Jin Guang-Zhen, Park Jeong-Hui, Seo Seog-Jin, Kim Hae-Won
Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan, 330-714, Republic of Korea,
Biotechnol Lett. 2014 Jul;36(7):1539-48. doi: 10.1007/s10529-014-1513-6. Epub 2014 Mar 21.
Porous microspherical carriers have great promise for cell culture and tissue engineering. Dynamic cultures enable more uniform cell population and effective differentiation than static cultures. Here we applied dynamic spinner flask culture for the loading and multiplication of cells onto porous biopolymer microcarriers. The abilities of the microcarriers to populate cells and to induce osteogenic differentiation were examined and the feasibility of in vivo delivery of the constructs was addressed. Over time, the porous microcarriers enabled cell adhesion and expansion under proper dynamic culture conditions. Osteogenic markers were substantially expressed by the dynamic cell cultures. The cell-cultured microcarriers implanted in the mouse subcutaneous tissue for 4 weeks showed excellent tissue compatibility, with minimal inflammatory signs and significant induction of bone tissues. This first report on dynamic culture of porous biopolymer microcarriers providing an effective tool for bone tissue engineering.
多孔微球载体在细胞培养和组织工程方面具有巨大潜力。与静态培养相比,动态培养能够实现更均匀的细胞群体和有效的分化。在此,我们应用动态转瓶培养将细胞加载到多孔生物聚合物微载体上并使其增殖。研究了微载体接种细胞和诱导成骨分化的能力,并探讨了构建物体内递送的可行性。随着时间的推移,多孔微载体在适当的动态培养条件下能够实现细胞黏附和扩增。动态细胞培养大量表达了成骨标志物。植入小鼠皮下组织4周的细胞培养微载体显示出优异的组织相容性,炎症迹象极小且显著诱导了骨组织形成。这是关于多孔生物聚合物微载体动态培养的首篇报道,为骨组织工程提供了一种有效的工具。