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Updated: Aug 9, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Telomeric protein Pin2/TRF1 as an important ATM target in response to double strand DNA breaks
1Cancer Biology Program, Division of Hematology/Oncology, Department of Medicine, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, Massachusetts 02215, USA.
Abstract:
ATM mutations are responsible for the genetic disease ataxia-telangiectasia (A-T). ATM encodes a protein kinase that is activated by ionizing radiation-induced double strand DNA breaks. Cells derived from A-T patients show many abnormalities, including accelerated telomere loss and hypersensitivity to ionizing radiation; they enter into mitosis and apoptosis after DNA damage. Pin2 was originally identified as a protein involved in G(2)/M regulation and is almost identical to TRF1, a telomeric protein that negatively regulates telomere elongation. Pin2 and TRF1, probably encoded by the same gene, PIN2/TRF1, are regulated during the cell cycle. Furthermore, up-regulation of Pin2 or TRF1 induces mitotic entry and apoptosis, a phenotype similar to that of A-T cells after DNA damage. These results suggest that ATM may regulate the function of Pin2/TRF1, but their exact relationship remains unknown. Here we show that Pin2/TRF1 coimmunoprecipitated with ATM, and its phosphorylation was increased in an ATM-dependent manner by ionizing DNA damage. Furthermore, activated ATM directly phosphorylated Pin2/TRF1 preferentially on the conserved Ser(219)-Gln site in vitro and in vivo. The biological significance of this phosphorylation is substantiated by functional analyses of the phosphorylation site mutants. Although expression of Pin2 and its mutants has no detectable effect on telomere length in transient transfection, a Pin2 mutant refractory to ATM phosphorylation on Ser(219) potently induces mitotic entry and apoptosis and increases radiation hypersensitivity of A-T cells. In contrast, Pin2 mutants mimicking ATM phosphorylation on Ser(219) completely fail to induce apoptosis and also reduce radiation hypersensitivity of A-T cells. Interestingly, the phenotype of the phosphorylation-mimicking mutants is the same as that which resulted from inhibition of endogenous Pin2/TRF1 in A-T cells by its dominant-negative mutants. These results demonstrate for the first time that ATM interacts with and phosphorylates Pin2/TRF1 and suggest that Pin2/TRF1 may be involved in the cellular response to double strand DNA breaks.
Insights
ATM (ataxia-telangiectasia mutated) directly phosphorylates Pin2/TRF1, a protein involved in cell cycle regulation. This interaction is crucial for cellular responses to DNA damage, impacting mitosis and apoptosis in A-T cells.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Ataxia-telangiectasia (A-T) is a genetic disorder caused by ATM mutations.
- ATM (ataxia-telangiectasia mutated) is a kinase activated by DNA double-strand breaks.
- A-T cells exhibit telomere loss, radiation hypersensitivity, and aberrant mitosis/apoptosis.
Purpose of the Study:
- To investigate the relationship between ATM and Pin2/TRF1.
- To determine if ATM directly regulates Pin2/TRF1 function.
- To elucidate the role of Pin2/TRF1 phosphorylation by ATM in DNA damage response.
Main Methods:
- Co-immunoprecipitation to assess ATM-Pin2/TRF1 interaction.
- In vitro and in vivo kinase assays to confirm ATM phosphorylation of Pin2/TRF1.
- Functional analysis of Pin2/TRF1 phosphorylation site mutants in A-T cells.
Main Results:
- Pin2/TRF1 co-immunoprecipitated with ATM.
- ATM dependent phosphorylation of Pin2/TRF1 increased upon DNA damage.
- ATM directly phosphorylated Pin2/TRF1 at Ser(219).
- A non-phosphorylatable Pin2 mutant exacerbated A-T cell phenotypes, while mimicking mutants rescued them.
Conclusions:
- ATM directly interacts with and phosphorylates Pin2/TRF1.
- ATM-mediated phosphorylation of Pin2/TRF1 is critical for cellular response to DNA damage.
- Pin2/TRF1 is implicated in the DNA double-strand break response pathway.
Related Concept Videos
Telomeres and Telomerase
Fixing Double-strand Breaks
DNA Damage can Stall the Cell Cycle
Homologous Recombination
Restarting Stalled Replication Forks
DNA Damage Can Stall the Cell Cycle

