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Updated: Jul 3, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
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.
Abstract:
Ataxia telangiectasia and Rad3-related (ATR) is a phosphoinositol-3-kinase like kinase (PIKK) that initiates a signal transduction response to replication fork stalling. Defects in ATR signalling have been reported in several disorders characterized by microcephaly and growth delay. Here, we gain insight into factors influencing the ATR signalling pathway and consider how they can be exploited for diagnostic purposes. Activation of ATR at stalled replication forks leads to intra-S and G2/M phase checkpoint arrest. ATR also phosphorylates gamma-H2AX at single-stranded (ss) DNA regions generated during nucleotide excision repair (NER) in non-replicating cells, but the critical analysis of any functional consequence has not been reported. Here, we show that UV irradiation of G2 phase cells causes ATR-dependent but replication-independent G2/M checkpoint arrest. This process requires the Nbs1 N-terminus encompassing the FHA and BRCT domains but not the Nbs1 C-terminus in contrast to ATM-dependent activation of G2/M arrest in response to ionizing radiation. Thus, Nbs1 has a function in ATR signalling in a manner distinct to any role at stalled replication forks. Replication-independent ATR signalling also requires the mediator proteins, 53BP1 and MDC1, providing direct evidence for their role in ATR signalling, but not H2AX. Finally, the process is activated in Cockayne's syndrome but not Xeroderma pigmentosum group A cells providing evidence that ssDNA regions generated during NER are the ATR-pathway-specific activating lesion. Replication-independent G2/M checkpoint arrest represents a suitable assay to specifically identify patients with defective ATR signalling, including Seckel syndrome, Nijmegen breakage syndrome and MCPH-1-dependent primary microcephaly.
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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In eukaryotes, the initiation of replication occurs at many sites on the chromosomes, called the origins of replication.
S-Cdk Initiates DNA Replication
Two states at the origin of replication
In eukaryotes, the initiation of replication occurs at many sites on the chromosomes, called the origins of replication.

