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Updated: Aug 14, 2026

Studying Mitotic Checkpoint by Illustrating Dynamic Kinetochore Protein Behavior and Chromosome Motion in Living Drosophila Syncytial Embryos
Published on: June 14, 2012
The Drosophila ATM homologue Mei-41 has an essential checkpoint function at the midblastula transition
O C Sibon1, A Laurençon, R Hawley
1Department of Biochemistry and Cell Biology, Institute for Cell and Developmental Biology, State University of New York at Stony Brook, Stony Brook, New York, USA.
Background:
Drosophila embryogenesis is initiated by 13 rapid syncytial mitotic divisions that do not require zygotic gene activity. This maternally directed cleavage phase of development terminates at the midblastula transition (MBT), at which point the cell cycle slows dramatically, membranes surround the cortical nuclei to form a cellular blastoderm, and zygotic gene expression is first required.
Results:
We show that embryos lacking Mei-41, a Drosophila homologue of the ATM tumor suppressor, proceed through unusually short syncytial mitoses, fail to terminate syncytial division following mitosis 13, and degenerate without forming cells. A similar cleavage-stage arrest is produced by mutations in grapes, which encodes a homologue of the Checkpoint-1 kinase. We present biochemical, cytological and genetic data indicating that Mei-41 and Grapes are components of a conserved DNA-replication/damage checkpoint pathway that triggers inhibitory phosphorylation of the Cdc2 kinase and mediates resistance to replication inhibitors and DNA-damaging agents. This pathway is nonessential during postembryonic development, but it is required to terminate the cleavage stage at the MBT. Cyclins are required for Cdc2 kinase activity, and mutations in cyclin A and cyclin B bypass the requirement for mei-41 at the MBT. These mutations do not restore wild-type syncytial cell-cycle timing or the embryonic replication checkpoint, however, suggesting that Mei-41-mediated inhibition of Cdc2 has an additional essential function at the MBT.
Conclusions:
The Drosophila DNA-replication/damage checkpoint pathway can be activated by externally triggered DNA damage or replication defects throughout the life cycle, and under laboratory conditions this inducible function is nonessential. During early embryogenesis, however, this pathway is activated by developmental cues and is required for the transition from maternal to zygotic control of development at the MBT.
Insights
The DNA-replication/damage checkpoint pathway in Drosophila is crucial for embryonic development, ensuring proper cell cycle termination at the midblastula transition (MBT). Mutations in Mei-41 or grapes disrupt this process, leading to developmental arrest.
Area of Science:
- Developmental Biology
- Cell Cycle Regulation
- Genetics
Background:
- Drosophila embryogenesis begins with 13 rapid, maternally controlled syncytial mitotic divisions.
- Development transitions at the midblastula transition (MBT) with cell cycle slowing and zygotic gene activation.
- The MBT marks a critical shift from maternal to zygotic control of development.
Purpose of the Study:
- To investigate the role of Mei-41 and Grapes in Drosophila embryogenesis.
- To elucidate the function of the DNA-replication/damage checkpoint pathway during early development.
- To understand how this pathway regulates the MBT.
Main Methods:
- Genetic analysis of Mei-41 and grapes mutant embryos.
- Biochemical and cytological assays to study protein interactions and cell cycle regulation.
- Examination of cyclin A and cyclin B function in relation to Mei-41.
Main Results:
- Embryos lacking Mei-41 (a homologue of ATM) or Grapes (Checkpoint-1 kinase homologue) exhibit shortened syncytial mitoses and fail to undergo the MBT.
- Mei-41 and Grapes function in a conserved DNA-replication/damage checkpoint pathway that inhibits Cdc2 kinase.
- Mutations in cyclin A and cyclin B can bypass the requirement for Mei-41 at the MBT but do not restore normal cell cycle timing or the replication checkpoint.
Conclusions:
- The DNA-replication/damage checkpoint pathway is essential for terminating syncytial divisions at the MBT in Drosophila.
- This pathway is activated by developmental cues during embryogenesis, not just external damage.
- Mei-41 has an additional essential function at the MBT beyond Cdc2 inhibition.
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