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Directed evolution of recombinase specificity by split gene reassembly

机译:通过分裂基因重组指导重组酶特异性的进化

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摘要

The engineering of new enzymes that efficiently and specifically modify DNA sequences is necessary for the development of enhanced gene therapies and genetic studies. To address this need, we developed a robust strategy for evolving site-specific recombinases with novel substrate specificities. In this system, recombinase variants are selected for activity on new substrates based on enzyme-mediated reassembly of the gene encoding β-lactamase that confers ampicillin resistance to Escherichia coli. This stringent evolution method was used to alter the specificities of catalytic domains in the context of a modular zinc finger-recombinase fusion protein. Gene reassembly was detectable over several orders of magnitude, which allowed for tunable selectivity and exceptional sensitivity. Engineered recombinases were evolved to react with sequences from the human genome with only three rounds of selection. Many of the evolved residues, selected from a randomly-mutated library, were conserved among other members of this family of recombinases. This enhanced evolution system will translate recombinase engineering and genome editing into a practical and expedient endeavor for academic, industrial and clinical applications.
机译:有效地和特异性地修饰DNA序列的新酶的工程对于开发增强型基因疗法和遗传研究是必需的。为了满足这一需求,我们开发了一种稳健的策略,可开发具有新型底物特异性的位点特异性重组酶。在该系统中,基于酶介导的编码β-内酰胺酶的基因的重组,选择重组酶变体在新底物上的活性,该基因赋予氨苄青霉素对大肠杆菌的抗性。在模块锌指重组酶融合蛋白的背景下,使用这种严格的进化方法来改变催化结构域的特异性。基因重组可以在几个数量级上检测到,从而具有可调的选择性和出色的灵敏度。经过改造的重组酶仅需三轮选择即可与人类基因组序列发生反应。从随机突变的文库中选择的许多进化残基在该重组酶家族的其他成员中是保守的。这种增强的进化系统将重组酶工程和基因组编辑转化为对学术,工业和临床应用的切实可行的努力。

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