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Pena Reyes, T.

Publications and source records attributed to Pena Reyes, T..

2 recordsLinked to original sources

Structural basis of directionality control in large serine integrases

Large serine integrases (LSIs) catalyze unidirectional site-specific insertion of large DNA payloads, and in the presence of a cognate recombination directionality factor (RDF), catalyze unidirectional excision. Because neither reaction changes the net number of covalent bonds, the preferred direction must be controlled by the energetics of the changing protein-DNA complexes along these reaction pathways. However, a detailed understanding has been hampered by a lack of structural information. Here, we report 8 structures of SP{beta} integrase-DNA complexes along the integrative (-RDF) and excisive (+RDF) reaction pathways, at resolutions extending to 3.15 [A]. These complexes include tetrameric intermediates before and after strand exchange and product-bound dimers for both pathways. Our findings reveal that both recombination-induced conformational changes and RDF-mediated repositioning of the integrases coiled-coil subdomain (1) dictate which pairs of DNA sites can be assembled into a synaptic complex to initiate recombination and (2) dictate which product complexes will be conformationally locked, preventing back reactions. Critically, we find that the synaptic complex in which excision occurs is fundamentally different from that in which integration occurs. These mechanistic insights provide a conceptual framework for engineering efficient and versatile genome editing tools.

biochemistry↗

Large serine integrases utilise scavenged phage proteins as directionality cofactors

Recombination directionality factors (RDFs) for large serine integrases (LSIs) are cofactor proteins that control the directionality of recombination to favor excision over insertion. Although RDFs are predicted to bind their cognate LSIs in similar ways, there is no overall common structural theme across LSI RDFs, leading to the suggestion that some of them may be moonlighting proteins with other primary functions. To test this hypothesis, we searched for characterized proteins with structures similar to the predicted structures of known RDFs. Our search shows that the RDFs for two LSIs, TG1 integrase and Bxb1 integrase, show high similarities to a single stranded DNA binding (SSB) protein and an editing exonuclease, respectively. We present experimental data to show that TG1 RDF is a functional SSB protein. We used mutational analysis to validate the integrase-RDF interface predicted by AlphaFold2 multimer for TG1 integrase and its RDF, and establish that control of recombination directionality is mediated via protein-protein interaction at the junction of recombinases second DNA binding domain and the base of the coiled coil domain.

molecular biology↗