Juan E. Hurtado, Adam J. Schieferecke, Shakked O. Halperin, John Guan, Dylan Aidlen, David V. Schaffer, John E. Dueber
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引用次数: 0
摘要
在体内,遗传多样性先前已经使连续定向进化的遗传变异适应度景观的有效搜索成为可能。然而,现有的哺乳动物基因组位点的基因组多样化模式完全依赖于脱氨酶在靶位点内产生过渡突变,从而丧失了大多数错义突变的机会。在这里,我们设计了crispr引导的易出错DNA聚合酶(EvolvR),使哺乳动物细胞基因组位点内的所有四种核苷酸多样化。我们证明EvolvR在至少40 bp的突变窗口中产生过渡和翻转突变,并实现EvolvR通过脱氨酶无法实现的替换来进化以前未报道的耐药MAP2K1变体。此外,我们还发现,该酶的错配耐受性以grna特异性的方式限制了EvolvR的突变窗口和替代偏差。为了弥补突变过程中gRNA- To -gRNA的可变性,我们通过在EvolvR中加入PAM-flexible nickase来最大化gRNA靶序列的数量。最后,我们发现在给定gRNA下r环形成的预测自由能变化与EvolvR的性能之间存在很强的相关性。EvolvR系统使所有四种核苷酸多样化,使哺乳动物细胞能够进化,而核酸酶和grna特异性的特性可以被设计成nickase保真度,进一步提高EvolvR的突变率。
Nickase fidelity drives EvolvR-mediated diversification in mammalian cells
In vivo genetic diversifiers have previously enabled efficient searches of genetic variant fitness landscapes for continuous directed evolution. However, existing genomic diversification modalities for mammalian genomic loci exclusively rely on deaminases to generate transition mutations within target loci, forfeiting access to most missense mutations. Here, we engineer CRISPR-guided error-prone DNA polymerases (EvolvR) to diversify all four nucleotides within genomic loci in mammalian cells. We demonstrate that EvolvR generates both transition and transversion mutations throughout a mutation window of at least 40 bp and implement EvolvR to evolve previously unreported drug-resistant MAP2K1 variants via substitutions not achievable with deaminases. Moreover, we discover that the nickase’s mismatch tolerance limits EvolvR’s mutation window and substitution biases in a gRNA-specific fashion. To compensate for gRNA-to-gRNA variability in mutagenesis, we maximize the number of gRNA target sequences by incorporating a PAM-flexible nickase into EvolvR. Finally, we find a strong correlation between predicted free energy changes underlying R-loop formation and EvolvR’s performance using a given gRNA. The EvolvR system diversifies all four nucleotides to enable the evolution of mammalian cells, while nuclease and gRNA-specific properties underlying nickase fidelity can be engineered to further enhance EvolvR’s mutation rates.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.