tissue engineering and regenerative medicine >Development of a morphogenetically active scaffold for three-dimensional growth of bone cells: biosilica-alginate hydrogel for SaOS-2 cell cultivation
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Development of a morphogenetically active scaffold for three-dimensional growth of bone cells: biosilica-alginate hydrogel for SaOS-2 cell cultivation

机译:用于骨细胞三维生长的形态发生活性支架的开发:用于SaOS-2细胞培养的生物硅藻酸盐水凝胶

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Polymeric silica is formed from ortho-silicate during a sol-gel formation process, while biosilica is the product of an enzymatically driven bio-polycondensation reaction. Both polymers have recently been described as a template that induces an increased expression of the genes encoding bone morphogenetic protein 2 (BMP-2) and osteoprotegerin in osteoblast-related SaOS-2 cells; simultaneously or subsequently the cells respond with enhanced hydroxyapatite formation. In order to assess whether the biocompatible polymeric silica/biosilica can serve as a morphogenetically active matrix suitable for three-dimensional (3D) cell growth, or even for 3D cell bioprinting, SaOS-2 cells were embedded into a Na-alginate-based hydrogel. Four different gelatinous hydrogel matrices were used for suspending SaOS-2 cells: (a) the hydrogel alone; (b) the hydrogel with 400 mortho-silicate; (c) the hydrogel supplemented with 400 mortho-silicate and recombinant silicatein to allow biosilica synthesis to occur; and (d) the hydrogel with ortho-silicate and BSA. The SaOS-2 cells showed an increased growth if silica/biosilica components were present in the hydrogel. Likewise intensified was the formation of hydroxyapatite nodules in the silica-containing hydrogels. After an incubation period of 2 weeks, cells present in silica-containing hydrogels showed a significantly higher expression of the genes encoding the cytokine BMP-2, the major fibrillar structural protein collagen 1 and likewise of carbonic anhydrase. It is concluded that silica, and to a larger extent biosilica, retains its morphogenetic/osteogenic potential after addition to Na-alginate-based hydrogels. This property might qualify silica hydrogels to be also used as a matrix for 3D cell printing. Copyright (C) 2013 John Wiley & Sons, Ltd.
机译:聚合二氧化硅是在溶胶-凝胶形成过程中由原硅酸盐形成的,而生物二氧化硅是酶促驱动的生物缩聚反应的产物。最近,这两种聚合物都被描述为在成骨细胞相关的SaOS-2细胞中诱导编码骨形态发生蛋白2(BMP-2)和骨保护素的基因表达增加的模板。同时或随后细胞响应增强的羟基磷灰石形成。为了评估生物相容性聚合二氧化硅/生物二氧化硅是否可以充当适合三维(3D)细胞生长甚至适合3D细胞生物打印的形态发生活性基质,将SaOS-2细胞嵌入基于Na-藻酸盐的水凝胶中。四种不同的凝胶状水凝胶基质用于悬浮SaOS-2细胞:(a)单独的水凝胶; (b)水凝胶中含有400份甲基硅酸盐; (c)补充了400份甲基硅酸盐和重组硅酸盐的水凝胶,以使生物二氧化硅合成发生; (d)具有原硅酸盐和BSA的水凝胶。如果水凝胶中存在二氧化硅/生物二氧化硅成分,则SaOS-2细胞显示出增加的生长。在含二氧化硅的水凝胶中羟基磷灰石结核的形成也同样加剧。经过2周的潜伏期,含二氧化硅的水凝胶中存在的细胞显示出编码细胞因子BMP-2,主要原纤维结构蛋白胶原1和碳酸酐酶的基因的表达明显升高。结论是,在添加到基于藻酸钠的水凝胶中之后,二氧化硅以及更广泛的生物二氧化硅保留了其形态发生/成骨潜力。此特性可能使二氧化硅水凝胶也可以用作3D细胞打印的基质。版权所有(C)2013 John Wiley&Sons,Ltd.

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