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Less is more: Investigating the influence of cellular nanoparticle load on transfection outcomes in neural cells

机译:更少的是:研究细胞纳米颗粒载荷对神经细胞转染结果的影响

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Abstract Genetic engineering of cell transplant populations offers potential for delivery of neurotherapeutic factors to modify the regenerative microenvironment of the injured spinal cord. The use of magnetic nanoparticle (MNP)‐based vectors has reduced the traditional reliance on viral methods and their associated obstacles in terms of scale up and safety. Studies utilizing magnetic assistive platforms for MNP‐mediated gene delivery have found transfection efficiency in astrocytes (a major transplant and homeostatic neural cell type) to be both frequency‐ and amplitude‐dependent. It is widely assumed that increased intracellular particle load will enhance transfection efficiency in a cell population. Therefore, we tested repeat delivery of MNP:plasmid complexes in conjunction with oscillating magnetic field parameters—a process termed “magneto‐multifection”—in astrocytes of primary origin in an attempt to enhance transfection levels. We show (a) levels of transfection using magneto‐multifection equal that seen with viral methods; (b) reporter protein expression using two reporter plasmids shows a diverse profile of single/dual transfected cells with implications for delivery of a “cocktail” of neurotherapeutic proteins; and (c) contrary to expectation, an inverse relationship exists between particle load and reporter protein expression.
机译:摘要细胞移植群的基因工程提供了促进神经治疗因素的潜力,以改变受伤脊髓的再生微环境。使用磁性纳米粒子(MNP)的载体的使用已经降低了传统对病毒方法及其相关障碍物的传统依赖,并且在规模上升和安全性方面。利用用于MNP介导的基因递送的磁辅助平台的研究发现了星形胶质细胞(主要移植和稳态神经细胞类型)的转染效率,依赖于频率和幅度。众所周知,增加的细胞内颗粒载荷将增强细胞群中的转染效率。因此,我们测试了MNP:质粒复合物的重复递送,与振荡磁场参数相结合,该过程称为“磁 - 多点” - 在原代来源的星形胶质细胞中试图增强转染水平。我们展示(a)使用病毒方法观察的磁化多点的转染水平; (b)使用两个报告质粒的报告蛋白表达显示出单一/双转染细胞的不同型材,具有用于递送神经治疗蛋白的“鸡尾酒”的影响; (c)与期望相反,颗粒载荷和报告蛋白表达之间存在反比关系。

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