Structural and functional basis of inositol hexaphosphate stimulation of NHEJ through stabilization of Ku-XLF interaction

Author:

Kefala Stavridi Antonia1,Gontier Amandine2,Morin Vincent2,Frit Philippe34,Ropars Virginie2,Barboule Nadia34,Racca Carine34,Jonchhe Sagun5,Morten Michael J5,Andreani Jessica2ORCID,Rak Alexey6,Legrand Pierre7ORCID,Bourand-Plantefol Alexa2,Hardwick Steven W8,Chirgadze Dimitri Y8,Davey Paul9,De Oliveira Taiana Maia10,Rothenberg Eli5,Britton Sebastien34ORCID,Calsou Patrick34ORCID,Blundell Tom L1,Varela Paloma F2ORCID,Chaplin Amanda K11,Charbonnier Jean-Baptiste2ORCID

Affiliation:

1. Heartand Lung Research Institute, University of Cambridge , Biomedical Campus, Papworth Road, Trumpington, Cambridge CB2 0BB , UK

2. Institute for Integrative Biology of the Cell (I2BC), Institute Joliot, CEA, CNRS, Univ.Paris-Sud, Université Paris-Saclay , 91198 , Gif-sur-Yvette  cedex, France

3. Institut de Pharmacologie et Biologie Structurale (IPBS), Université de Toulouse, CNRS, Université Toulouse III - Paul Sabatier (UT3) , Toulouse , France

4. Equipe Labellisée Ligue Contre le Cancer  2018, Toulouse , France

5. NYU Langone Medical Center , 450 East 29th Street , NY , NY , USA York University, USA

6. Structure-Design-Informatics, Sanofi R&D , Vitry sur Seine , France

7. Synchrotron SOLEIL, L’Orme des Merisiers , Saint-Aubin , Gif-sur-Yvette , France

8. Cryo-EM Facility, Department of Biochemistry, University of Cambridge , Cambridge CB2 1GA , UK

9. Oncology, R&D, AstraZeneca , Cambridge , UK

10. Mechanistic and Structural Biology, Discovery Sciences , R&D, AstraZeneca, Cambridge , UK

11. Leicester Institute for Structural and Chemical Biology, Department of Molecular and Cell Biology, University of Leicester , Leicester , UK

Abstract

Abstract The classical Non-Homologous End Joining (c-NHEJ) pathway is the predominant process in mammals for repairing endogenous, accidental or programmed DNA Double-Strand Breaks. c-NHEJ is regulated by several accessory factors, post-translational modifications, endogenous chemical agents and metabolites. The metabolite inositol-hexaphosphate (IP6) stimulates c-NHEJ by interacting with the Ku70–Ku80 heterodimer (Ku). We report cryo-EM structures of apo- and DNA-bound Ku in complex with IP6, at 3.5 Å and 2.74 Å resolutions respectively, and an X-ray crystallography structure of a Ku in complex with DNA and IP6 at 3.7 Å. The Ku-IP6 interaction is mediated predominantly via salt bridges at the interface of the Ku70 and Ku80 subunits. This interaction is distant from the DNA, DNA-PKcs, APLF and PAXX binding sites and in close proximity to XLF binding site. Biophysical experiments show that IP6 binding increases the thermal stability of Ku by 2°C in a DNA-dependent manner, stabilizes Ku on DNA and enhances XLF affinity for Ku. In cells, selected mutagenesis of the IP6 binding pocket reduces both Ku accrual at damaged sites and XLF enrolment in the NHEJ complex, which translate into a lower end-joining efficiency. Thus, this study defines the molecular bases of the IP6 metabolite stimulatory effect on the c-NHEJ repair activity.

Funder

Wellcome Trust

Ligue Contre le Cancer

Agence Nationale de la Recherche

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference58 articles.

1. The mechanism of double-strand DNA break repair by the nonhomologous DNA end-joining pathway;Lieber;Annu. Rev. Biochem.,2010

2. A means to a DNA end: the many roles of Ku;Downs;Nat. Rev. Mol. Cell Biol.,2004

3. The multifaceted roles of Ku70/80;Zahid;Int. J. Mol. Sci.,2021

4. Plugged into the Ku-DNA hub: the NHEJ network;Frit;Prog. Biophys. Mol. Biol.,2019

5. Dimers of DNA-PK create a stage for DNA double-strand break repair;Chaplin;Nat. Struct. Mol. Biol.,2020

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