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Mechanism of Genome Interrogation: How CRISPR RNA-Guided Cas9 Proteins Locate Specific Targets on DNA

机译:基因组询问机制:CRISPR RNA引导的CAS9蛋白质如何定位DNA上的特异性靶标

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The ability to precisely edit and modify a genome opens endless opportunities to investigate fundamental properties of living systems as well as to advance various medical techniques and bioengineering applications. This possibility is now close to reality due to a recent discovery of the adaptive bacterial immune system, which is based on clustered regularly interspaced short palindromic repeats (CRISPR)-associated proteins (Cas) that utilize RNA to find and cut the double-stranded DNA molecules at specific locations. Here we develop a quantitative theoretical approach to analyze the mechanism of target search on DNA by CRISPR RNA-guided Cas9 proteins, which is followed by a selective cleavage of nucleic acids. It is based on a discrete-state stochastic model that takes into account the most relevant physical-chemical processes in the system. Using a method of first-passage processes, a full dynamic description of the target search is presented. It is found that the location of specific sites on DNA by CRISPR Cas9 proteins is governed by binding first to protospacer adjacent motif sequences on DNA, which is followed by reversible transitions into DNA interrogation states. In addition, the search dynamics is strongly influenced by the off-target cutting. Our theoretical calculations allow us to explain the experimental observations and to give experimentally testable predictions. Thus, the presented theoretical model clarifies some molecular aspects of the genome interrogation by CRISPR RNA-guided Cas9 proteins.
机译:精确编辑和修改基因组的能力开启了无穷无尽的机会,调查生活系统的基本属性以及推进各种医学技术和生物工程应用。这种可能性现在是由于最近发现适应性细菌免疫系统的现实,这是基于聚集的群体常规间隙的短语重复(CRISPR) - 分配的蛋白质(CAS),其利用RNA发现和切割双链DNA在特定位置的分子。在这里,我们通过CRISPR RNA引导的CAS9蛋白质开发了分析DNA对DNA的目标搜索机制的定量理论方法,然后是核酸的选择性切割。它基于离散状态随机模型,考虑到系统中最相关的物理化学过程。使用第一通道过程的方法,呈现了目标搜索的完整动态描述。结果发现,CRISPR CAS9蛋白的DNA上的特定位点的位置是通过首先结合到DNA上的ProTospacer相邻的基序序列的原子晶段,然后将可逆转变为DNA询问状态。此外,搜索动态受到偏移切割的强烈影响。我们的理论计算允许我们解释实验观察,并提供实验可测试的预测。因此,所提出的理论模型通过CRISPR RNA引导的CAS9蛋白阐明了基因组询问的一些分子方面。

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