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MMS-induced primary aneuploidy and other genotoxic effects in mitotic cells of Aspergillus
1Department of Biology, McGill University, Montreal, Canada.
Abstract:
The possibility of more than 1 target for genotoxic effects of methyl methanesulphonate (MMS) was investigated, using mitotic test systems of the fungus Aspergillus. Haploid and diploid strains were exposed, either as dormant conidia or during mitosis, and analysed for induced aneuploidy and effects on genetic segregation. MMS treatment of haploid strains resulted in dose-dependent increases of stable mutants with altered phenotypes and semi-stable unbalanced aberrations (presumably duplications). In addition, but only in dividing cells, MMS induced unstable aneuploids. These mostly were hyperhaploid with few extra chromosomes and could be identified by comparison with standard disomic phenotypes. When well-marked diploids were treated 3 types of effect could be distinguished, using genetic and phenotypic criteria: (1) Clastogenic and mutagenic effects which caused dose-dependent increases of partial aneuploids with various abnormal phenotypes. These showed secondary genetic segregation of all types and produced euploid normal sectors by eliminating damaged chromosome segments. In addition, but only in dividing nuclei, MMS induced 2 types of segregation: (2) Reciprocal crossing-over at high frequency, recognisable as half or quarter colonies of mutant colour and in some cases as 'twin spots' (i.e., complementary pairs); (3) Trisomics and other aneuploids which showed characteristic phenotypes and expected segregation of markers: the types recovered indicate random malsegregation of chromosomes (occasional deviations resulted from coincidence with induced crossing-over). These results suggest that MMS may have 2 (or more) targets for genotoxic effects: DNA, as evident from induced mutations and aberrations, and from induced recombination in dividing cells; some non-DNA target (nucleotide or protein) essential for nuclear division and susceptible to alkylation, resulting in malsegregation and primary aneuploidy.
Insights
Methyl methanesulphonate (MMS) genotoxicity was studied in Aspergillus. Results indicate MMS targets DNA for mutations and recombination, and a non-DNA component for chromosome missegregation.
Area of Science:
- Genetics
- Molecular Biology
- Mycology
Background:
- Methyl methanesulphonate (MMS) is a known genotoxic agent.
- Understanding the specific targets of genotoxic agents is crucial for risk assessment.
Purpose of the Study:
- To investigate the potential for multiple genotoxic targets of methyl methanesulphonate (MMS).
- To analyze the effects of MMS on aneuploidy and genetic segregation in fungal mitotic systems.
Main Methods:
- Utilized mitotic test systems of the fungus Aspergillus, employing haploid and diploid strains.
- Exposed fungal cells as dormant conidia and during mitosis.
- Analyzed for induced aneuploidy, genetic segregation, mutations, and chromosomal aberrations.
Main Results:
- MMS treatment of haploid strains induced dose-dependent mutations and duplications.
- In dividing cells, MMS caused unstable aneuploids and clastogenic/mutagenic effects leading to partial aneuploids.
- MMS also induced reciprocal crossing-over and trisomics/aneuploids in dividing diploid nuclei, suggesting random chromosome malsegregation.
Conclusions:
- MMS exhibits genotoxic effects on at least two distinct targets.
- One target is DNA, leading to mutations and recombination.
- A second, non-DNA target (nucleotide or protein) involved in nuclear division is alkylated, causing chromosome missegregation and aneuploidy.
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