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  Engineering of a target site-specific recombinase by a combined evolution- and structure-guided approach.

Abi-Ghanem, J., Chusainow, J., Karimova, M., Spiegel, C., Hofmann-Sieber, H., Hauber, J., et al. (2013). Engineering of a target site-specific recombinase by a combined evolution- and structure-guided approach. Nucleic Acids Research, 41(4), 2394-2403.

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 Creators:
Abi-Ghanem, Josephine, Author
Chusainow, Janet1, Author           
Karimova, Madina1, Author           
Spiegel, Christopher, Author
Hofmann-Sieber, Helga, Author
Hauber, Joachim, Author
Buchholz, Frank1, Author           
Pisabarro, Maria Teresa2, Author
Affiliations:
1Max Planck Institute of Molecular Cell Biology and Genetics, Max Planck Society, ou_2340692              
2Max Planck Society, ou_persistent13              

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 Abstract: Site-specific recombinases (SSRs) can perform DNA rearrangements, including deletions, inversions and translocations when their naive target sequences are placed strategically into the genome of an organism. Hence, in order to employ SSRs in heterologous hosts, their target sites have to be introduced into the genome of an organism before the enzyme can be practically employed. Engineered SSRs hold great promise for biotechnology and advanced biomedical applications, as they promise to extend the usefulness of SSRs to allow efficient and specific recombination of pre-existing, natural genomic sequences. However, the generation of enzymes with desired properties remains challenging. Here, we use substrate-linked directed evolution in combination with molecular modeling to rationally engineer an efficient and specific recombinase (sTre) that readily and specifically recombines a sequence present in the HIV-1 genome. We elucidate the role of key residues implicated in the molecular recognition mechanism and we present a rationale for sTre's enhanced specificity. Combining evolutionary and rational approaches should help in accelerating the generation of enzymes with desired properties for use in biotechnology and biomedicine.

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 Dates: 2013
 Publication Status: Issued
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 Identifiers: eDoc: 688482
Other: 5680
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Title: Nucleic Acids Research
Source Genre: Journal
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Pages: - Volume / Issue: 41 (4) Sequence Number: - Start / End Page: 2394 - 2403 Identifier: -