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In vitro Assessment of Myocardial Protection following Hypothermia-Preconditioning in a Human Cardiac Myocytes Model
Published on: October 27, 2020
Cardiac mitochondrial oxidative capacity is partly preserved after cryopreservation with dimethyl sulfoxide
A Meyer1, A L Charles2, F Singh1
1Federation de Medecine Translationnelle, Universite de Strasbourg; Service de Physiologie et dExplorations Fonctionnelles, Pole de Pathologie Thoracique Hopitaux Universitaires de Strasbourg, France.
Background:
Cardiac muscle cryopreservation is a challenge for both diagnostic procedure requiring viable tissues and therapeutic advance in regenerative medicine. Mitochondria are targets of both direct and indirect damages, secondary to congelation per se and/or to cryoprotectant's toxic effects, which participate to diminution of viability and/or functioning of cells after freezing. At the cardiac muscle level, only one study had investigated mitochondrial respiration after cryopreservation.
Objective:
To determine the effect of cryopreservation on mitochondrial respiration of cardiac muscle.
Materials And Tmethods:
We recorded mitochondrial respiration through complexes I, II, III and IV along with mitochondrial coupling in fresh and cryopreserved rat left ventricles samples and assessed difference of the means, correlation and agreement between the measures in all samples.
Results:
Mitochondrial respiration was partly maintained up to 70% in cryopreserved samples whatever the substrate. A significant correlation was observed between fresh and cryopreserved samples (r = 0.71, p < 0.0001). However, mitochondrial coupling significantly decreased after cryopreservation (- 1.44 ± 0.15; p < 0.005) suggesting that mitochondrial intactness was not totally preserved by cryopreservation. Further, the fluctuations around the mean difference were wide (-14.06, +5.08 µmol/min/g), increasing with respiration rates (p < 0.0001).
Conclusion:
Thus, fresh samples extemporaneous analysis should be preferred when available despite the fact that cryopreservation using DMSO partly protect cardiac mitochondrial respiration and coupling. These data support the interest to further refine cryopreservation methods.
Insights
Cryopreservation partly preserves cardiac mitochondrial respiration but decreases coupling. Fresh cardiac muscle samples are preferred for analysis, though improved cryopreservation methods are needed.
Area of Science:
- Cardiology
- Cell Biology
- Cryobiology
Background:
- Cardiac muscle cryopreservation is crucial for diagnostics and regenerative medicine.
- Mitochondria are vulnerable to cryopreservation damage, impacting cell viability and function.
- Limited research exists on cryopreservation's effect on cardiac mitochondrial respiration.
Purpose of the Study:
- To investigate the impact of cryopreservation on cardiac muscle mitochondrial respiration.
- To assess mitochondrial function in fresh versus cryopreserved rat left ventricles.
Main Methods:
- Mitochondrial respiration was measured across complexes I, II, III, and IV.
- Mitochondrial coupling was assessed in fresh and cryopreserved rat left ventricle samples.
- Statistical analysis evaluated differences, correlations, and agreement between fresh and cryopreserved samples.
Main Results:
- Mitochondrial respiration was maintained up to 70% in cryopreserved samples.
- A significant correlation (r = 0.71) was found between fresh and cryopreserved samples.
- Mitochondrial coupling significantly decreased post-cryopreservation, indicating incomplete preservation.
Conclusions:
- Cryopreservation, even with DMSO, only partly protects cardiac mitochondrial respiration and coupling.
- Extemporaneous analysis of fresh cardiac samples is recommended when feasible.
- Further refinement of cryopreservation techniques is warranted to improve cardiac tissue preservation.
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