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Updated: Jan 27, 2026

Assaying Locomotor Activity to Study Circadian Rhythms and Sleep Parameters in Drosophila
Published on: September 28, 2010
Sleep and circadian defects in a Drosophila model of mitochondrial encephalomyopathy
Keri J Fogle1,2, Catherina L Mobini1,2, Abygail S Paseos1,2
1Department of Pharmacology & Chemical Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA.
Abstract:
Mitochondrial encephalomyopathies (ME) are complex, incurable diseases characterized by severe bioenergetic distress that can affect the function of all major organ systems but is especially taxing to neuromuscular tissues. Animal models of MEs are rare, but the Drosophila ATP61 mutant is a stable, well-characterized genetic line that accurately models progressive human mitochondrial diseases such as Maternally-Inherited Leigh Syndrome (MILS), Neuropathy, Ataxia, and Retinitis Pigmentosa (NARP), and Familial Bilateral Striatal Necrosis (FBSN). While it is established that this model exhibits important hallmarks of ME, including excess cellular and mitochondrial reactive oxygen species, shortened lifespan, muscle degeneration, and stress-induced seizures, it is unknown whether it exhibits defects in sleep or circadian function. This is a clinically relevant question, as many neurological and neurodegenerative diseases are characterized by such disturbances, which can exacerbate other symptoms and worsen quality of life. Since Drosophila is highly amenable to sleep and circadian studies, we asked whether we could detect disease phenotypes in the circadian behaviors of ATP61 . Indeed, we found that day-time and night-time activity and sleep are altered through disease progression, and that circadian patterns are disrupted at both the behavioral and neuronal levels. These results establish ATP61 as an important model of sleep and circadian disruption in ME that can be studied mechanistically at the molecular, cellular, and behavioral level to uncover underlying pathophysiology and test novel therapies.
Insights
Mitochondrial encephalomyopathies (ME) disrupt sleep and circadian rhythms in Drosophila ATP6 mutants. This genetic model reveals disease progression impacting daily activity and neuronal function, offering insights into ME pathophysiology.
Area of Science:
- Neuroscience
- Genetics
- Cellular Biology
Background:
- Mitochondrial encephalomyopathies (ME) are severe, incurable diseases causing bioenergetic distress, particularly affecting neuromuscular tissues.
- The Drosophila ATP6 mutant is a valuable genetic model for human ME, exhibiting hallmarks like oxidative stress and muscle degeneration.
Purpose of the Study:
- To investigate whether the Drosophila ATP6 mutant model exhibits sleep and circadian rhythm disturbances characteristic of ME.
- To establish the ATP6 mutant as a model for studying ME-related sleep and circadian dysfunction.
Main Methods:
- Behavioral analysis of day-time and night-time activity and sleep patterns in ATP6 mutant flies.
- Neuronal-level assessment of circadian rhythm disruption in the context of ME.
Main Results:
- ATP6 mutant flies display altered activity and sleep patterns throughout disease progression.
- Both behavioral and neuronal levels show disrupted circadian patterns in the ME model.
- The study confirms significant sleep and circadian deficits in the ATP6 mutant model.
Conclusions:
- The Drosophila ATP6 mutant accurately models sleep and circadian disruption in mitochondrial encephalomyopathies.
- This model provides a platform for mechanistic studies and therapeutic testing for ME-related neurological symptoms.
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