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Updated: Aug 1, 2026

Gene-targeted Random Mutagenesis to Select Heterochromatin-destabilizing Proteasome Mutants in Fission Yeast
Published on: May 15, 2018
Inefficient growth arrest in response to dNTP starvation stimulates gene amplification through bridge-breakage-fusion
M F Poupon1, K A Smith, O B Chernova
1Cytogénétique Moléculaire et Oncologie, UMR 147 CNRS Institut Curie, Paris, France.
Abstract:
Cells often acquire resistance to the antiproliferative agents methotrexate (MTX) or N-phosphonacetyl-L-aspartate (PALA) through amplification of genes encoding the target enzymes dihydrofolate reductase or carbamylphosphate synthetase/aspartate transcarbamylase/dihydroorotase (CAD), respectively. We showed previously that Syrian hamster BHK cells resistant to selective concentrations of PALA (approximately 3 x ID50) arise at a rate of approximately 10(-4) per cell per generation and contain amplifications of the CAD gene as ladder-like structures on one of the two B9 chromosomes, where CAD is normally located. We now find that BHK cells resistant to high concentrations of PALA (approximately 15 x ID50) appear only after prior exposure to selective concentrations of PALA for approximately 72 h. Furthermore, in contrast to untreated cells, BHK cells pretreated with selective concentrations of MTX give colonies in high concentrations of PALA, and cells pretreated with selective concentrations of PALA give colonies in high concentrations of MTX or 5-fluorouracil. As judged by measuring numbers of cells and metaphase cell pairs, BHK cells do not arrest completely when starved for pyrimidine nucleotides by treatment with selective concentrations of PALA for up to 72 h. We propose that DNA damage, caused when cells fail to stop DNA synthesis promptly under conditions of dNTP starvation, stimulates amplification throughout the genome by mechanisms--such as bridge-breakage-fusion cycles--that are triggered by broken DNA. Amplified CAD genes were analyzed by fluorescence in situ hybridization both in cells where amplification was induced by PALA pretreatment and in cells in which the amplification occurred spontaneously, before selection with PALA. The ladder-like structures that result from bridge-breakage-fusion cycles were observed in both cases.
Insights
Cells can develop resistance to cancer drugs like methotrexate (MTX) and N-phosphonacetyl-L-aspartate (PALA) by amplifying genes. DNA damage from nutrient starvation triggers gene amplification via bridge-breakage-fusion cycles, observed as ladder-like structures.
Area of Science:
- Cell biology
- Genetics
- Molecular biology
Background:
- Cells acquire drug resistance through gene amplification, notably dihydrofolate reductase for MTX and carbamylphosphate synthetase/aspartate transcarbamylase/dihydroorotase (CAD) for PALA.
- Previously, Syrian hamster BHK cells resistant to PALA showed CAD gene amplification as ladder-like structures on chromosome B9.
Purpose of the Study:
- To investigate the mechanisms of gene amplification in response to drug-induced cellular stress.
- To explore the role of DNA damage and specific cellular pathways in mediating gene amplification.
Main Methods:
- Utilized Syrian hamster BHK cells and exposed them to varying concentrations of PALA and MTX.
- Monitored cell growth and survival under selective drug pressures.
- Analyzed gene amplification patterns using fluorescence in situ hybridization (FISH).
- Assessed cell cycle progression and DNA synthesis under nutrient starvation conditions.
Main Results:
- High-concentration PALA resistance required prior exposure to selective PALA concentrations.
- Pretreatment with MTX or PALA enabled colony formation in high concentrations of other drugs.
- Cells starved for pyrimidine nucleotides did not completely arrest, suggesting ongoing DNA synthesis.
- FISH analysis revealed ladder-like structures indicative of bridge-breakage-fusion cycles in amplified CAD genes, both spontaneously and induced.
Conclusions:
- DNA damage, resulting from the failure to halt DNA synthesis during dNTP starvation, likely triggers genome-wide amplification.
- Bridge-breakage-fusion cycles are a key mechanism underlying gene amplification, observable as ladder-like structures.
- This study elucidates a mechanism linking DNA damage to gene amplification for drug resistance.
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