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LDHs 纳米颗粒对干细胞负载的 3D 生物打印支架细胞行为的影响。

The effect of LDHs nanoparticles on the cellular behavior of stem cell-laden 3D-bioprinted scaffold.

机构信息

469683Istinye University, Istanbul, Turkey.

出版信息

J Biomater Appl. 2022 Jul;37(1):48-54. doi: 10.1177/08853282221082921. Epub 2022 Apr 22.

DOI:10.1177/08853282221082921
PMID:35452304
Abstract

Three-dimensional (3D)-bioprinting as an emerging approach for tissue engineering possesses the promise to create highly mimicked organs or tissues by using computer-aided design. For biomedical applications in tissue engineering in our previous work, we developed an optimized nanocomposite bioink based on methylacrylated gelatin (GelMA), methylacrylated chitosan (ChitMA), and double-layered hydroxide (LDHs) nanoparticles by using 3D-bioprinting technology. Herein, we used the previous formulation to fabricate human bone marrow mesenchymal stem cells (hBMMSCs)-laden nanocomposite bioinks. The effect of LDHs nanoparticles on the cellular behaviors of the encapsulated-hBMMSCs in the scaffolds was evaluated for the first time. Live/Dead, PrestoBlue, and DAPI/Actin analysis were carried out to assess the cell viability, proliferation rate, and cellular morphology of encapsulated hBMMSCs within the scaffolds. In addition, osteogenic differentiation studies were performed culturing the scaffolds for up to 21 days. Results show that LDHs nanoparticles in the GelMA/ChitMA scaffold formulation increased the viability of hBMMSCs, did not cause any adverse effect on the proliferation rate, cell morphology of the hBMMSCs, and increased the Runx2 protein expression of the encapsulated-hBMMSCs in the scaffolds. This study progresses the LDHs containing nanocomposite bioink for cell printing applications in tissue engineering.

摘要

三维(3D)生物打印作为一种新兴的组织工程方法,有望通过计算机辅助设计来创建高度模拟的器官或组织。在我们之前的组织工程生物医学应用工作中,我们使用 3D 生物打印技术,基于甲基丙烯酰化明胶(GelMA)、甲基丙烯酰化壳聚糖(ChitMA)和双层氢氧化物(LDHs)纳米粒子,开发了一种经过优化的纳米复合生物墨水。在这里,我们使用之前的配方来制造负载有人骨髓间充质干细胞(hBMMSCs)的纳米复合生物墨水。首次评估了 LDHs 纳米粒子对支架中封装的 hBMMSCs 细胞行为的影响。通过 Live/Dead、PrestoBlue 和 DAPI/肌动蛋白分析,评估了封装在支架内的 hBMMSCs 的细胞活力、增殖率和细胞形态。此外,还进行了成骨分化研究,将支架培养长达 21 天。结果表明,GelMA/ChitMA 支架配方中的 LDHs 纳米粒子提高了 hBMMSCs 的活力,对 hBMMSCs 的增殖率、细胞形态没有任何不良影响,并增加了支架中封装的 hBMMSCs 的 Runx2 蛋白表达。这项研究推进了含有 LDHs 的纳米复合生物墨水在组织工程细胞打印应用中的发展。

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