Yang Wenqian, Miyazaki Takuya, Chen Pengwen, Hong Taehun, Naito Mitsuru, Miyahara Yuji, Matsumoto Akira, Kataoka Kazunori, Miyata Kanjiro, Cabral Horacio
Department of Bioengineering, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan.
Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, Kawasaki, Japan.
Sci Technol Adv Mater. 2021 Oct 13;22(1):850-863. doi: 10.1080/14686996.2021.1976055. eCollection 2021.
RNA interference (RNAi) by small interfering RNAs (siRNAs) is a promising therapeutic approach. Because siRNA has limited intracellular access and is rapidly cleared , the success of RNAi depends on efficient delivery technologies. Particularly, polyion complexation between block catiomers and siRNA is a versatile approach for constructing effective carriers, such as unit polyion complexes (uPIC), core-shell polyion complex (PIC) micelles and vesicular siRNAsomes, by engineering the structure of block catiomers. In this regard, the flexibility of block catiomers could be an important parameter in the formation of PIC nanostructures with siRNA, though its effect remains unknown. Here, we studied the influence of block catiomer flexibility on the assembly of PIC structures with siRNA using a complementary polymeric system, . poly(ethylene glycol)-poly(L-lysine) (PEG-PLL) and PEG-poly(glycidylbutylamine) (PEG-PGBA), which has a relatively more flexible polycation segment than PEG-PLL. Mixing PEG-PGBA with siRNA at molar ratios of primary amines in polymer to phosphates in the siRNA (N/P ratios) higher than 1.5 promoted the multimolecular association of uPICs, whereas PEG-PLL formed uPIC at all N/P ratios higher than 1. Moreover, uPICs from PEG-PGBA were more stable against counter polyanion exchange than uPICs from PEG-PLL, probably due to a favorable complexation process, as suggested by computational studies of siRNA/block catiomer binding. In experiments, PEG-PGBA uPICs promoted effective intracellular delivery of siRNA and efficient gene knockdown. Our results indicate the significance of polycation flexibility on assembling PIC structures with siRNA, and its potential for developing innovative delivery systems.
小干扰RNA(siRNA)介导的RNA干扰(RNAi)是一种很有前景的治疗方法。由于siRNA进入细胞内的能力有限且会迅速被清除,RNAi的成功取决于高效的递送技术。特别是,通过设计嵌段阳离子聚合物的结构,嵌段阳离子聚合物与siRNA之间的聚离子络合是构建有效载体的通用方法,如单聚离子络合物(uPIC)、核壳聚离子络合物(PIC)胶束和囊泡状siRNA体。在这方面,嵌段阳离子聚合物的柔韧性可能是与siRNA形成PIC纳米结构的一个重要参数,但其作用尚不清楚。在此,我们使用一种互补聚合物体系——聚(乙二醇)-聚(L-赖氨酸)(PEG-PLL)和聚(乙二醇)-聚(缩水甘油丁胺)(PEG-PGBA),研究了嵌段阳离子聚合物柔韧性对与siRNA形成PIC结构组装的影响,其中PEG-PGBA的聚阳离子链段比PEG-PLL相对更具柔韧性。当聚合物中伯胺与siRNA中磷酸根的摩尔比(N/P比)高于1.5时,将PEG-PGBA与siRNA混合可促进uPIC的多分子缔合,而PEG-PLL在所有高于1的N/P比下都能形成uPIC。此外,与PEG-PLL形成的uPIC相比,PEG-PGBA形成的uPIC对反聚阴离子交换更稳定,这可能是由于有利的络合过程,siRNA/嵌段阳离子聚合物结合的计算研究表明了这一点。在实验中,PEG-PGBA uPIC促进了siRNA的有效细胞内递送和高效的基因敲低。我们的结果表明了聚阳离子柔韧性在与siRNA组装PIC结构中的重要性及其在开发创新递送系统方面的潜力。