Replication independent ATR signalling leads to G2/M arrest requiring Nbs1, 53BP1 and MDC1

Tom Stiff1, Karen Cerosaletti, Patrick Concannon

  • 1Genome Damage and Stability Centre, University of Sussex, Brighton, East Sussex BN1 9RQ, UK.

Insights

Ataxia telangiectasia and Rad3-related (ATR) signaling, crucial for DNA repair, can be activated independently of replication. This discovery offers a new diagnostic assay for ATR-related disorders like microcephaly.

Area of Science:

  • DNA damage response
  • Cell cycle checkpoints
  • Molecular biology

Background:

  • Ataxia telangiectasia and Rad3-related (ATR) is a kinase vital for responding to stalled replication forks.
  • ATR pathway defects are linked to microcephaly and growth delay syndromes.
  • ATR's role in non-replicating cells during nucleotide excision repair (NER) was unclear.

Purpose of the Study:

  • To investigate ATR signaling in replication-independent contexts.
  • To identify factors and DNA lesions that activate ATR outside of replication.
  • To explore the diagnostic potential of replication-independent ATR signaling.

Main Methods:

  • UV irradiation of G2 phase cells to induce DNA damage.
  • Analysis of G2/M checkpoint arrest.
  • Investigating the roles of Nbs1, 53BP1, MDC1, and H2AX.
  • Testing cell lines with defects in NER (Cockayne's syndrome, Xeroderma pigmentosum group A).

Main Results:

  • UV irradiation triggers ATR-dependent G2/M arrest independent of replication.
  • This process requires the Nbs1 N-terminus but not the C-terminus.
  • Mediator proteins 53BP1 and MDC1 are essential for replication-independent ATR signaling.
  • The pathway is activated by single-stranded DNA (ssDNA) generated during NER, as seen in Cockayne's syndrome cells.

Conclusions:

  • Replication-independent ATR signaling is activated by ssDNA from NER.
  • Nbs1 functions distinctly in ATR signaling compared to ATM signaling.
  • Replication-independent G2/M checkpoint arrest serves as a specific assay for ATR pathway defects.
  • This assay can identify patients with Seckel syndrome, Nijmegen breakage syndrome, and primary microcephaly.

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