The Skaggs Institute for Chemical Biology and Department of Molecular Biology, The Scripps Research Institute, La Jolla, CA 92037, USA.
J Mol Biol. 2010 Jul 2;400(1):96-107. doi: 10.1016/j.jmb.2010.04.060. Epub 2010 May 4.
Zinc finger nucleases (ZFNs) are powerful tools for gene therapy and genetic engineering. The high specificity and affinity of these chimeric enzymes are based on custom-designed zinc finger proteins (ZFPs). To improve the performance of existing ZFN technology, we developed an in vivo evolution-based approach to improve the efficacy of the FokI cleavage domain (FCD). After multiple rounds of cycling mutagenesis and DNA shuffling, a more efficient nuclease variant (Sharkey) was generated. In vivo analyses indicated that Sharkey is >15-fold more active than wild-type FCD on a diverse panel of cleavage sites. Further, a mammalian cell-based assay showed a three to sixfold improvement in targeted mutagenesis for ZFNs containing derivatives of the Sharkey cleavage domain. We also identified mutations that impart sequence specificity to the FCD that might be utilized in future studies to further refine ZFNs through cooperative specificity. In addition, Sharkey was observed to enhance the cleavage profiles of previously published and newly selected heterodimer ZFN architectures. This enhanced and highly efficient cleavage domain will aid in a variety of ZFN applications in medicine and biology.
锌指核酸酶(ZFNs)是基因治疗和遗传工程的强大工具。这些嵌合酶的高特异性和亲和力基于定制设计的锌指蛋白(ZFPs)。为了提高现有 ZFN 技术的性能,我们开发了一种基于体内进化的方法来提高 FokI 切割结构域(FCD)的效率。经过多轮循环诱变和 DNA 重排,产生了一种更有效的核酸酶变体(Sharkey)。体内分析表明,Sharkey 在多种切割位点上的活性比野生型 FCD 高 15 倍以上。此外,基于哺乳动物细胞的测定表明,含有 Sharkey 切割结构域衍生物的 ZFN 的靶向突变率提高了 3 至 6 倍。我们还鉴定了赋予 FCD 序列特异性的突变,这些突变可能在未来的研究中用于通过协同特异性进一步细化 ZFN。此外,观察到 Sharkey 增强了先前发表和新选择的异二聚体 ZFN 结构的切割谱。这种增强的、高效的切割结构域将有助于 ZFN 在医学和生物学中的各种应用。