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TET1 deficiency attenuates the DNA damage response and promotes resistance to DNA damaging agents
Jonathan B Coulter1,2, Hernando Lopez-Bertoni1,3, Katherine J Kuhns1,2
1a Department of Neurology , Hugo W. Moser Research Institute at Kennedy Krieger , 707 N. Broadway, Baltimore , MD , USA.
Abstract:
Recent studies have shown that loss of TET1 may play a significant role in the formation of tumors. Because genomic instability is a hallmark of cancer, we examined the potential involvement of 10-11 translocation 1 (TET1) in the DNA damage response (DDR). Here we demonstrate that, in response to clinically relevant doses of ionizing radiation (IR), human glial cells made TET1-deficient with lentiviral vectors displayed greater numbers of colony forming units and lower levels of apoptotic markers compared with glial cells transduced with control vectors; yet, they harbored greater DNA strand breaks. The G2/M check point and expression of cyclin B1 were greatly diminished in TET1-deficient cells, and TET1-deficient cells displayed lower levels of γH2A.x following exposure to IR. Levels of DNA-PKcs, which are DNA-PK complex members, were lower in TET1-deficient cells compared with control cell lines. However, levels of ATM were similar in both cell lines. Cyclin B1, DNA-PKcs, and γH2A.x levels were each rescued by reintroduction of the TET1 catalytic domain. Finally, cytosine methylation within intron 1 of PRKDC, the gene encoding DNA-PKcs, was significantly higher upon depletion of TET1. Taken together, this study illustrates the involvement of TET1 in the different arms of the DDR and suggests its loss results in the continued survival of cells with genomic instability.
Insights
Loss of TET1 (10-11 translocation 1) impairs the DNA damage response, leading to increased genomic instability and tumor formation. Restoring TET1 function rescues DNA repair mechanisms and reduces cell survival with DNA damage.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Genomic instability is a hallmark of cancer.
- Loss of TET1 (10-11 translocation 1) is implicated in tumor formation.
- The role of TET1 in DNA damage response (DDR) is not fully understood.
Purpose of the Study:
- To investigate the involvement of TET1 in the DDR pathway.
- To determine the effect of TET1 deficiency on cellular response to ionizing radiation (IR).
Main Methods:
- Utilized lentiviral vectors to create TET1-deficient human glial cells.
- Exposed cells to clinically relevant doses of ionizing radiation (IR).
- Assessed DNA strand breaks, apoptosis markers, G2/M checkpoint, cyclin B1, γH2A.x, ATM, and DNA-PKcs levels.
Main Results:
- TET1-deficient cells showed increased DNA strand breaks and colony-forming units but reduced apoptosis after IR.
- Depletion of TET1 diminished the G2/M checkpoint, cyclin B1, and γH2A.x levels.
- TET1 deficiency led to lower DNA-PKcs levels and increased cytosine methylation in the PRKDC gene.
Conclusions:
- TET1 plays a crucial role in multiple aspects of the DNA damage response.
- Loss of TET1 contributes to genomic instability and potentially tumor development by allowing survival of damaged cells.
- Reintroduction of TET1's catalytic domain rescued DNA repair markers and DDR function.
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