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Effects of Propofol on Cellular Bioenergetics in Human Skeletal Muscle Cells
- Source :
- Critical care medicine. 46(3)
- Publication Year :
- 2017
-
Abstract
- Objectives Propofol may adversely affect the function of mitochondria and the clinical features of propofol infusion syndrome suggest that this may be linked to propofol-related bioenergetic failure. We aimed to assess the effect of therapeutic propofol concentrations on energy metabolism in human skeletal muscle cells. Design In vitro study on human skeletal muscle cells. Settings University research laboratories. Subjects Patients undergoing hip surgery and healthy volunteers. Interventions Vastus lateralis biopsies were processed to obtain cultured myotubes, which were exposed to a range of 1-10 μg/mL propofol for 96 hours. Measurements and main results Extracellular flux analysis was used to measure global mitochondrial functional indices, glycolysis, fatty acid oxidation, and the functional capacities of individual complexes of electron transfer chain. In addition, we used [1-C]palmitate to measure fatty acid oxidation and spectrophotometry to assess activities of individual electron transfer chain complexes II-IV. Although cell survival and basal oxygen consumption rate were only affected by 10 μg/mL of propofol, concentrations as low as 1 μg/mL reduced spare electron transfer chain capacity. Uncoupling effects of propofol were mild, and not dependent on concentration. There was no inhibition of any respiratory complexes with low dose propofol, but we found a profound inhibition of fatty acid oxidation. Addition of extra fatty acids into the media counteracted the propofol effects on electron transfer chain, suggesting inhibition of fatty acid oxidation as the causative mechanism of reduced spare electron transfer chain capacity. Whether these metabolic in vitro changes are observable in other organs and at the whole-body level remains to be investigated. Conclusions Concentrations of propofol seen in plasma of sedated patients in ICU cause a significant inhibition of fatty acid oxidation in human skeletal muscle cells and reduce spare capacity of electron transfer chain in mitochondria.
- Subjects :
- medicine.medical_specialty
Bioenergetics
Muscle Fibers, Skeletal
Mitochondrion
In Vitro Techniques
Critical Care and Intensive Care Medicine
03 medical and health sciences
0302 clinical medicine
Oxygen Consumption
Internal medicine
medicine
Humans
Hypnotics and Sedatives
Glycolysis
Muscle, Skeletal
Beta oxidation
Propofol
Cells, Cultured
Aged
Hip surgery
business.industry
Skeletal muscle
030208 emergency & critical care medicine
medicine.disease
Mitochondria, Muscle
Propofol infusion syndrome
medicine.anatomical_structure
Endocrinology
business
Energy Metabolism
030217 neurology & neurosurgery
medicine.drug
Subjects
Details
- ISSN :
- 15300293
- Volume :
- 46
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Critical care medicine
- Accession number :
- edsair.doi.dedup.....ff4e26e286631fa362db1f7c8fa98776