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Measurement of Mitochondrial Respiration in Human and Mouse Skeletal Muscle Fibers by High-Resolution Respirometry
Published on: October 4, 2024
Cryopreservation of human skeletal muscle impairs mitochondrial function
S Larsen1, C Wright-Paradis, E Gnaiger
1Department of Biomedical Sciences, University of Copenhagen, Copenhagen, Denmark. stelar@sund.ku.dk
Cryo Letters
|July 25, 2012
Summary
Cryopreservation significantly reduces mitochondrial function in human skeletal muscle. This study found impaired oxidative phosphorylation and potential cytochrome c loss after one year, indicating poor maintenance of mitochondrial functionality.
Area of Science:
- Cellular Biology
- Mitochondrial Physiology
- Cryobiology
Background:
- Mitochondrial functional analysis is crucial for understanding cellular energy metabolism.
- Previous research on cryopreservation of mitochondria yielded conflicting results across different tissues.
- Long-term cryopreservation effects on human skeletal muscle mitochondria remain unclear.
Purpose of the Study:
- To assess the functional integrity of mitochondria in human skeletal muscle following one year of cryopreservation.
- To determine the impact of cryopreservation on mitochondrial respiration and oxidative phosphorylation capacity.
- To investigate potential mechanisms of mitochondrial dysfunction post-cryopreservation.
Main Methods:
- Human skeletal muscle samples were cryopreserved for one year using dimethyl sulfoxide (DMSO).
- Thawed muscle fibers were permeabilized with saponin.
- Mitochondrial respiration was measured using high-resolution respirometry.
Main Results:
- A significant reduction in oxidative phosphorylation capacity was observed in cryopreserved samples (P < 0.05).
- Respiration linked to Complex I was more impaired than Complex II following cryopreservation (P < 0.05).
- Addition of cytochrome c indicated mitochondrial loss of this essential respiratory protein.
Conclusions:
- Cryopreservation for one year does not maintain normal mitochondrial functionality in human skeletal muscle.
- The study highlights significant impairment of mitochondrial respiration and potential damage to the electron transport chain.
- Findings suggest cryopreservation is not a suitable method for preserving functional mitochondria in skeletal muscle for later analysis.

