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Updated: May 20, 2026

Dissection of Drosophila Ovaries
Published on: October 19, 2006
Drosophila FMRP participates in the DNA damage response by regulating G2/M cell cycle checkpoint and apoptosis
Wei Liu1, Fangfang Jiang, Xiaolin Bi
1Key Laboratory for Molecular and Developmental Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, People’s Republic of China.
Abstract:
Fragile X syndrome, the most common form of inherited mental retardation, is caused by the loss of the fragile X mental retardation protein (FMRP). FMRP is a ubiquitously expressed, multi-domain RNA-binding protein, but its in vivo function remains poorly understood. Recent studies have shown that FMRP participates in cell cycle control during development. Here, we used Drosophila mutants to test if FMRP plays a role in DNA damage response under genotoxic stress. We found significantly fewer dfmr1 mutants survived to adulthood than wild-types following irradiation or exposure to chemical mutagens, demonstrating that the loss of drosophila FMRP (dFMRP) results in hypersensitivity to genotoxic stress. Genotoxic stress significantly reduced mitotic cells in wild-type brains, indicating the activation of a DNA damage-induced G2/M checkpoint, while mitosis was only moderately suppressed in dfmr1 mutants. Elevated expression of cyclin B, a protein critical for the G2 to M transition, was observed in the larval brains of dfmr1 mutants. CycB mRNA transcripts were enriched in the dFMRP-containing complex, suggesting that dFMRP regulates DNA damage-induced G2/M checkpoint by repressing CycB mRNA translation. Reducing CycB dose by half in dfmr1 mutants rescued the defective G2/M checkpoint and reversed hypersensitivity to genotoxic stress. In addition, dfmr1 mutants exhibited more DNA breaks and elevated p53-dependent apoptosis following irradiation. Moreover, a loss-of-heterozygosity assay showed decreased irradiation-induced genome stability in dfmr1 mutants. Thus, dFMRP maintains genome stability under genotoxic stress and regulates the G2/M DNA damage checkpoint by suppressing CycB expression.
Insights
The fragile X mental retardation protein (FMRP) is crucial for DNA damage response. Loss of drosophila FMRP (dFMRP) causes hypersensitivity to genotoxic stress by affecting cell cycle checkpoints and genome stability.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- Fragile X syndrome, a common inherited intellectual disability, results from FMRP loss.
- FMRP's in vivo function is unclear, though it's implicated in cell cycle control.
- This study investigates FMRP's role in DNA damage response.
Purpose of the Study:
- To determine if Drosophila FMRP (dFMRP) influences DNA damage response under genotoxic stress.
- To elucidate the mechanism by which dFMRP regulates the G2/M DNA damage checkpoint.
Main Methods:
- Utilized Drosophila mutants to assess survival rates after genotoxic stress (irradiation, chemical mutagens).
- Analyzed cell cycle progression (mitotic index) and apoptosis in wild-type and dfmr1 mutant brains.
- Investigated cyclin B expression and its regulation by dFMRP using molecular assays.
Main Results:
- dfmr1 mutants showed hypersensitivity to genotoxic stress and reduced survival.
- Loss of dFMRP impaired the DNA damage-induced G2/M checkpoint activation.
- dFMRP represses cyclin B translation, and reducing cyclin B dosage rescued the checkpoint defect and stress sensitivity.
Conclusions:
- dFMRP is essential for maintaining genome stability under genotoxic stress.
- dFMRP regulates the G2/M DNA damage checkpoint by suppressing cyclin B expression.
- dFMRP's function in DNA damage response provides insights into Fragile X syndrome pathogenesis.
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