Related Experiment Video
Updated: Aug 11, 2025

Automated Measurements of Sleep and Locomotor Activity in Mexican Cavefish
Published on: March 21, 2019
Circadian rhythm disruption is associated with skeletal muscle dysfunction within the blind Mexican Cavefish
Luke Olsen1,2, Jaya Krishnan1, Charles Banks1
1Stowers Institute for Medical Research, Kansas City, MO 64110, USA.
Abstract:
Circadian control of physiology and metabolism is pervasive throughout nature, with circadian disruption contributing to premature aging, neurodegenerative disease, and type 2 diabetes (Musiek et al. 2016; Panda, 2016). It has become increasingly clear that peripheral tissues, such as skeletal muscle, possess cell-autonomous clocks crucial for metabolic homeostasis (Gabriel et al. 2021). In fact, disruption of the skeletal muscle circadian rhythm results in insulin resistance, sarcomere disorganization, and muscle weakness in both vertebrates and non-vertebrates - indicating that maintenance of a functional muscle circadian rhythm provides an adaptive advantage. We and others have found that cavefish possess a disrupted central circadian rhythm and, interestingly, a skeletal muscle phenotype strikingly similar to circadian knock-out mutants; namely, muscle loss, muscle weakness, and insulin resistance (Olsen et al. 2022; Riddle et al. 2018; Mack et al. 2021). However, whether the cavefish muscle phenotype results from muscle-specific circadian disruption remains untested. To this point, we investigated genome-wide, circadian-regulated gene expression within the skeletal muscle of the Astyanax mexicanus - comprised of the river-dwelling surface fish and troglobitic cavefish - providing novel insights into the evolutionary consequence of circadian disruption on skeletal muscle physiology.
Insights
Cavefish exhibit muscle weakness and insulin resistance, similar to circadian disruption effects. This study reveals muscle-specific gene expression changes in cavefish, linking circadian disruption to skeletal muscle physiology.
Area of Science:
- Chronobiology
- Skeletal Muscle Physiology
- Evolutionary Biology
Background:
- Circadian disruption is linked to aging, neurodegenerative diseases, and type 2 diabetes.
- Peripheral tissues, like skeletal muscle, have cell-autonomous clocks vital for metabolic homeostasis.
- Disrupted muscle circadian rhythms cause insulin resistance and muscle weakness.
Conclusions:
- Cavefish skeletal muscle exhibits altered circadian gene expression.
- This supports the hypothesis that muscle-specific circadian disruption contributes to cavefish phenotype.
- Findings offer insights into evolutionary adaptations to circadian disruption.

