Institute of Experimental Oncology and Therapy Research, Technische Universität München, Munich, Germany.
Blood. 2011 Apr 21;117(16):e171-81. doi: 10.1182/blood-2010-08-302646. Epub 2011 Feb 28.
Research applications and cell therapies involving genetically modified cells require reliable, standardized, and cost-effective methods for cell manipulation. We report a novel nanomagnetic method for integrated cell separation and gene delivery. Gene vectors associated with magnetic nanoparticles are used to transfect/transduce target cells while being passaged and separated through a high gradient magnetic field cell separation column. The integrated method yields excellent target cell purity and recovery. Nonviral and lentiviral magselectofection is efficient and highly specific for the target cell population as demonstrated with a K562/Jurkat T-cell mixture. Both mouse and human enriched hematopoietic stem cell pools were effectively transduced by lentiviral magselectofection, which did not affect the hematopoietic progenitor cell number determined by in vitro colony assays. Highly effective reconstitution of T and B lymphocytes was achieved by magselectofected murine wild-type lineage-negative Sca-1(+) cells transplanted into Il2rg(-/-) mice, stably expressing GFP in erythroid, myeloid, T-, and B-cell lineages. Furthermore, nonviral, lentiviral, and adenoviral magselectofection yielded high transfection/transduction efficiency in human umbilical cord mesenchymal stem cells and was fully compatible with their differentiation potential. Upscaling to a clinically approved automated cell separation device was feasible. Hence, once optimized, validated, and approved, the method may greatly facilitate the generation of genetically engineered cells for cell therapies.
研究应用和涉及基因修饰细胞的细胞治疗需要可靠、标准化和具有成本效益的细胞操作方法。我们报告了一种新型的纳米磁性方法,用于集成的细胞分离和基因传递。与磁性纳米颗粒相关的基因载体用于转染/转导靶细胞,同时通过高梯度磁场细胞分离柱进行传代和分离。该集成方法可获得出色的靶细胞纯度和回收率。非病毒和慢病毒磁选转染对靶细胞群体具有高效和高度特异性,这在 K562/Jurkat T 细胞混合物中得到了证明。通过慢病毒磁选转染,有效转导了小鼠和人富集的造血干细胞池,而对体外集落测定确定的造血祖细胞数量没有影响。通过移植到 Il2rg(-/-)小鼠中表达 GFP 的野生型谱系阴性 Sca-1(+)细胞,通过磁选转染实现了 T 和 B 淋巴细胞的高效重建,在红细胞、髓样细胞、T 细胞和 B 细胞谱系中稳定表达 GFP。此外,非病毒、慢病毒和腺病毒磁选转染在人脐带间充质干细胞中获得了高转染/转导效率,并且与它们的分化潜能完全兼容。可扩展到临床批准的自动化细胞分离设备。因此,一旦经过优化、验证和批准,该方法可能会极大地促进用于细胞治疗的基因工程细胞的生成。