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The crystal structure and biochemical analyses of escherichia coli yqgf illuminate its diverse functions

dc.contributor.authorThakur, Manoj
dc.contributor.authorDhyani, Kshitiza M.
dc.contributor.authorGalkin, Andrey
dc.contributor.authorKrajewski, Wojciech W.
dc.contributor.authorYavasani, Sadhana
dc.contributor.authorDemirkan, Elif
dc.contributor.authorHoward, Andrew
dc.contributor.authorHerzberg, Osnat
dc.contributor.authorMuniyappa, Kalappa
dc.contributor.buuauthorDEMİRKAN, ELİF
dc.contributor.departmentFen Edebiyat Fakültesi
dc.contributor.departmentBiyoloji Ana Bilim Dalı
dc.contributor.researcheridABI-4472-2020
dc.date.accessioned2025-10-21T10:00:52Z
dc.date.issued2025-09-01
dc.description.abstractThe Escherichia coli yqgF gene product is essential for bacterial growth , to confer resistance to mul- tiple antimicrobial agents. Furthermore, additional evidence suggests that YqgF, a RuvC family protein, is required for DNA damage repair, yet the mechanism underlying its action remains elusive. To address this knowledge gap, we conducted structural and biochemical investigations on E. coli YqgF (EcYqgF). Ec YqgF). Here, we reveal that Ec YqgF binds preferentially to branched DNA structures compared to single-stranded (ssDNA) and double-stranded DNA (dsDNA) , that the Ec YqgF:DNA complexes formed with branched DNA species were more stable and resistant against high salt and excess of competitor DNA than those formed with dsDNA. We show that Ec YqgF has a strong preference towards cleavage of branched DNA structures than dsDNA, ssDNA, and dsDNA with 5- or 3-ssDNA overhangs. Crucially, we found that Ec YqgF has a DNA-independent, Mg2+-dependent 2+-dependent ATPase activity that is tightly coupled to DNA cleav- age. We have determined the crystal structure of Ec YqgF, developed a model of ATP binding using AI-based methods, and rationalized the impact of site-directed mutants on ATP binding. Furthermore, we discovered two unusual ATPase-defective Ec YqgF variants, proficient in ATP-binding but not hydrol- ysis, which display a modest increase in the DNA-binding affinity, yet are devoid of endonucleolytic activ- ity, thus revealing a previously unappreciated property of YqgF endonucleases. Collectively, our results suggest that despite its overall structural similarity to the well-studied resolvase, RuvC, Ec YqgF is func- tionally distinct. Importantly, the Ec YqgF dual activity that couples ATP hydrolysis to endonuclease activity is absent in RuvC. (c) 2025 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
dc.description.sponsorshipBhatnagar Fellowship
dc.description.sponsorshipCouncil of Scientific & Industrial Research (CSIR) - India
dc.description.sponsorshipUnited States Department of Health & Human Services National Institutes of Health (NIH) - USA P01 GM57890
dc.identifier.doi10.1016/j.jmb.2025.169221
dc.identifier.issn0022-2836
dc.identifier.issue17
dc.identifier.scopus2-s2.0-105006534012
dc.identifier.urihttps://doi.org/10.1016/j.jmb.2025.169221
dc.identifier.urihttps://hdl.handle.net/11452/56305
dc.identifier.volume437
dc.identifier.wos001502534800001
dc.indexed.wosWOS.SCI
dc.language.isoen
dc.publisherAcademic press ltd- elsevier science ltd
dc.relation.journalJournal of molecular biology
dc.subjectSubstrate-specıfıcıty
dc.subjectHollıday junctıons
dc.subjectRuvc proteın
dc.subjectDna-repaır
dc.subjectResolvase
dc.subjectReveals
dc.subjectIdentıfıcatıon
dc.subjectRecombınatıon
dc.subjectMechanısm
dc.subjectEndonuclease
dc.subjectHolliday junction
dc.subjectReplication fork
dc.subjectRuvC
dc.subjectYqgF endonuclease
dc.subjectATPase
dc.subjectScience & Technology
dc.subjectLife Sciences & Biomedicine
dc.subjectBiochemistry & Molecular Biology
dc.titleThe crystal structure and biochemical analyses of escherichia coli yqgf illuminate its diverse functions
dc.typeArticle
dspace.entity.typePublication
local.contributor.departmentFen Edebiyat Fakültesi/Biyoloji Ana Bilim Dalı
local.indexed.atWOS
local.indexed.atScopus
relation.isAuthorOfPublication13b5deac-f120-4c0e-a42a-e8a47c700511
relation.isAuthorOfPublication.latestForDiscovery13b5deac-f120-4c0e-a42a-e8a47c700511

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