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Sensing chemical-induced genotoxicity and oxidative stress via yeast-based reporter assays using NanoLuc luciferase
Minami Shichinohe1, Shun Ohkawa1, Yuu Hirose2
1Molecular Genetics Laboratory, Toyohashi, Japan.
Abstract:
Mutagens and oxidative agents damage biomolecules, such as DNA; therefore, detecting genotoxic and oxidative chemicals is crucial for maintaining human health. To address this, we have developed several types of yeast-based reporter assays designed to detect DNA damage and oxidative stress. This study aimed to develop a novel yeast-based assay using a codon-optimized stable or unstable NanoLuc luciferase (yNluc and yNluCP) gene linked to a DNA damage- or oxidative stress-responsive promoter, enabling convenient sensing genotoxicity or oxidative stress, respectively. End-point luciferase assays using yeasts with a chromosomally integrated RNR3 promoter (PRNR3)-driven yNluc gene exhibited high levels of chemiluminescence via NanoLuc luciferase and higher fold induction by hydroxyurea than a multi-copy plasmid-based assay. Additionally, the integrated reporter system detected genotoxicity caused by four different types of chemicals. Oxidants (hydrogen peroxide, tert-butyl hydroperoxide, and menadione) were successfully detected through transient expressions of luciferase activity in real-time luciferase assay using yeasts with a chromosomally integrated TRX2 promoter (PTRX2)-linked yNlucCP gene. However, the luciferase activity was gradually induced in yeasts with a multi-copy reporter plasmid, and their expression profiles were notably distinct from those observed in chromosomally integrated yeasts. The responses of yNlucCP gene against three oxidative chemicals, but not diamide and zinc oxide suspension, were observed using chromosomally integrated reporter yeasts. Given that yeast cells with chromosomally integrated PRNR3-linked yNluc and PTRX2-linked yNlucCP genes express strong chemiluminescence signals and are easily maintained and handled without restrictive nutrient medium, these yeast strains with NanoLuc reporters may prove useful for screening potential genotoxic and oxidative chemicals.
Insights
New yeast reporter assays detect genotoxicity and oxidative stress. These assays use NanoLuc luciferase (yNluc) and offer a sensitive, convenient method for screening harmful chemicals.
Area of Science:
- Biotechnology
- Molecular Biology
- Environmental Toxicology
Background:
- Genotoxic and oxidative chemicals pose risks to human health by damaging DNA and biomolecules.
- Existing methods for detecting these agents can be improved for sensitivity and convenience.
Purpose of the Study:
- To develop novel yeast-based reporter assays for detecting genotoxicity and oxidative stress.
- To utilize codon-optimized NanoLuc luciferase (yNluc and yNluCP) linked to specific promoters for sensing these stresses.
Main Methods:
- Constructed yeast strains with chromosomally integrated reporter genes (yNluc or yNluCP) driven by DNA damage (PRNR3) or oxidative stress (PTRX2) responsive promoters.
- Performed end-point and real-time luciferase assays to measure chemiluminescence and assess reporter gene induction.
- Evaluated reporter system performance against various genotoxic and oxidative chemicals.
Main Results:
- The chromosomally integrated PRNR3-yNluc system showed high chemiluminescence and fold induction by hydroxyurea compared to plasmid-based systems.
- The integrated reporter system successfully detected genotoxicity from four different chemicals.
- The PTRX2-yNlucCP system detected oxidants like hydrogen peroxide, tert-butyl hydroperoxide, and menadione in real-time assays.
- Integrated reporter yeast strains demonstrated robust responses to specific oxidative chemicals, unlike plasmid-based counterparts.
Conclusions:
- Yeast strains with chromosomally integrated PRNR3-yNluc and PTRX2-yNlucCP reporters exhibit strong signals and ease of use.
- These NanoLuc-based yeast systems are promising tools for screening potential genotoxic and oxidative chemicals efficiently.
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