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Novel Assay for Cold Nociception in Drosophila Larvae
Published on: April 3, 2017
Mitonuclear Interactions Produce Diverging Responses to Mild Stress in Drosophila Larvae
Enrique Rodríguez1, Finley Grover Thomas1, M Florencia Camus1
1Research Department of Genetics, Evolution and Environment, University College London, London, United Kingdom.
Abstract:
Mitochondrial function depends on direct interactions between respiratory proteins encoded by genes in two genomes, mitochondrial and nuclear, which evolve in very different ways. Serious incompatibilities between these genomes can have severe effects on development, fitness and viability. The effect of subtle mitonuclear mismatches has received less attention, especially when subject to mild physiological stress. Here, we investigate how two distinct physiological stresses, metabolic stress (high-protein diet) and redox stress [the glutathione precursor N-acetyl cysteine (NAC)], affect development time, egg-to-adult viability, and the mitochondrial physiology of Drosophila larvae with an isogenic nuclear background set against three mitochondrial DNA (mtDNA) haplotypes: one coevolved (WT) and two slightly mismatched (COX and BAR). Larvae fed the high-protein diet developed faster and had greater viability in all haplotypes. The opposite was true of NAC-fed flies, especially those with the COX haplotype. Unexpectedly, the slightly mismatched BAR larvae developed fastest and were the most viable on both treatments, as well as control diets. These changes in larval development were linked to a shift to complex I-driven mitochondrial respiration in all haplotypes on the high-protein diet. In contrast, NAC increased respiration in COX larvae but drove a shift toward oxidation of proline and succinate. The flux of reactive oxygen species was increased in COX larvae treated with NAC and was associated with an increase in mtDNA copy number. Our results support the notion that subtle mitonuclear mismatches can lead to diverging responses to mild physiological stress, undermining fitness in some cases, but surprisingly improving outcomes in other ostensibly mismatched fly lines.
Insights
Subtle mismatches between mitochondrial and nuclear genomes impact Drosophila development under stress. Unexpectedly, some mismatched lines showed improved development and viability when exposed to metabolic or redox stress.
Area of Science:
- Evolutionary biology
- Genetics
- Mitochondrial physiology
Background:
- Mitochondrial and nuclear genomes interact for cellular respiration.
- Mismatches between these genomes can cause severe developmental issues.
- The impact of subtle mitonuclear incompatibilities under mild stress is less understood.
Purpose of the Study:
- To investigate the effects of metabolic and redox stress on Drosophila development and mitochondrial function.
- To examine how different mitochondrial DNA (mtDNA) haplotypes interact with nuclear genomes under stress.
- To determine the consequences of subtle mitonuclear mismatches on fitness and viability.
Main Methods:
- Utilized Drosophila larvae with an isogenic nuclear background and three mtDNA haplotypes (WT, COX, BAR).
- Exposed larvae to physiological stresses: high-protein diet (metabolic) and N-acetyl cysteine (NAC) (redox).
- Assessed development time, egg-to-adult viability, and mitochondrial respiration patterns.
Main Results:
- High-protein diet accelerated development and increased viability across all haplotypes.
- NAC treatment negatively impacted viability, particularly in the COX haplotype.
- The BAR haplotype, despite being mismatched, exhibited enhanced development and viability under both control and stress conditions.
- Metabolic stress induced a shift to complex I-driven respiration; NAC altered respiration and increased reactive oxygen species in COX larvae.
Conclusions:
- Subtle mitonuclear mismatches can lead to varied responses to physiological stress.
- While some mismatches reduce fitness, others can surprisingly enhance it.
- Understanding these interactions is crucial for comprehending organismal adaptation and resilience.

