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Analyzing Oxygen Consumption Rate in Primary Cultured Mouse Neonatal Cardiomyocytes Using an Extracellular Flux Analyzer
Published on: February 13, 2019
Postnatal growth restriction alters myocardial mitochondrial energetics in mice
Joseph R Visker1,2, Eric C Leszczynski2, Austin G Wellette-Hunsucker2,3
1The Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, Utah, USA.
Insights
Postnatal growth restriction impairs cardiac oxidative phosphorylation, leading to increased reactive oxygen species and potentially raising cardiovascular disease risk. This study investigated the impact of PGR on heart metabolism and mitochondrial function in mice.
Area of Science:
- Cardiovascular Science
- Mitochondrial Biology
- Developmental Biology
Background:
- Postnatal growth restriction (PGR) is linked to increased cardiovascular disease (CVD) risk.
- Impaired mitochondrial oxidative phosphorylation (OxPhos) is a potential mechanism connecting PGR and CVD.
Purpose of the Study:
- To investigate if PGR negatively impacts cardiac metabolism, specifically OxPhos.
- To assess mitochondrial function, including respiration and reactive oxygen species (ROS) emission, in PGR mice.
Main Methods:
- FVB mice were exposed to normal-protein (NP) or low-protein (LP) diets before and during gestation.
- Pups born to NP dams were cross-fostered to LP dams (PGR group) or NP dams (control group).
- Mitochondrial respirometry and fluorimetry were performed at postnatal days 22 and 80 to measure oxygen consumption and ROS emission.
Main Results:
- PGR mice exhibited significantly reduced respiratory control in complex I compared to controls.
- PGR was associated with increased electron leakage and higher reactive oxygen species (ROS) emission.
- No significant differences in the protein abundance of key mitochondrial proteins were observed between groups.
Conclusions:
- PGR leads to impaired cardiac mitochondrial function, characterized by reduced respiratory control and elevated ROS production.
- These mitochondrial deficits in PGR mice may contribute to an increased risk of cardiovascular disease.
- Further research is warranted to explore therapeutic strategies targeting mitochondrial dysfunction in PGR.
Abstract:
Postnatal growth restriction (PGR) can increase the risk of cardiovascular disease (CVD) potentially due to impairments in oxidative phosphorylation (OxPhos) within cardiomyocyte mitochondria. The purpose of this investigation was to determine if PGR impairs cardiac metabolism, specifically OxPhos. FVB (Friend Virus B-type) mice were fed a normal-protein (NP: 20% protein), or low-protein (LP: 8% protein) isocaloric diet 2 weeks before mating. LP dams produce ∼20% less milk, and pups nursed by LP dams experience reduced growth into adulthood as compared to pups nursed by NP dams. At birth (PN1), pups born to dams fed the NP diet were transferred to LP dams (PGR group) or a different NP dam (control group: CON). At weaning (PN21), all mice were fed the NP diet. At PN22 and PN80, mitochondria were isolated for respirometry (oxygen consumption rate, ) and fluorimetry (reactive oxygen species emission, ) analysis measured as baseline respiration (LEAK) and with saturating ADP (OxPhos). Western blotting at PN22 and PN80 determined protein abundance of uncoupling protein 3, peroxiredoxin-6, voltage-dependent anion channel and adenine nucleotide translocator 1 to provide further insight into mitochondrial function. ANOVAs with the main effects of diet, sex and age with α-level of 0.05 was set a priori. Overall, PGR (7.8 ± 1.1) had significant (P = 0.01) reductions in respiratory control in complex I when compared to CON (8.9 ± 1.0). In general, our results show that PGR led to higher electron leakage in the form of free radical production and reactive oxygen species emission. No significant diet effects were found in protein abundance. The observed reduced respiratory control and increased ROS emission in PGR mice may increase risk for CVD in mice.
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