首页> 外文期刊>Journal of biomedical materials research, Part A >Topographical analyses of proliferation and differentiation of osteoblasts in micro- and macropores of apatite-fiber scaffold
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Topographical analyses of proliferation and differentiation of osteoblasts in micro- and macropores of apatite-fiber scaffold

机译:磷灰石纤维支架微孔和大孔中成骨细胞增殖和分化的地形分析

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摘要

A variety of calcium phosphates have been used for bone tissue-engineering applications. We developed porous hydroxyapatite (HAp) ceramics by firing green compacts consisting of spherical carbon beads and HAp fiber. The apatite-fiber scaffold (AFS) forms a three-dimensional network of fibers with two different pore sizes (micro- and macropores). In this study, we investigated cell distribution and fine cell structure in AFS by confocal laser scanning microscopy. Osteoblastic cells were permeated homogenously throughout the scaffold under static culture conditions and grew threedimensionally in macropores of AFS. Cells penetrated into micropores when they were capable of cell - cell formations. Cell proliferation and differentiation were also evaluated by biochemical and molecular biological approaches. The expression levels of early-phase osteogenic genes in AFS increased immediately, and those of middle-phase genes were maintained during the 2-week study period. Furthermore, the expression of late-phase markers increased gradually during the incubation period. These data indicate that macropores provide sufficient space for cell growth and proliferation and that micropores facilitate cell differentiation via cell - cell networks. This study provides evidence for the effectiveness of three-dimensional culture systems comprising AFS, which mimics the microenvironment of bone cells.
机译:多种磷酸钙已经用于骨组织工程应用。我们通过烧制由球形碳珠和HAp纤维组成的生坯来开发多孔羟基磷灰石(HAp)陶瓷。磷灰石纤维支架(AFS)形成了具有两个不同孔径(微孔和大孔)的三维纤维网络。在这项研究中,我们通过共聚焦激光扫描显微镜研究了AFS中的细胞分布和精细细胞结构。在静态培养条件下,成骨细胞均匀地渗透到整个支架中,并在AFS的大孔中三维生长。当细胞能够形成细胞时,它们会渗透到微孔中。还通过生化和分子生物学方法评估细胞的增殖和分化。在2周的研究期间,AFS中早期成骨基因的表达水平立即增加,而中相基因的表达水平则得以维持。此外,在孵育期间后期标记物的表达逐渐增加。这些数据表明大孔为细胞生长和增殖提供了足够的空间,而微孔则通过细胞-细胞网络促进了细胞分化。这项研究为包含AFS的三维培养系统的有效性提供了证据,该系统模拟了骨细胞的微环境。

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