Shen Hong, Tan Jian, Saltzman W Mark
School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853, USA.
Nat Mater. 2004 Aug;3(8):569-74. doi: 10.1038/nmat1179. Epub 2004 Jul 18.
Safe and efficient gene delivery would have great potential in gene therapy and tissue engineering, but synthetic biomaterial surfaces endowed with efficient gene-transferring functions do not yet exist. Inspired by naturally occurring biomineralization processes, we co-precipitated DNA with inorganic minerals onto cell-culture surfaces. The DNA/mineral nanocomposite surfaces obtained not only supported cell growth but also provided high concentrations of DNA in the immediate microenvironment of the cultured cells. Gene transfer from the engineered surfaces was as efficient as an optimized commercial lipid transfection reagent; in addition, the extent of gene transfer was adjustable by varying the mineral composition. DNA/mineral nanocomposite surfaces represent a promising system for enhancing gene transfer and controlling the extent of gene transfer for various biomedical applications, including tissue engineering or gene therapy of bone.
安全有效的基因递送在基因治疗和组织工程领域具有巨大潜力,但目前尚不具备具有高效基因转移功能的合成生物材料表面。受自然生物矿化过程的启发,我们将DNA与无机矿物质共沉淀到细胞培养表面。所获得的DNA/矿物质纳米复合表面不仅支持细胞生长,还能在培养细胞的紧邻微环境中提供高浓度的DNA。来自工程化表面的基因转移效率与优化后的商用脂质转染试剂相当;此外,通过改变矿物质组成可调节基因转移程度。DNA/矿物质纳米复合表面是一种很有前景的系统,可增强基因转移并控制基因转移程度,用于包括骨组织工程或基因治疗在内的各种生物医学应用。