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利用磁铁矿纳米颗粒增强细胞接种到三维多孔支架中。

Enhanced cell-seeding into 3D porous scaffolds by use of magnetite nanoparticles.

作者信息

Shimizu Kazunori, Ito Akira, Honda Hiroyuki

机构信息

Department of Biotechnology, School of Engineering, Nagoya University, Nagoya 464-8603, Japan.

出版信息

J Biomed Mater Res B Appl Biomater. 2006 May;77(2):265-72. doi: 10.1002/jbm.b.30443.

Abstract

To engineer functional tissues, a large number of cells must be successfully seeded into scaffolds. We previously proposed a methodology for tissue engineering using magnetite nanoparticles and magnetic force, which we termed "Mag-TE." In the present study, we applied the Mag-TE technique to a cell seeding process and have termed the technique "Mag-seeding." The cell-seeding efficiency of NIH/3T3 fibroblasts (FBs) by Mag-seeding was investigated using six types of commercially available scaffolds (5 collagen sponges and 1 D,D-L,L polylactic acid sponge) having various pore sizes. FBs were magnetically labeled with our original magnetite cationic liposomes (MCLs), which have a positive surface charge, to improve adsorption onto the cell surface. FBs labeled with MCLs were seeded onto a scaffold, and a magnet (4 kG) was placed under the scaffold. Mag-seeding facilitated successful cell seeding into the deep internal space of the scaffolds. Cell-seeding efficiency increased significantly in all scaffolds when compared to those without magnetic force. Moreover, when a high-intensity magnet (10 kG) was used, cell-seeding efficiency was significantly enhanced. These results suggest that Mag-seeding is a promising approach for tissue engineering.

摘要

为构建功能性组织,必须将大量细胞成功接种到支架中。我们之前提出了一种利用磁铁矿纳米颗粒和磁力进行组织工程的方法,我们称之为“磁辅助组织工程(Mag-TE)”。在本研究中,我们将磁辅助组织工程技术应用于细胞接种过程,并将该技术称为“磁辅助接种(Mag-seeding)”。使用六种具有不同孔径的市售支架(5种胶原海绵和1种聚乳酸海绵)研究了磁辅助接种对NIH/3T3成纤维细胞(FBs)的细胞接种效率。FBs用我们原创的具有正表面电荷的磁铁矿阳离子脂质体(MCLs)进行磁性标记,以提高其在细胞表面的吸附。将用MCLs标记的FBs接种到支架上,并在支架下方放置一块磁铁(4 kG)。磁辅助接种有助于将细胞成功接种到支架的深部内部空间。与无磁力作用的情况相比,所有支架中的细胞接种效率均显著提高。此外,当使用高强度磁铁(10 kG)时,细胞接种效率显著增强。这些结果表明磁辅助接种是一种很有前景的组织工程方法。

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