首页> 外文期刊>Expert opinion on drug delivery >Multifunctional nanoparticles of Fe 3O 4@SiO 2(FITC)/PAH conjugated the recombinant plasmid of pIRSE2-EGFP/VEGF165 with dual functions for gene delivery and cellular imaging
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Multifunctional nanoparticles of Fe 3O 4@SiO 2(FITC)/PAH conjugated the recombinant plasmid of pIRSE2-EGFP/VEGF165 with dual functions for gene delivery and cellular imaging

机译:Fe 3O 4 @ SiO 2(FITC)/ PAH的多功能纳米粒子与具有双重功能的pIRSE2-EGFP / VEGF165重组质粒缀合,用于基因传递和细胞成像

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Objectives: Technologies to increase tissue vascularity are critically important to the fields of tissue engineering and cardiovascular medicine. Angiogenic factors, like VEGF, have been widely investigated to induce vascular endothelial cell proliferation and angiogenesis for establishing a vascular network. However, effective transport of VEGF gene to target cells with minimal side effects remains a challenge despite the use of unique viral and non-viral delivery approaches. Methods: This study presents a novel gene delivery system of fluorescein isothiocyanate (FITC) doped and poly(allylamine hydrochloride) (PAH) grafted Fe 3O 4@SiO 2 nanoparticles, which allows efficient loading of pVEGF to form Fe 3O 4@SiO 2(FITC)/PAH/pVEGF nanocomplexes for VEGF gene delivery and cellular imaging. Results: The nanocomplexes maintain their superparamagnetic property in the silica composites at room temperature, reaching a saturation magnetization value of 5.19 emu/g of material, and no appreciable change in magnetism even after PAH modification. The quantitative analysis of cellular internalization into the living human umbilical vein endothelial cells (HUVECs) demonstrated that the Fe 3O 4@SiO 2(FITC)/PAH/pVEGF nanocomplexes could be entirely internalized by HUVECs, and exhibit high VEGF gene expression and an innocuous toxic profile. The magnetic resonance (MR) images showed that the superparamagnetic iron oxide core of Fe 3O 4@SiO 2(FITC)/PAH/pVEGF nanocomplexes could also act as a contrast agent for MR imaging. This property provides a benefit for monitoring gene delivery. Conclusion: These data highlight multifunctional Fe 3O 4@SiO 2(FITC)/PAH/pVEGF nanocomplexes as an attractive platform for gene delivery of angiogenesis, and also making it a potential candidate of nanoprobes for cellular fluorescent imaging or MR imaging.
机译:目的:增加组织血管的技术对组织工程和心血管医学领域至关重要。血管生成因子,如VEGF,已被广泛研究以诱导血管内皮细胞增殖和血管生成以建立血管网络。然而,尽管使用独特的病毒和非病毒递送方法,但以最小的副作用将VEGF基因有效转移至靶细胞仍然是一个挑战。方法:本研究提出了一种新型的异硫氰酸荧光素(FITC)和聚烯丙胺盐酸盐(PAH)接枝的Fe 3O 4 @ SiO 2纳米粒子基因传递系统,该系统可有效加载pVEGF形成Fe 3O 4 @ SiO 2( FITC)/ PAH / pVEGF纳米复合物,用于VEGF基因递送和细胞成像。结果:纳米复合物在室温下在二氧化硅复合材料中保持其超顺磁性,达到5.19 emu / g材料的饱和磁化强度,即使在PAH改性后,磁性也没有明显变化。定量分析活体内人脐静脉内皮细胞(HUVECs)中的细胞内在化作用,表明Fe 3O 4 @ SiO 2(FITC)/ PAH / pVEGF纳米复合物可以完全被HUVEC内在化,并显示高VEGF基因表达和无害毒性概况。磁共振(MR)图像表明,Fe 3O 4 @ SiO 2(FITC)/ PAH / pVEGF纳米复合物的超顺磁性氧化铁核也可以用作MR成像的造影剂。该特性为监测基因传递提供了好处。结论:这些数据突出了多功能的Fe 3O 4 @ SiO 2(FITC)/ PAH / pVEGF纳米复合物,它是血管生成基因传递的诱人平台,也使其成为细胞荧光成像或MR成像纳米探针的潜在候选者。

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