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Delivery of a transforming growth factor β-1 plasmid to mesenchymal stem cells via cationized Pleurotus eryngii polysaccharide nanoparticles

机译:通过阳离子化杏鲍菇侧耳多糖纳米颗粒向间充质干细胞传递转化生长因子β-1质粒

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摘要

The objective of this study was to investigate the use of cationized Pleurotus eryngii polysaccharide (CPEPS) as a nonviral gene delivery vehicle to transfer plasmid DNA encoding transforming growth factor beta-1 (pTGF-β1) into mesenchymal stem cells (MSCs) in vitro. Crude P. eryngii polysaccharide was purified, and then cationized by grafting spermine onto the backbone of the polysaccharide. Agarose gel electrophoresis, transmission electron microscopy, and a Nano Sense Zetasizer (Malvern Instruments, Malvern, UK) were used to characterize the CPEPS-pTGF-β1 nanoparticles. The findings of cytotoxicity analysis showed that when the nanoparticles were formulated with a CPEPS/pTGF-β1 weight ratio ≥ 10:1, a greater gel retardation effect was observed during agarose gel electrophoresis. The CPEPS-pTGF-β1 nanoparticles with a weight ratio of 20:1, respectively, possessed an average particle size of 80.8 nm in diameter and a zeta potential of +17.4 ± 0.1 mV. Significantly, these CPEPS-pTGF-β1 nanoparticles showed lower cytotoxicity and higher transfection efficiency than both polyethylenimine (25 kDa) (P = 0.006, Student’s t-test) and LipofectamineTM 2000 (P = 0.002, Student’s t-test). Additionally, the messenger RNA expression level of TGF-β1 in MSCs transfected with CPEPS-pTGF-β1 nanoparticles was significantly higher than that of free plasmid DNA-transfected MSCs and slightly elevated compared with that of Lipofectamine 2000-transfected MSCs. Flow cytometry analysis demonstrated that 92.38% of MSCs were arrested in the G1 phase after being transfected with CPEPS-pTGF-β1 nanoparticles, indicating a tendency toward differentiation. In summary, the findings of this study suggest that the CPEPS-pTGF-β1 nanoparticles prepared in this work exhibited excellent transfection efficiency and low toxicity. Therefore, they could be developed into a promising nonviral vector for gene delivery in vitro.
机译:这项研究的目的是研究使用阳离子化杏鲍菇侧耳多糖(CPEPS)作为非病毒基因递送载体,将编码转化生长因子β-1(pTGF-β1)的质粒DNA体外转移到间充质干细胞(MSCs)中。纯化粗制的P.eryngii多糖,然后通过将精胺接枝到多糖的主链上进行阳离子化。琼脂糖凝胶电泳,透射电镜和Nano Sense Zetasizer(Malvern Instruments,Malvern,UK)用于表征CPEPS-pTGF-β1纳米粒子。细胞毒性分析的结果表明,当CPEPS /pTGF-β1重量比≥10:1配制纳米颗粒时,在琼脂糖凝胶电泳过程中观察到更大的凝胶阻滞作用。 CPEPS-pTGF-β1纳米颗粒的重量比分别为20:1,平均直径为80.8 nm,ζ电位为+17.4±0.1 mV。值得注意的是,这些CPEPS-pTGF-β1纳米粒子比聚乙烯亚胺(25 kDa)(P = 0.006,Student's t检验)和LipofectamineTM 2000(P = 0.002,Student's t检验)表现出更低的细胞毒性和更高的转染效率。另外,用CPEPS-pTGF-β1纳米颗粒转染的MSC中,TGF-β1的信使RNA表达水平显着高于游离质粒DNA转染的MSC,并且与Lipofectamine 2000转染的MSC相比略微升高。流式细胞仪分析表明,经CPEPS-pTGF-β1纳米颗粒转染后,有92.38%的MSCs被阻滞在G1期,表明有分化的趋势。总而言之,这项研究的结果表明,在这项工作中制备的CPEPS-pTGF-β1纳米颗粒具有优异的转染效率和低毒性。因此,它们可以发展成为有希望的用于体外基因递送的非病毒载体。

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