Alwin Stephen, Gere Maja B, Guhl Eva, Effertz Karin, Barbas Carlos F, Segal David J, Weitzman Matthew D, Cathomen Toni
Institute of Virology, Charité Medical School, Campus Benjamin Franklin, Berlin, Germany.
Mol Ther. 2005 Oct;12(4):610-7. doi: 10.1016/j.ymthe.2005.06.094.
Genome engineering through homologous recombination (HR) is a powerful instrument for studying biological pathways or creating treatment options for genetic disorders. In mammalian cells HR is rare but the creation of targeted DNA double-strand breaks stimulates HR significantly. Here, we present a method to generate, evaluate, and optimize rationally designed endonucleases that promote HR. The DNA-binding domains were synthesized by assembling predefined zinc-finger modules selected by phage display. Attachment of a transcriptional activation domain allowed assessment of DNA binding in reporter assays, while fusion with an endonuclease domain created custom nucleases that were tested for their ability to stimulate HR in episomal and chromosomal gene repair assays. We demonstrate that specificity, expression kinetics, and protein design are crucial parameters for efficient gene repair and that our two-step assay allows one to go quickly from design to testing to successful employment of the custom nucleases in human cells.
通过同源重组(HR)进行基因组工程是研究生物途径或为遗传疾病创造治疗方案的有力工具。在哺乳动物细胞中,HR很少见,但靶向DNA双链断裂的产生会显著刺激HR。在此,我们提出了一种生成、评估和优化促进HR的合理设计的内切核酸酶的方法。DNA结合结构域通过组装由噬菌体展示选择的预定义锌指模块来合成。转录激活结构域的附着允许在报告基因检测中评估DNA结合,而与内切核酸酶结构域融合则产生定制核酸酶,这些核酸酶在游离型和染色体基因修复检测中测试其刺激HR的能力。我们证明特异性、表达动力学和蛋白质设计是有效基因修复的关键参数,并且我们的两步检测允许人们快速从设计到测试,再到在人类细胞中成功应用定制核酸酶。