Hannaneh Safiaghdam, Sahar Baniameri, Hossein Aminianfar, Saeed Farzad Mohajeri, Mohammad Mehdi Dehghan, Lobat Tayebi, Hanieh Nokhbatolfoghahaei, Arash Khojasteh
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引用次数: 0
摘要
将精准医疗原则融入骨组织工程学,掀起了一股通过先进的三维打印技术定制复杂支架的研究热潮。生物陶瓷以其优异的生物相容性和骨传导性而闻名,已成为该领域一种前景广阔的材料。本文旨在评估一种由三维打印明胶与羟基磷灰石/磷酸三钙生物陶瓷(G/HA/TCP)组成的复合支架的再生能力,并将人牙髓干细胞(hDPSCs)纳入其中。我们利用三维粉末打印技术制作了带有明胶层的十字形双相磷酸钙支架。通过对60只大鼠和临界大小的腓骨缺损进行体外分析和体内研究,评估了这些支架和hDPSCs的骨再生潜力。评估包括分析细胞增殖、分化和碱性磷酸酶活性(ALP),最后还对骨再生进行了详细的组织学评估。我们的研究揭示了一种非常有利的情况,不仅显示了支架上理想的细胞附着和增殖,而且显著提高了 hDPSCs 的 ALP 活性,强调了它们在骨再生中的关键作用。然而,在 12 周时对腓骨缺损进行的组织学检查显示,所有实验组的骨再生水平都不高。与对照组和细胞组相比,试验组和细胞组的骨形成明显。这凸显了再生过程的复杂性,为进一步深入研究提高复合材料支架的潜力铺平了道路。
Evaluating osteogenic potential of a 3D-printed bioceramic-based scaffold for critical-sized defect treatment: an in vivo and in vitro investigation.
The integration of precision medicine principles into bone tissue engineering has ignited a wave of research focused on customizing intricate scaffolds through advanced 3D printing techniques. Bioceramics, known for their exceptional biocompatibility and osteoconductivity, have emerged as a promising material in this field. This article aims to evaluate the regenerative capabilities of a composite scaffold composed of 3D-printed gelatin combined with hydroxyapatite/tricalcium phosphate bioceramics (G/HA/TCP), incorporating human dental pulp-derived stem cells (hDPSCs). Using 3D powder printing, we created cross-shaped biphasic calcium phosphate scaffolds with a gelatin layer. The bone-regenerating potential of these scaffolds, along with hDPSCs, was assessed through in vitro analyses and in vivo studies with 60 rats and critical-sized calvarial defects. The assessment included analyzing cellular proliferation, differentiation, and alkaline phosphatase activity (ALP), and concluded with a detailed histological evaluation of bone regeneration. Our study revealed a highly favorable scenario, displaying not only desirable cellular attachment and proliferation on the scaffolds but also a notable enhancement in the ALP activity of hDPSCs, underscoring their pivotal role in bone regeneration. However, the histological examination of calvarial defects at the 12-wk mark yielded a rather modest level of bone regeneration across all experimental groups. The test and cell group exhibited significant bone formation compared to all other groups except the control and cell group. This underscores the complexity of the regenerative process and paves the way for further in-depth investigations aimed at improving the potential of the composite scaffolds.
期刊介绍:
In Vitro Cellular & Developmental Biology - Animal is a journal of the Society for In Vitro Biology (SIVB). Original manuscripts reporting results of research in cellular, molecular, and developmental biology that employ or are relevant to organs, tissue, tumors, and cells in vitro will be considered for publication. Topics covered include:
Biotechnology;
Cell and Tissue Models;
Cell Growth/Differentiation/Apoptosis;
Cellular Pathology/Virology;
Cytokines/Growth Factors/Adhesion Factors;
Establishment of Cell Lines;
Signal Transduction;
Stem Cells;
Toxicology/Chemical Carcinogenesis;
Product Applications.