Related Experiment Video
Updated: May 14, 2026

Studying Mitotic Checkpoint by Illustrating Dynamic Kinetochore Protein Behavior and Chromosome Motion in Living Drosophila Syncytial Embryos
Published on: June 14, 2012
Drosophila MOF controls Checkpoint protein2 and regulates genomic stability during early embryogenesis
Sreerangam N C V L Pushpavalli1, Arpita Sarkar, M Janaki Ramaiah
1Centre for Chemical Biology, Indian Institute of Chemical Technology, Hyderabad 500607, India.
Background:
In Drosophila embryos, checkpoints maintain genome stability by delaying cell cycle progression that allows time for damage repair or to complete DNA synthesis. Drosophila MOF, a member of MYST histone acetyl transferase is an essential component of male X hyperactivation process. Until recently its involvement in G2/M cell cycle arrest and defects in ionizing radiation induced DNA damage pathways was not well established.
Results:
Drosophila MOF is highly expressed during early embryogenesis. In the present study we show that haplo-insufficiency of maternal MOF leads to spontaneous mitotic defects like mitotic asynchrony, mitotic catastrophe and chromatid bridges in the syncytial embryos. Such abnormal nuclei are eliminated and digested in the yolk tissues by nuclear fall out mechanism. MOF negatively regulates Drosophila checkpoint kinase 2 tumor suppressor homologue. In response to DNA damage the checkpoint gene Chk2 (Drosophila mnk) is activated in the mof mutants, there by causing centrosomal inactivation suggesting its role in response to genotoxic stress. A drastic decrease in the fall out nuclei in the syncytial embryos derived from mof¹/+; mnkp⁶/+ females further confirms the role of DNA damage response gene Chk2 to ensure the removal of abnormal nuclei from the embryonic precursor pool and maintain genome stability. The fact that mof mutants undergo DNA damage has been further elucidated by the increased number of single and double stranded DNA breaks.
Conclusion:
mof mutants exhibited genomic instability as evidenced by the occurance of frequent mitotic bridges in anaphase, asynchronous nuclear divisions, disruption of cytoskeleton, inactivation of centrosomes finally leading to DNA damage. Our findings are consistent to what has been reported earlier in mammals that; reduced levels of MOF resulted in increased genomic instability while total loss resulted in lethality. The study can be further extended using Drosophila as model system and carry out the interaction of MOF with the known components of the DNA damage pathway.
Insights
Reduced levels of Drosophila MOF cause genomic instability, leading to mitotic defects and DNA damage. This highlights MOF
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Cell cycle checkpoints are crucial for maintaining genome stability by enabling DNA repair and synthesis.
- Drosophila MOF (MYST histone acetyl transferase) is vital for male X chromosome hyperactivation.
- The role of Drosophila MOF in cell cycle arrest and DNA damage response pathways was previously unclear.
Purpose of the Study:
- To investigate the function of Drosophila MOF in genome stability and DNA damage response during embryogenesis.
- To elucidate the molecular mechanisms underlying MOF's role in cell cycle regulation and DNA repair.
Main Methods:
- Analysis of mitotic defects in Drosophila embryos with varying MOF levels.
- Investigating the expression and activity of checkpoint genes, including Chk2 (mnk), in MOF mutants.
- Quantifying DNA damage and nuclear abnormalities in syncytial embryos.
Main Results:
- Haplo-insufficiency of maternal MOF leads to spontaneous mitotic defects such as asynchrony, catastrophe, and chromatid bridges.
- MOF negatively regulates Drosophila checkpoint kinase 2 (Chk2/mnk), which is activated in mof mutants, causing centrosomal inactivation.
- Increased DNA breaks and a decrease in nuclear fallout in specific mutant combinations confirm Chk2's role in removing abnormal nuclei and maintaining genome stability.
Conclusions:
- MOF mutants exhibit genomic instability, characterized by mitotic errors, cytoskeletal disruption, and DNA damage.
- Reduced MOF levels correlate with increased genomic instability, consistent with mammalian studies.
- Further research in Drosophila can explore MOF interactions within DNA damage pathways.
Related Concept Videos
M-Cdk Drives Transition Into Mitosis
Cyclin-dependent kinases, or Cdks, work in concert with cyclins to control cell cycle transitions. M-Cdk, a complex of Cdk1 bound to M cyclin, is a well-known example of this coordinated control that drives the transition from the G2 to the M phase.
M cyclin...
The Cell Cycle Control System
Cyclins and cyclin-dependent kinases (Cdks) are the primary cell cycle regulators and function at the cell...
The Cell Cycle Control System
Negative Regulator Molecules
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle

