Department of Neurochemistry, Stockholm University, Svante Arrhenius väg 16B, Stockholm, SE-10691, Sweden.
Department of Materials and Environmental Chemistry, Stockholm University, Svante Arrhenius väg 16C, Stockholm, SE-106 91, Sweden.
Sci Rep. 2017 Aug 22;7(1):9159. doi: 10.1038/s41598-017-09803-z.
Magnetic nanoparticles (MNPs, FeO) incorporated into the complexes of cell penetrating peptides (CPPs)-oligonucleotides (ONs) promoted the cell transfection for plasmid transfection, splice correction, and gene silencing efficiencies. Six types of cell penetrating peptides (CPPs; PeptFect220 (denoted PF220), PF221, PF222, PF223, PF224 and PF14) and three types of gene therapeutic agents (plasmid (pGL3), splicing correcting oligonucleotides (SCO), and small interfering RNA (siRNA) were investigated. Magnetic nanoparticles incorporated into the complexes of CPPs-pGL3, CPPs-SCO, and CPPs-siRNA showed high cell biocompatibility and efficiently transfected the investigated cells with pGL3, SCO, and siRNA, respectively. Gene transfer vectors formed among PF14, SCO, and MNPs (PF14-SCO-MNPs) showed a superior transfection efficiency (up to 4-fold) compared to the noncovalent PF14-SCO complex, which was previously reported with a higher efficiency compared to commercial vector called Lipofectamine™2000. The high transfection efficiency of the new complexes (CPPs-SCO-MNPs) may be attributed to the morphology, low cytotoxicity, and the synergistic effect of MNPs and CPPs. PF14-pDNA-MNPs is an efficient complex for in vivo gene delivery upon systemic administration. The conjugation of CPPs-ONs with inorganic magnetic nanoparticles (FeO) may open new venues for selective and efficient gene therapy.
磁性纳米粒子 (MNPs,FeO) 掺入穿透细胞肽 (CPPs)-寡核苷酸 (ONs) 的复合物中,促进了质粒转染、剪接纠正和基因沉默效率的细胞转染。研究了六种类型的穿透细胞肽 (CPPs; PeptFect220(表示为 PF220)、PF221、PF222、PF223、PF224 和 PF14) 和三种类型的基因治疗剂 (质粒 (pGL3)、剪接纠正寡核苷酸 (SCO) 和小干扰 RNA (siRNA)。掺入 CPPs-pGL3、CPPs-SCO 和 CPPs-siRNA 复合物中的磁性纳米粒子表现出高细胞生物相容性,并分别有效地转染了调查细胞中的 pGL3、SCO 和 siRNA。PF14、SCO 和 MNPs 之间形成的基因转移载体 (PF14-SCO-MNPs) 与之前报道的具有更高效率的非共价 PF14-SCO 复合物相比,显示出更高的转染效率 (高达 4 倍),与商业载体 Lipofectamine™2000 相比。新复合物 (CPPs-SCO-MNPs) 的高转染效率可能归因于 MNPs 和 CPPs 的形态、低细胞毒性和协同作用。PF14-pDNA-MNPs 是一种有效的全身给药体内基因传递复合物。CPPs-ONs 与无机磁性纳米粒子 (FeO) 的缀合可能为选择性和有效的基因治疗开辟新途径。