Related Experiment Video
Updated: May 24, 2026

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
A global perspective of the genetic basis for carbonyl stress resistance
Abstract:
The accumulation of protein adducts caused by carbonyl stress (CS) is a hallmark of cellular aging and other diseases, yet the detailed cellular effects of this universal phenomena are poorly understood. An understanding of the global effects of CS will provide insight into disease mechanisms and can guide the development of therapeutics and lifestyle changes to ameliorate their effects. To identify cellular functions important for the response to carbonyl stress, multiple genome-wide genetic screens were performed using two known inducers of CS. We found that different cellular functions were required for resistance to stress induced by methylglyoxal (MG) and glyoxal (GLY). Specifically, we demonstrate the importance of macromolecule catabolism processes for resistance to MG, confirming and extending known mechanisms of MG toxicity, including modification of DNA, RNA, and proteins. Combining our results with related studies that examined the effects of ROS allowed a comprehensive view of the diverse range of cellular functions affected by both oxidative and carbonyl stress. To understand how these diverse cellular functions interact, we performed a quantitative epistasis analysis by creating multimutant strains from those individual genes required for glyoxal resistance. This analysis allowed us to define novel glyoxal-dependent genetic interactions. In summary, using multiple genome-wide approaches provides an effective approach to dissect the poorly understood effects of glyoxal in vivo. These data, observations, and comprehensive dataset provide 1) a comprehensive view of carbonyl stress, 2) a resource for future studies in other cell types, and 3) a demonstration of how inexpensive cell-based assays can identify complex gene-environment toxicities.
Insights
Carbonyl stress (CS) impacts aging and disease. This study identified cellular functions crucial for resisting methylglyoxal and glyoxal, revealing new genetic interactions and insights into stress response.
Area of Science:
- Cellular Biology
- Molecular Biology
- Toxicology
Background:
- Carbonyl stress (CS) leads to protein adducts, a key feature of cellular aging and disease.
- The precise cellular effects of CS remain largely unknown, hindering therapeutic development.
Purpose of the Study:
- To identify cellular functions involved in responding to carbonyl stress.
- To understand the distinct cellular responses to methylglyoxal (MG) and glyoxal (GLY).
Main Methods:
- Performed genome-wide genetic screens using two CS inducers (MG and GLY).
- Conducted quantitative epistasis analysis on multimutant strains for glyoxal resistance.
- Integrated findings with studies on reactive oxygen species (ROS) effects.
Main Results:
- Identified distinct cellular functions required for resistance to MG versus GLY.
- Demonstrated the role of macromolecule catabolism in MG resistance, including DNA, RNA, and protein modification.
- Defined novel glyoxal-dependent genetic interactions through epistasis analysis.
Conclusions:
- Genome-wide approaches effectively dissect the in vivo effects of glyoxal.
- The study provides a comprehensive view of carbonyl stress and a resource for future research.
- Developed cell-based assays to identify complex gene-environment toxicities.
Related Concept Videos
Other Stress Responses in Bacteria
Human Genetics
The complex relationship between genetics and psychology is observable through common biological components such...
Principles of Pharmacogenetics: Types of Genetic Variants
Applications of Stress
The...
Genetic Material
Responses to Salt Stress

