Blokpoel Ferreras Lia A, Chan Sze Yan, Vazquez Reina Saul, Dixon James E
Regenerative Medicine & Cellular Therapies Division, The University of Nottingham Biodiscovery Institute (BDI), School of Pharmacy, University of Nottingham, Nottingham NG7 2RD, U.K.
School of Veterinary Sciences, University of Nottingham, Nottingham NG7 2RD, U.K.
ACS Appl Nano Mater. 2021 Jan 22;4(1):167-181. doi: 10.1021/acsanm.0c02465. Epub 2020 Dec 21.
Non-viral delivery systems are generally of low efficiency, which limits their use in gene therapy and editing applications. We previously developed a technology termed glycosaminoglycan (GAG)-binding enhanced transduction (GET) to efficiently deliver a variety of cargos intracellularly; our system employs GAG-binding peptides, which promote cell targeting, and cell penetrating peptides (CPPs), which enhance endocytotic cell internalization. Herein, we describe a further modification by combining gene delivery and magnetic targeting with the GET technology. We associated GET peptides, plasmid (p)DNA, and iron oxide superparamagnetic nanoparticles (MNPs), allowing rapid and targeted GET-mediated uptake by application of static magnetic fields in NIH3T3 cells. This produced effective transfection levels (significantly higher than the control) with seconds to minutes of exposure and localized gene delivery two orders of magnitude higher in targeted over non-targeted cell monolayers using magnetic fields (in 15 min exposure delivering GFP reporter pDNA). More importantly, high cell membrane targeting by GET-DNA and MNP co-complexes and magnetic fields allowed further enhancement to endocytotic uptake, meaning that the nucleic acid cargo was rapidly internalized beyond that of GET complexes alone (GET-DNA). Magnetofection by MNPs combined with GET-mediated delivery allows magnetic field-guided local transfection in vitro and could facilitate focused gene delivery for future regenerative and disease-targeted therapies in vivo.
非病毒递送系统通常效率较低,这限制了它们在基因治疗和编辑应用中的使用。我们之前开发了一种称为糖胺聚糖(GAG)结合增强转导(GET)的技术,以有效地将多种货物递送至细胞内;我们的系统采用促进细胞靶向的GAG结合肽和增强内吞细胞内化的细胞穿透肽(CPP)。在此,我们描述了通过将基因递送和磁靶向与GET技术相结合的进一步改进。我们将GET肽、质粒(p)DNA和氧化铁超顺磁性纳米颗粒(MNP)结合在一起,通过在NIH3T3细胞中施加静磁场实现快速且靶向的GET介导摄取。这在暴露数秒至数分钟内产生了有效的转染水平(显著高于对照),并且在使用磁场的情况下,靶向细胞单层中的局部基因递送比非靶向细胞单层高两个数量级(在15分钟暴露时递送GFP报告基因pDNA)。更重要的是,GET-DNA和MNP共复合物以及磁场对细胞膜的高靶向性进一步增强了内吞摄取,这意味着核酸货物的内化速度比单独的GET复合物(GET-DNA)更快。MNP与GET介导的递送相结合的磁转染允许在体外进行磁场引导的局部转染,并可能促进体内未来再生和疾病靶向治疗的聚焦基因递送。