Department of Chemistry, BK21 Program, Polymer Research Institute, Pohang University of Science and Technology, Pohang, Republic of Korea.
Biomaterials. 2010 May;31(14):4204-13. doi: 10.1016/j.biomaterials.2010.01.123. Epub 2010 Feb 18.
The work demonstrated the development of thermally cross-linked superparamagnetic nanomaterial which possessed polyethylene glycol moiety and covalently linked branched polyethylenimine (BPEI), and exhibited highly efficient magnetofection even under serum conditioned media. The study showed its high anti-biofouling, cell viability and serum stability and thus revealed a potential magnetic nanoparticle-mediated targeted gene delivery system. This superparamagnetic particle mediated rapid and efficient transfection in primary vascular endothelial cells (HUVEC) successfully inhibits expression of PAI-1 which is responsible for various vascular dysfunctions such as vascular inflammation and atherosclerosis and thereby provides a potential strategy to transfect highly sensitive HUVEC. The sequential steps for the enhanced magnetofection had been studied by monitoring cellular uptake with the aid of confocal microscopy.
该工作展示了热交联超顺磁纳米材料的开发,该纳米材料具有聚乙二醇部分和共价连接的支化聚乙烯亚胺(BPEI),即使在血清条件培养基中也表现出高效的转染作用。该研究表明其具有高抗生物污损性、细胞活力和血清稳定性,因此揭示了一种潜在的磁性纳米颗粒介导的靶向基因传递系统。这种超顺磁粒子介导的快速高效转染原发性血管内皮细胞(HUVEC)成功抑制了 PAI-1 的表达,PAI-1 负责多种血管功能障碍,如血管炎症和动脉粥样硬化,因此为转染高度敏感的 HUVEC 提供了一种潜在的策略。通过共聚焦显微镜辅助监测细胞摄取,研究了增强转染的顺序步骤。