Panda Gayatri, Ray Arjun
Department of Computational Biology, Indraprastha Institute of Information Technology, New Delhi, India.
Comput Struct Biotechnol J. 2022 Aug 4;20:4172-4184. doi: 10.1016/j.csbj.2022.07.041. eCollection 2022.
The introduction of CRISPR/Cas9 based gene editing has greatly accelerated therapeutic genome editing. However, the off-target DNA cleavage by CRISPR/Cas9 protein hampers its clinical translation, hindering its widespread use as a programmable genome editing tool. Although Cas9 variants with better mismatch discrimination have been developed, they have significantly lower rates of on-target DNA cleavage. Here, we have compared the dynamics of a more specific naturally occurring Cas9 from (FnCas9) to the most widely used, SpCas9 protein. Long-scale atomistic MD simulation of free and gRNA bound forms of both the Cas9 proteins was performed, and their domain rearrangements and binding affinity with gRNA were compared to decipher the possible reason behind the enhanced specificity of FnCas9 protein. The greater binding affinity with gRNA, high domain electrostatics, and more volatility of FnCas9 than SpCas9 may explain its increased specificity and lower tolerance for mismatches.
基于CRISPR/Cas9的基因编辑技术的引入极大地加速了治疗性基因组编辑。然而,CRISPR/Cas9蛋白对脱靶DNA的切割阻碍了其临床应用,限制了它作为一种可编程基因组编辑工具的广泛使用。尽管已经开发出了具有更好错配识别能力的Cas9变体,但它们的靶向DNA切割率显著降低。在这里,我们将一种更具特异性的天然存在的Cas9(FnCas9)与使用最广泛的SpCas9蛋白的动力学进行了比较。对两种Cas9蛋白的游离形式和与gRNA结合的形式进行了长时间尺度的原子分子动力学模拟,并比较了它们的结构域重排以及与gRNA的结合亲和力,以解读FnCas9蛋白特异性增强背后的可能原因。与SpCas9相比,FnCas9与gRNA具有更高的结合亲和力、高结构域静电作用以及更大的波动性,这可能解释了其特异性增加以及对错配的耐受性降低的原因。