State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China; Key Laboratory of Carbon Fiber and Functional Polymers (Beijing University of Chemical Technology), Ministry of Education, Beijing 100029, China; Beijing Laboratory of Biomedical Materials, Beijing University of Chemical Technology, Beijing 100029, China.
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.
Acta Biomater. 2016 Sep 1;41:282-92. doi: 10.1016/j.actbio.2016.06.006. Epub 2016 Jun 3.
Nucleic acid-based gene therapy is a promising treatment option to cure numerous intractable diseases. For non-viral gene carriers, low-molecular-weight polymeric vectors generally demonstrate poor transfection performance, but benefit their final removals from the body. Recently, it was reported that aminated poly(glycidyl methacrylate) (PGMA) is one potential gene vector. Based on ethylenediamine (ED)-functionalized low-molecular-weight PGMA (denoted by PGED), a flexible strategy was herein proposed to design new well-defined reducible cationic nanogels (denoted by PGED-NGs) with friendly crosslinking reagents for highly efficient nucleic acid delivery. α-Lipoic acid (LA), one natural antioxidant in human body, was readily introduced into ED-functionalized PGMA and crosslinked to produce cationic PGED-NGs with plentiful reducible lipoyl groups. PGED-NGs could effectively complex plasmid DNA (pDNA) and short interfering RNA (siRNA). Compared with pristine PGED, PGED-NGs exhibited much better performance of pDNA transfection. PGED-NGs also could efficiently transport MALAT1 siRNA (siR-M) into hepatoma cells and significantly suppressed the cancer cell proliferation and migration. The present work indicated that reducible cationic nanogels involving LA crosslinking reagents are one kind of competitive candidates for high-performance nucleic acid delivery systems.
Recently, the design of new types of high-performance nanoparticles is of great significance in delivering therapeutics. Nucleic acid-based therapy is a promising treatment option to cure numerous intractable diseases. A facile and straightforward strategy to fabricate safe nucleic acid delivery nanovectors is highly desirable. In this work, based on ethylenediamine-functionalized low-molecular-weight poly(glycidyl methacrylate), a flexible strategy was proposed to design new well-defined reducible cationic nanogels (denoted by PGED-NGs) with α-Lipoic acid, one friendly crosslinking reagent, for highly efficient nucleic acid delivery. Such PGED-NGs possess plentiful reducible lipoyl groups, effectively encapsulated pDNA and siRNA and exhibited excellent abilities of nucleic acid delivery. The present work indicated that reducible cationic nanogels involving α-lipoic acid crosslinking reagents are one kind of competitive candidates for high-performance nucleic acid delivery systems.
核酸基基因治疗是治疗多种难治性疾病的一种很有前途的治疗选择。对于非病毒基因载体,低分子量聚合物载体通常表现出较差的转染性能,但有利于它们最终从体内清除。最近,有报道称氨化聚(甲基丙烯酸缩水甘油酯)(PGMA)是一种有潜力的基因载体。基于乙二胺(ED)功能化低分子量 PGMA(记为 PGED),本文提出了一种灵活的策略,用友好的交联试剂设计新型的定义明确的还原阳离子纳米凝胶(记为 PGED-NGs),用于高效的核酸传递。α-硫辛酸(LA)是人体内一种天然抗氧化剂,很容易被引入 ED 功能化的 PGMA 中,并交联生成具有丰富还原型硫辛酸基团的阳离子 PGED-NGs。PGED-NGs 可以有效地与质粒 DNA(pDNA)和短干扰 RNA(siRNA)复合。与原始 PGED 相比,PGED-NGs 对 pDNA 的转染性能更好。PGED-NGs 还可以有效地将 MALAT1 siRNA(siR-M)输送到肝癌细胞中,并显著抑制癌细胞的增殖和迁移。本工作表明,含 LA 交联试剂的还原阳离子纳米凝胶是高性能核酸传递系统的一种有竞争力的候选物。