Ma Dacheng, Peng Shuguang, Huang Weiren, Cai Zhiming, Xie Zhen
MOE Key Laboratory of Bioinformatics and Bioinformatics Division, Center for Synthetic and System Biology, Department of Automation, Tsinghua National Lab for Information Science and Technology , Tsinghua University , Beijing 100084 , China.
State Engineering Laboratory of Medical Key Technologies Application of Synthetic Biology , Shenzhen Second People's Hospital, the First Affiliated Hospital of Shenzhen University , Shenzhen , China.
ACS Synth Biol. 2018 Apr 20;7(4):978-985. doi: 10.1021/acssynbio.7b00404. Epub 2018 Mar 27.
Nuclease dead Cas9 (dCas9) has been widely used for modulating gene expression by fusing with different activation or repression domains. However, delivery of the CRISPR/Cas system fused with various effector domains in a single adeno-associated virus (AAV) remains challenging due to the payload limit. Here, we engineered a set of downsized variants of Cas9 including Staphylococcus aureus Cas9 (SaCas9) that retained DNA binding activity by deleting conserved functional domains. We demonstrated that fusing FokI nuclease domain to the N-terminal of the minimal SaCas9 (mini-SaCas9) or to the middle of the split mini-SaCas9 can trigger efficient DNA cleavage. In addition, we constructed a set of compact transactivation domains based on the tripartite VPR activation domain and self-assembled arrays of split SpyTag:SpyCatch peptides, which are suitable for fusing to the mini-SaCas9. Lastly, we produced a single AAV containing the mini-SaCas9 fused with a downsized transactivation domain along with an optimized gRNA expression cassette, which showed efficient transactivation activity. Our results highlighted a practical approach to generate down-sized CRISPR/Cas9 and gene activation systems for in vivo applications.
核酸酶失活的Cas9(dCas9)已通过与不同的激活或抑制结构域融合而被广泛用于调控基因表达。然而,由于载体容量限制,在单个腺相关病毒(AAV)中递送与各种效应结构域融合的CRISPR/Cas系统仍然具有挑战性。在此,我们构建了一组Cas9的小型化变体,包括金黄色葡萄球菌Cas9(SaCas9),通过删除保守的功能结构域来保留DNA结合活性。我们证明,将FokI核酸酶结构域融合到最小化的SaCas9(mini-SaCas9)的N端或分裂的mini-SaCas9的中间,可以触发高效的DNA切割。此外,我们基于三方VPR激活结构域和分裂的SpyTag:SpyCatch肽的自组装阵列构建了一组紧凑的反式激活结构域,这些结构域适合与mini-SaCas9融合。最后,我们制备了一种单一的AAV,其包含与小型化反式激活结构域融合的mini-SaCas9以及优化的gRNA表达盒,该病毒显示出高效的反式激活活性。我们的结果突出了一种实用的方法,用于生成用于体内应用的小型化CRISPR/Cas9和基因激活系统。