Abstract
Tyrosine-Type site-specific recombinases (Y-SSRs) are versatile tools for genome engineering due to their ability to mediate excision, integration, inversion and exchange of genomic DNA with single nucleotide precision. The ever-increasing need for sophisticated genome engineering is driving efforts to identify novel SSR systems with intrinsic properties more suitable for particular applications. In this work, we develop a systematic computational workflow for annotation of putative Y-SSR systems and apply this pipeline to identify and characterize eight new naturally occurring Cre-Type SSR systems. We test their activity in bacterial and mammalian cells and establish selectivity profiles for the new and already established Cre-Type SSRs with regard to their ability to mutually recombine their target sites. These data form the basis for sophisticated genome engineering experiments using combinations of Y-SSRs in research fields including advanced genomics and synthetic biology. Finally, we identify putative pseudo-sites and potential off-Targets for Y-SSRs in the human and mouse genome. Together with established methods for altering the DNA-binding specificity of this class of enzymes, this work should facilitate the use of Y-SSRs for future genome surgery applications.
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CITATION STYLE
Jelicic, M., Schmitt, L. T., Paszkowski-Rogacz, M., Walder, A., Schubert, N., Hoersten, J., … Buchholz, F. (2023). Discovery and characterization of novel Cre-Type tyrosine site-specific recombinases for advanced genome engineering. Nucleic Acids Research, 51(10), 5285–5297. https://doi.org/10.1093/nar/gkad366
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