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Updated: Sep 26, 2026

Study of the DNA Damage Checkpoint using Xenopus Egg Extracts
Published on: November 5, 2012
The Drosophila chk2 gene loki is essential for embryonic DNA double-strand-break checkpoints induced in S phase or G2
Nisrine Masrouha1, Long Yang, Sirine Hijal
1Department of Biology, McGill University, Montreal, Quebec H3A 1B1, Canada.
Abstract:
Cell cycle checkpoints are signal transduction pathways that control the order and timing of cell cycle transitions, ensuring that critical events are completed before the occurrence of the next cell cycle transition. The Chk2 family of kinases is known to play a central role in mediating the cellular responses to DNA damage or DNA replication blocks in various organisms. Here we show through a phylogenetic study that the Drosophila melanogaster serine/threonine kinase Loki is the homolog of the yeast Mek1p, Rad53p, Dun1p, and Cds1 proteins as well as the human Chk2. Functional analyses allowed us to conclude that, in flies, chk2 is involved in monitoring double-strand breaks (DSBs) caused by irradiation during S and G2 phases. In this process it plays an essential role in inducing a cell cycle arrest in embryonic cells. Our results also show that, in contrast to C. elegans chk2, Drosophila chk2 is not essential for normal meiosis and recombination, and it also appears to be dispensable for the MMS-induced DNA damage checkpoint and the HU-induced DNA replication checkpoint during larval development. In addition, Drosophila chk2 does not act at the same cell cycle phases as its yeast homologs, but seems rather to be involved in a pathway similar to the mammalian one, which involves signaling through the ATM/Chk2 pathway in response to genotoxic insults. As mutations in human chk2 were linked to several cancers, these similarities point to the usefulness of the Drosophila model system.
Insights
Drosophila melanogaster Chk2 kinase, Loki, is essential for embryonic cell cycle arrest following DNA damage. This finding highlights the utility of Drosophila as a model for studying cancer-related pathways.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Cell cycle checkpoints regulate cell cycle transitions and ensure completion of critical events.
- The Chk2 kinase family mediates cellular responses to DNA damage and replication stress.
Purpose of the Study:
- To identify the Drosophila homolog of Chk2 and investigate its role in DNA damage response.
- To compare the function of Drosophila Chk2 with its homologs in yeast and mammals.
Main Methods:
- Phylogenetic analysis to identify Loki as the Drosophila Chk2 homolog.
- Functional analyses involving irradiation-induced double-strand breaks (DSBs) in embryonic cells.
Main Results:
- Drosophila Chk2 (Loki) is homologous to yeast and human Chk2 proteins.
- Drosophila Chk2 is crucial for monitoring DSBs and inducing cell cycle arrest in S and G2 phases of embryonic cells.
- Unlike C. elegans Chk2, Drosophila Chk2 is not essential for meiosis, recombination, or larval DNA damage/replication checkpoints.
Conclusions:
- Drosophila Chk2 functions in a manner similar to the mammalian ATM/Chk2 pathway in response to genotoxic insults.
- The Drosophila model system is valuable for studying cancer-related pathways involving Chk2.
- Drosophila Chk2 plays a distinct role compared to its yeast homologs, particularly in embryonic cell cycle regulation.
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