DTL/CDT2 is essential for both CDT1 regulation and the early G2/M checkpoint
Christopher L Sansam1, Jennifer L Shepard, Kevin Lai
1Center for Cancer Research, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Abstract:
Checkpoint genes maintain genomic stability by arresting cells after DNA damage. Many of these genes also control cell cycle events in unperturbed cells. By conducting a screen for checkpoint genes in zebrafish, we found that dtl/cdt2 is an essential component of the early, radiation-induced G2/M checkpoint. We subsequently found that dtl/cdt2 is required for normal cell cycle control, primarily to prevent rereplication. Both the checkpoint and replication roles are conserved in human DTL. Our data indicate that the rereplication reflects a requirement for DTL in regulating CDT1, a protein required for prereplication complex formation. CDT1 is degraded in S phase to prevent rereplication, and following DNA damage to prevent origin firing. We show that DTL associates with the CUL4-DDB1 E3 ubiquitin ligase and is required for CDT1 down-regulation in unperturbed cells and following DNA damage. The cell cycle defects of Dtl-deficient zebrafish are suppressed by reducing Cdt1 levels. In contrast, the early G2/M checkpoint defect appears to be Cdt1-independent. Thus, DTL promotes genomic stability through two distinct mechanisms. First, it is an essential component of the CUL4-DDB1 complex that controls CDT1 levels, thereby preventing rereplication. Second, it is required for the early G2/M checkpoint.
Insights
DTL (deleted in T-lymphoma) is crucial for genomic stability. It prevents DNA rereplication by regulating CDT1 levels and also functions in the G2/M DNA damage checkpoint, ensuring cell cycle control.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Checkpoint genes are vital for maintaining genomic stability by halting cell division after DNA damage.
- These genes also regulate cell cycle progression in undamaged cells.
Purpose of the Study:
- To investigate the role of dtl/cdt2 in zebrafish DNA damage response and cell cycle control.
- To determine the conserved functions of DTL in human cells.
Main Methods:
- Zebrafish screen for checkpoint genes.
- Analysis of cell cycle control and DNA damage response pathways.
- Ubiquitin ligase complex association studies.
- CRISPR/Cas9 gene editing in zebrafish.
Main Results:
- dtl/cdt2 is essential for the early, radiation-induced G2/M checkpoint and prevents DNA rereplication.
- DTL regulates CDT1 degradation, a key protein for preventing rereplication and origin firing.
- DTL functions within the CUL4-DDB1 E3 ubiquitin ligase complex.
- Zebrafish cell cycle defects due to Dtl deficiency are rescued by reducing Cdt1 levels.
Conclusions:
- DTL promotes genomic stability through two distinct pathways: regulating CDT1 to prevent rereplication and contributing to the G2/M DNA damage checkpoint.
- The regulation of CDT1 by DTL is conserved in humans.
- DTL's role in the G2/M checkpoint appears independent of CDT1.
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