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通过“磁转染”增强磁性纳米颗粒介导的星形胶质细胞基因转移:静磁场和振荡磁场的影响。

Enhancement of magnetic nanoparticle-mediated gene transfer to astrocytes by 'magnetofection': effects of static and oscillating fields.

机构信息

Cellular & Neural Engineering Group, Institute for Science and Technology in Medicine, Keele University, Staffordshire, ST5 5BG, UK.

出版信息

Nanomedicine (Lond). 2010 Feb;5(2):217-32. doi: 10.2217/nnm.09.109.

Abstract

AIMS

To assess the feasibility of using magnetic nanoparticles (MNPs) to transfect astrocytes derived for transplantation and determine if transfection efficacy can be enhanced by static and oscillating magnetic fields.

METHODS

Astrocytes were transfected using MNPs functionalized with a plasmid encoding a reporter protein. Transfection efficacies were compared following application of static fields and a novel, oscillating array system at a range of frequencies. The transplantation potential of transfected cells was tested in organotypic cerebellar slice cultures.

RESULTS

Rat astrocytes can be efficiently transfected using MNPs with applied static/oscillating fields; the latter effect is frequency dependent. Transfected astrocytes could survive and differentiate following introduction into 3D neural tissue arrays.

CONCLUSION

MNP vectors can safely and effectively transfect rodent astrocytes and could form the basis of a 'multifunctional nanoplatform' for neural cell transplantation.

摘要

目的

评估使用磁性纳米颗粒(MNPs)转染用于移植的星形胶质细胞的可行性,并确定静态和振荡磁场是否可以增强转染效率。

方法

使用功能化的 MNPs 转染星形胶质细胞,该 MNPs 携带编码报告蛋白的质粒。在施加静态场和新型振荡阵列系统的情况下,比较转染效率在一系列频率下的情况。转染细胞的移植潜力在器官型小脑切片培养物中进行了测试。

结果

应用外加静态/振荡场可以有效地用 MNPs 转染大鼠星形胶质细胞;后一种效应是频率依赖性的。转染后的星形胶质细胞在引入 3D 神经组织阵列后能够存活和分化。

结论

MNP 载体可以安全有效地转染啮齿动物星形胶质细胞,并可能成为神经细胞移植的“多功能纳米平台”的基础。

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