首页> 外文期刊>Biomaterials >Stimulation of osteoblast responses to biomimetic nanocomposites of gelatin-hydroxyapatite for tissue engineering scaffolds.
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Stimulation of osteoblast responses to biomimetic nanocomposites of gelatin-hydroxyapatite for tissue engineering scaffolds.

机译:刺激成骨细胞对用于组织工程支架的明胶-羟基磷灰石仿生纳米复合材料的反应。

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摘要

Collagen-derived gelatin/hydroxyapatite (HA) nanocomposites were biomimetically synthesized for hard tissue engineering scaffold. In vitro osteoblastic cellular responses to the nanocomposites were assessed in comparison with those conventionally mixed gelatin-HA composites. A three-dimensional culture method involving floating cells in a culture medium was introduced to assist in the initial attachment of the cells to the scaffolds, and the proliferation and differentiation behaviors of the cells were examined. The osteoblastic MG63 cells attached to the nanocomposites to a significantly higher degree and subsequently proliferated more. The alkaline phosphatase (ALP) activity and osteocalcin produced by the cells were significantly higher on the nanocomposite scaffolds than on the conventional composite scaffolds. These improved cellular responses on the nanocomposites are considered to result from the increased ionic release and serum protein adsorption on the nanocomposites, which was derived from the different structural and morphological characteristics, i.e., the nanocomposite scaffolds retained less-crystallized and smaller-sized apatite crystals and a more well-developed pore configuration than the conventional ones. Based on these findings, the biomimetically synthesized nanocomposite scaffolds are believed to be potentially useful in hard tissue regeneration and tissue engineering fields.
机译:仿生合成胶原蛋白的明胶/羟基磷灰石(HA)纳米复合材料,用于硬组织工程支架。与那些常规混合的明胶-HA复合材料相比,评估了对纳米复合材料的体外成骨细胞反应。引入了一种涉及在培养基中漂浮细胞的三维培养方法,以帮助细胞初始附着在支架上,并研究了细胞的增殖和分化行为。附着在纳米复合材料上的成骨细胞MG63细胞明显更高,随后增殖更多。在纳米复合材料支架上,细胞产生的碱性磷酸酶(ALP)活性和骨钙素显着高于常规复合材料支架。纳米复合材料上这些改善的细胞反应被认为是由于离子释放增加和血清蛋白质在纳米复合材料上的吸附所致,这是由于不同的结构和形态特征所致,即纳米复合材料支架保留了较少结晶且尺寸较小的磷灰石晶体。并比传统的孔结构更加发达。基于这些发现,仿生合成的纳米复合支架被认为在硬组织再生和组织工程领域中可能有用。

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