ArticleNucleic acids research2022
Pairing of single mutations yields obligate Cre-type site-specific recombinases.
Article in Nucleic acids research, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 19 citations in OpenAlex.
- Protein and DNA Conformational Changes Contribute to Specificity of Cre Recombinase.Biochemistry · 2025Article
- Protein and DNA Conformational Changes Contribute to Specificity of Cre Recombinase.bioRxiv : the preprint server for biology · 2024Article
- Activation of recombinases at specific DNA loci by zinc-finger domain insertions.Nature biotechnology · 2024Article
- Dynamics in Cre-loxP site-specific recombination.Current opinion in structural biology · 2024Review
- Engineering spacer specificity of the Cre/loxP system.Nucleic acids research · 2024Article
- Quantification of evolved DNA-editing enzymes at scale with DEQSeq.Genome biology · 2023Article
- Precise excision of HTLV-1 provirus with a designer-recombinase.Molecular therapy : the journal of the American Society of Gene Therapy · 2023Article
- Prediction of designer-recombinases for DNA editing with generative deep learning.Nature communications · 2022Article
- A Novel Cre/lox71-Based System for Inducible Expression of Recombinant Proteins and Genome Editing.Cells · 2022Article
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Authors and funding
8 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Tyrosine site-specific recombinases (SSRs) represent a versatile genome editing tool with considerable therapeutic potential. Recent developments to engineer and evolve SSRs into heterotetramers to improve target site flexibility signified a critical step towards their broad utility in genome editing. However, SSR monomers can form combinations of different homo- and heterotetramers in cells, increasing their off-target potential. Here, we discover that two paired mutations targeting residues implicated in catalysis lead to simple obligate tyrosine SSR systems, where the presence of all distinct subunits to bind as a heterotetramer is obligatory for catalysis. Therefore, only when the paired mutations are applied as single mutations on each recombinase subunit, the engineered SSRs can efficiently recombine the intended target sequence, while the subunits carrying the point mutations expressed in isolation are inactive. We demonstrate the utility of the obligate SSR system to improve recombination specificity of a designer-recombinase for a therapeutic target in human cells. Furthermore, we show that the mutations render the naturally occurring SSRs, Cre and Vika, obligately heteromeric for catalytic proficiency, providing a straight-forward approach to improve their applied properties. These results facilitate the development of safe and effective therapeutic designer-recombinases and advance our mechanistic understanding of SSR catalysis.
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