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三维打印细胞培养平台在组织工程中的细胞生长控制。

Control of cell growth on 3D-printed cell culture platforms for tissue engineering.

机构信息

College of Biology, Hunan University, Changsha, Hunan 410082, China.

出版信息

J Biomed Mater Res A. 2017 Dec;105(12):3281-3292. doi: 10.1002/jbm.a.36188. Epub 2017 Sep 15.

Abstract

Biocompatible tissue growth has excellent prospects for tissue engineering. These tissues are built over scaffolds, which can influence aspects such as cell adhesion, proliferation rate, morphology, and differentiation. However, the ideal 3D biological structure has not been developed yet. Here, we applied the electro-hydrodynamic jet (E-jet) 3D printing technology using poly-(lactic-co-glycolic acid, PLGA) solution to print varied culture platforms for engineered tissue structures. The effects of different parameters (electrical voltage, plotting speed, and needle sizes) on the outcome were investigated. We compared the biological compatibility of the 3D printed culture platforms with that of random fibers. Finally, we used the 3D-printed PLGA platforms to culture fibroblasts, the main cellular components of loose connective tissue. The results show that the E-jet printed platforms could guide and improve cell growth. These highly aligned fibers were able to support cellular alignment and proliferation. Cell angle was consistent with the direction of the fibers, and cells cultured on these fibers showed a much faster migration, potentially enhancing wound healing performance. Thus, the potential of this technology for 3D biological printing is large. This process can be used to grow biological scaffolds for the engineering of tissues. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 3281-3292, 2017.

摘要

生物相容性组织生长在组织工程中有很好的前景。这些组织是在支架上构建的,支架可以影响细胞黏附、增殖率、形态和分化等方面。然而,理想的 3D 生物结构尚未开发出来。在这里,我们应用了聚(乳酸-共-乙醇酸,PLGA)溶液的电喷射 3D 打印技术来打印不同的培养平台,用于工程组织结构。研究了不同参数(电压、绘图速度和针头大小)对结果的影响。我们将 3D 打印培养平台的生物相容性与随机纤维进行了比较。最后,我们使用 3D 打印的 PLGA 平台培养成纤维细胞,成纤维细胞是疏松结缔组织的主要细胞成分。结果表明,E-喷射打印平台可以指导和改善细胞生长。这些高度排列的纤维能够支持细胞的排列和增殖。细胞角度与纤维的方向一致,在这些纤维上培养的细胞迁移速度明显加快,可能会增强伤口愈合性能。因此,该技术在 3D 生物打印方面具有很大的潜力。该过程可用于生长生物支架以工程化组织。© 2017 威利父子公司

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