Department of BioSciences, Rice University, Houston, TX, 77005, USA.
Department of Chemical and Biomolecular Engineering, Rice University, Houston, TX, 77005, USA.
Nat Commun. 2023 Sep 20;14(1):5845. doi: 10.1038/s41467-023-41501-5.
The CRISPR-Cas13 ribonucleases have been widely applied for RNA knockdown and transcriptional modulation owing to their high programmability and specificity. However, the large size of Cas13 effectors and their non-specific RNA cleavage upon target activation limit the adeno-associated virus based delivery of Cas13 systems for therapeutic applications. Herein, we report detailed biochemical and structural characterizations of a compact Cas13 (Cas13bt3) suitable for adeno-associated virus delivery. Distinct from many other Cas13 systems, Cas13bt3 cleaves the target and other nonspecific RNA at internal "UC" sites and is activated in a target length-dependent manner. The cryo-electron microscope structure of Cas13bt3 in a fully active state illustrates the structural basis of Cas13bt3 activation. Guided by the structure, we obtain engineered Cas13bt3 variants with minimal off-target cleavage yet maintained target cleavage activities. In conclusion, our biochemical and structural data illustrate a distinct mechanism for Cas13bt3 activation and guide the engineering of Cas13bt3 applications.
CRISPR-Cas13 核糖核酸酶由于其高度的可编程性和特异性,已被广泛应用于 RNA 敲低和转录调控。然而,Cas13 效应物的体积大和靶激活后非特异性 RNA 切割限制了基于腺相关病毒的 Cas13 系统用于治疗应用的传递。在此,我们报告了适合腺相关病毒传递的紧凑型 Cas13(Cas13bt3)的详细生化和结构特征。与许多其他 Cas13 系统不同,Cas13bt3 在内部“UC”位点切割靶标和其他非特异性 RNA,并且以靶标长度依赖性的方式被激活。Cas13bt3 在完全激活状态下的冷冻电镜结构阐明了 Cas13bt3 激活的结构基础。根据该结构,我们获得了具有最小脱靶切割但保持靶标切割活性的工程化 Cas13bt3 变体。总之,我们的生化和结构数据阐明了 Cas13bt3 激活的独特机制,并指导了 Cas13bt3 应用的工程设计。