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ROS 响应性氟化聚阳离子作为非病毒基因载体。

ROS-responsive fluorinated polycations as non-viral gene vectors.

机构信息

Key Laboratory of Green Chemistry and Technology (Ministry of Education), College of Chemistry, Sichuan University, Chengdu, 610064, PR China.

Key Laboratory of Green Chemistry and Technology (Ministry of Education), College of Chemistry, Sichuan University, Chengdu, 610064, PR China.

出版信息

Eur J Med Chem. 2019 Nov 15;182:111666. doi: 10.1016/j.ejmech.2019.111666. Epub 2019 Aug 30.

Abstract

Polycation carriers hold great potential in gene therapy. However, they usually suffer from obvious cytotoxicity and unsatisfactory transfection efficiency. In this report, a series of fluorobenzene substituted and thioacetal contained polycations (TAEA-S-xF) were prepared to explore novel alternatives for safe and efficient non-viral polymeric gene vectors. The reactive oxygen species (ROS)-responsive property of thioacetal moieties together with the fluorine effect were hope to bring the vector better performance in gene delivery process. These materials could efficiently condense DNA into nanoparticles with proper size and surface potential. The structure-activity relationship of these materials was systematically investigated, and the In vitro transfection results revealed that the amount of fluorine atoms on the linkage plays important role to ensure the transfection efficiency and serum tolerance. The ROS-responsive behavior was verified by NMR, gel electrophoresis experiment and dynamic light scattering (DLS) assay. Cytotoxicity assay results also suggest that these ROS-degradable polycations show good biocompatibility in response to higher ROS level in cancer cells. Among these fluorinated polymers, the one with the most fluorine atoms showed the best transfection efficiency, which was up to 54 times higher than polyethyleneimine (PEI) 25 kDa. Mechanism studies reveal that its better performance may come from good cellular uptake and endosome escape ability.

摘要

聚阳离子载体在基因治疗中具有很大的潜力。然而,它们通常具有明显的细胞毒性和不理想的转染效率。在本报告中,我们制备了一系列含氟苯取代和硫缩醛的聚阳离子(TAEA-S-xF),以探索安全高效的非病毒聚合物基因载体的新选择。希望硫缩醛部分的活性氧(ROS)响应特性与氟效应一起为基因传递过程带来更好的载体性能。这些材料可以有效地将 DNA 浓缩成具有适当大小和表面电势的纳米颗粒。我们系统地研究了这些材料的构效关系,体外转染结果表明,连接上氟原子的数量对于确保转染效率和血清耐受性起着重要作用。通过 NMR、凝胶电泳实验和动态光散射(DLS)测定验证了 ROS 响应行为。细胞毒性测定结果还表明,这些 ROS 可降解聚阳离子在响应癌细胞中较高的 ROS 水平时表现出良好的生物相容性。在这些氟化聚合物中,含氟原子最多的一种表现出最佳的转染效率,比聚乙烯亚胺(PEI)25 kDa 高 54 倍。机制研究表明,其更好的性能可能来自于良好的细胞摄取和内涵体逃逸能力。

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