9hzg
Ku70/80 bound to WRN-exo
Structural highlights
FunctionXRCC6_HUMAN Single stranded DNA-dependent ATP-dependent helicase. Has a role in chromosome translocation. The DNA helicase II complex binds preferentially to fork-like ends of double-stranded DNA in a cell cycle-dependent manner. It works in the 3'-5' direction. Binding to DNA may be mediated by XRCC6. Involved in DNA non-homologous end joining (NHEJ) required for double-strand break repair and V(D)J recombination. The XRCC5/6 dimer acts as regulatory subunit of the DNA-dependent protein kinase complex DNA-PK by increasing the affinity of the catalytic subunit PRKDC to DNA by 100-fold. The XRCC5/6 dimer is probably involved in stabilizing broken DNA ends and bringing them together. The assembly of the DNA-PK complex to DNA ends is required for the NHEJ ligation step. Required for osteocalcin gene expression. Probably also acts as a 5'-deoxyribose-5-phosphate lyase (5'-dRP lyase), by catalyzing the beta-elimination of the 5' deoxyribose-5-phosphate at an abasic site near double-strand breaks. 5'-dRP lyase activity allows to 'clean' the termini of abasic sites, a class of nucleotide damage commonly associated with strand breaks, before such broken ends can be joined. The XRCC5/6 dimer together with APEX1 acts as a negative regulator of transcription.[1] [2] [3] [4] [5] [6] [7] Publication Abstract from PubMedWerner (WRN) is the only human RecQ helicase family member with DNA exonuclease activity. WRN promotes genome stability through its functions in DNA replication, repair and telomere maintenance, the deficiency of which presents clinically as Werner syndrome, causing premature aging and cancer predisposition. The main DNA double strand-break sensor Ku70/80 heterodimer (Ku) is a known partner of WRN, which stimulates its nuclease activity. However, the molecular basis of Ku-WRN interplay is currently unknown. Here, we present a high resolution cryo-EM structure of human Ku bound to DNA in complex with the N-terminal WRN exonuclease domain. This structure reveals multiple interaction sites between WRN and the Ku:DNA complex. The catalytic domain of WRN-exo engages with the DNA ends, stabilized by the vWA-like Ku80 domain interacting with the N-terminal APLF-like Ku binding motif (A-KBM) of WRN. Most surprisingly, we visualize the SAP domain of Ku70 stabilized within this complex, and we identify specific contacts mediating this interaction. These interactions are validated by assessing the impact of point mutations on either side of the Ku-WRN interfaces on exonuclease activity with purified recombinant proteins, and on live protein recruitment at biphoton laser-damaged nuclear sites. Finally, we show that disruption of WRN-Ku70 interaction results in aberrant resection of stalled replication forks. Together, we define the architecture of the Ku-WRN exonuclease domain interface and its impact on WRN exonuclease activity, recruitment and replication fork processing. Structural basis of Ku-mediated activation of WRN exonuclease activity.,Zahid S, Chauvat J, Ceppi I, Cappiello F, Perdichizzi B, Frit P, Gomez D, Hardwick SW, Legrand P, Karazi J, Baconnais S, Pehau-Arnaudet G, Britton S, Charbonnier JB, Chaplin AK, Pichierri P, Cejka P, Calsou P, Ropars V Nat Commun. 2026 May 13. doi: 10.1038/s41467-026-71888-w. PMID:42129166[8] From MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine. References
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