由主客体准嵌段共聚物形成的具有超分子聚乙二醇化的非病毒DNA递送系统。
Nonviral DNA Delivery System with Supramolecular PEGylation Formed by Host-Guest Pseudo-Block Copolymers.
作者信息
Zhang Zhongxing, Wen Yuting, Song Xia, Zhu Jingling, Li Jun
机构信息
Department of Biomedical Engineering, Faculty of Engineering, National University of Singapore, Singapore 117574, Singapore.
出版信息
ACS Appl Bio Mater. 2021 Jun 21;4(6):5057-5070. doi: 10.1021/acsabm.1c00306. Epub 2021 Jun 1.
A cationic supramolecular system based on host-guest pseudoblock copolymers was developed for nonviral DNA delivery. In this system, the macromolecular host was a cationic star-shaped polymer composed of a β-cyclodextrin (β-CD) core and multiple poly(2-(dimethylamino)ethyl methacrylate) (PDMAEMA) chains grafted on the core, while the macromolecular guest was a linear adamantyl-ended poly(ethylene glycol) (mPEG-Ad). Pseudoblock copolymers were self-assembled from the polymeric host-guest pairs (typically, 1:1 molar ratio) in aqueous media through the inclusion of an adamantyl group at the end of guest polymer into the β-CD cavity of host polymers. Through such an approach, the resultant supramolecular system was integrated with not only a superior DNA condensing ability due to the host polymer but also an outstanding polyplex-stabilizing ability as well as biocompatibility due to the guest polymer. The cationic star-shaped host polymers alone were capable of condensing plasmid DNA efficiently into nanoparticles (70-100 nm) with positive surface charge. They showed obviously lower cytotoxicity than PEI 25K (commercial branched polyethylenimine with a molecular weight around 25 kDa) in cell lines of L929, MB231, and Hela under high dose. In serum-free or serum-containing culture conditions, these host polymers exhibited either higher or lower in vitro DNA transfection efficiency as compared with PEI 25K in the three cell lines under study, which was dependent on the N/P ratios and PDMAEMA arm length. Upon incorporation of the PEG block through host-guest complexation with mPEG-Ad (i.e., supramolecular PEGylation), the resulting host-guest supramolecular systems exhibited even lower cytotoxicity than the host polymers alone. The polyplexes between plasmid DNA (pDNA) and the host-guest systems showed significantly improved stability in BSA-PBS buffer solution (pH 7.4) and enhanced in vitro DNA transfection efficiency in the cases of higher N/P ratios or longer PDMAEMA arms in all tested cell lines under both serum-free and serum-containing culture conditions, as compared with the corresponding polyplexes without supramolecular PEGylation. Further, through forming pseudoblock copolymer, the DNA transfection ability of the supramolecular system can be easily modulated and optimized either by changing the ratio between the guest and host or by using different hosts with varied PDMAEMA arm lengths.
开发了一种基于主客体假嵌段共聚物的阳离子超分子体系用于非病毒DNA递送。在该体系中,大分子主体是一种阳离子星形聚合物,由β-环糊精(β-CD)核心和接枝在该核心上的多条聚(甲基丙烯酸2-(二甲氨基)乙酯)(PDMAEMA)链组成,而大分子客体是一种线性的末端为金刚烷基的聚乙二醇(mPEG-Ad)。假嵌段共聚物通过客体聚合物末端的金刚烷基包含到主体聚合物的β-CD空腔中,由聚合物主客体对(通常为1:1摩尔比)在水性介质中自组装而成。通过这种方法,所得的超分子体系不仅由于主体聚合物而具有优异的DNA凝聚能力,而且由于客体聚合物而具有出色的多聚体稳定能力以及生物相容性。单独的阳离子星形主体聚合物能够将质粒DNA有效地凝聚成具有正表面电荷的纳米颗粒(70 - 100 nm)。在高剂量下,它们在L929、MB231和Hela细胞系中显示出比PEI 25K(分子量约为25 kDa的商业支化聚乙烯亚胺)明显更低的细胞毒性。在无血清或含血清的培养条件下,与研究中的三种细胞系中的PEI 25K相比,这些主体聚合物表现出更高或更低的体外DNA转染效率,这取决于N/P比和PDMAEMA臂长。通过与mPEG-Ad进行主客体络合引入PEG嵌段(即超分子聚乙二醇化)后,所得的主客体超分子体系表现出比单独的主体聚合物更低的细胞毒性。在无血清和含血清的培养条件下,与没有超分子聚乙二醇化的相应多聚体相比,质粒DNA(pDNA)与主客体体系之间的多聚体在BSA-PBS缓冲溶液(pH 7.4)中显示出显著提高的稳定性,并且在所有测试细胞系中,在较高的N/P比或更长的PDMAEMA臂的情况下,体外DNA转染效率增强。此外,通过形成假嵌段共聚物,超分子体系的DNA转染能力可以通过改变客体与主体之间的比例或使用具有不同PDMAEMA臂长的不同主体来轻松调节和优化。