FANCD2-FANCI surveys DNA and recognizes double- to single-stranded junctions.
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Abstract
DNA crosslinks block DNA replication and are repaired by the Fanconi anaemia pathway. The FANCD2-FANCI (D2-I) protein complex is central to this process as it initiates repair by coordinating DNA incisions around the lesion1. However, D2-I is also known to have a more general role in DNA repair and in protecting stalled replication forks from unscheduled degradation2-4. At present, it is unclear how DNA crosslinks are recognized and how D2-I functions in replication fork protection. Here, using single-molecule imaging, we show that D2-I is a sliding clamp that binds to and diffuses on double-stranded DNA. Notably, sliding D2-I stalls on encountering single-stranded-double-stranded (ss-ds) DNA junctions, structures that are generated when replication forks stall at DNA lesions5. Using cryogenic electron microscopy, we determined structures of D2-I on DNA that show that stalled D2-I makes specific interactions with the ss-dsDNA junction that are distinct from those made by sliding D2-I. Thus, D2-I surveys dsDNA and, when it reaches an ssDNA gap, it specifically clamps onto ss-dsDNA junctions. Because ss-dsDNA junctions are found at stalled replication forks, D2-I can identify sites of DNA damage. Therefore, our data provide a unified molecular mechanism that reconciles the roles of D2-I in the recognition and protection of stalled replication forks in several DNA repair pathways.
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Acknowledgements: We thank J. Rhodes (MRC LMB) for providing SFP synthase and advice on protein labelling. We thank G. Moore (Imperial) for assistance and expert advice. We thank M. Maric, T. Stanage, O. Belan, R. Anand and S. Boulton (Crick) for labelled RPA protein and advice, and D. Lilley (Dundee) for Holliday junction DNA. We thank J. G. Shi (MRC LMB), the MRC LMB EM facility, J. Grimmett and T. Darling (MRC LMB scientific computation) for support. We thank K. J. Patel (Oxford), C. J. Russo, C. Johnson, S. Chaaban, J. T. P. Yeeles, S. S. H. W. Scheres (MRC LMB) and all members of the Passmore and Rueda groups for useful discussions and advice. This work was supported by the MRC as part of UK Research and Innovation, MRC file reference number MC_U105192715 (L.A.P.), U105178808 (J.E.S.) and MC-A658-5TY10 (D.S.R.); a Wellcome Trust Collaborative Grant 206292/Z/17/Z (D.S.R.); an ERC Consolidator Grant (ERCCOG 101003210-XlinkRepair, to P.K.); and an EMBO Long-Term Fellowship ALTF 692–2018 (P.A.). We acknowledge Diamond Light Source for access to eBIC and excellent support (proposals BI23268 and BI31336) funded by the Wellcome Trust, MRC and the Biotechnology and Biological Sciences Research Council. For the purpose of open access, the MRC LMB has applied a CC BY public copyright licence to any Author Accepted Manuscript version arising.
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1476-4687

