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Updated: Jun 28, 2026

Ex Vivo Assessment of Contractility, Fatigability and Alternans in Isolated Skeletal Muscles
Published on: November 1, 2012
PPARdelta agonism inhibits skeletal muscle PDC activity, mitochondrial ATP production and force generation during
Dumitru Constantin-Teodosiu1, David J Baker, Despina Constantin
1Centre for Integrated Systems Biology and Medicine, Queens Medical Centre, University of Nottingham Medical School, Nottingham NG7 2UH, UK. tim.constantin@nottingham.ac.uk.
Abstract:
We have recently shown that PPARdelta agonism, used clinically to treat insulin resistance, increases fat oxidation and up-regulates mitochondrial PDK4 mRNA and protein expression in resting skeletal muscle. We hypothesized that PDK4 up-regulation, which inhibits pyruvate dehydrogenase complex (PDC)-dependent carbohydrate (CHO) oxidation, would negatively affect muscle function during sustained contraction where the demand on CHO is markedly increased. Three groups of eight male Wistar rats each received either vehicle or a PPARdelta agonist (GW610742X) at two doses (5 and 100 mg (kg body mass (bm))(-1) orally for 6 days. On the seventh day, the gastrocnemius-soleus-plantaris muscle group was isolated and snap frozen, or underwent 30 min of electrically evoked submaximal intensity isometric contraction using a perfused hindlimb model. During contraction, the rate of muscle PDC activation was significantly lower at 100 mg (kg bm)(-1) compared with control (P < 0.01). Furthermore, the rates of muscle PCr hydrolysis and lactate accumulation were significantly increased at 100 mg (kg bm)(-1) compared with control, reflecting lower mitochondrial ATP generation. Muscle tension development during contraction was significantly lower at 100 mg (kg bm)(-1) compared with control (25%; P < 0.05). The present data demonstrate that PPARdelta agonism inhibits muscle CHO oxidation at the level of PDC during prolonged contraction, and is paralleled by the activation of anaerobic metabolism, which collectively impair contractile function.
Insights
PPARdelta agonism impairs skeletal muscle function by inhibiting carbohydrate oxidation via PDK4 up-regulation. This leads to reduced muscle tension and increased reliance on anaerobic metabolism during exercise.
Area of Science:
- Exercise Physiology
- Metabolic Regulation
- Skeletal Muscle Biology
Background:
- PPARdelta agonism increases fat oxidation and PDK4 expression in resting muscle.
- PDK4 inhibits pyruvate dehydrogenase complex (PDC)-dependent carbohydrate (CHO) oxidation.
- Sustained muscle contraction increases demand for CHO oxidation.
Purpose of the Study:
- To investigate the effect of PPARdelta agonism on muscle function during sustained contraction.
- To determine if PDK4 up-regulation impairs CHO oxidation and muscle performance.
Main Methods:
- Wistar rats received vehicle or PPARdelta agonist (GW610742X) at two doses.
- Isolated gastrocnemius-soleus-plantaris muscle underwent 30 min of isometric contraction.
- Muscle PDC activation, ATP generation, and tension development were measured.
Main Results:
- High-dose PPARdelta agonism significantly reduced PDC activation during contraction.
- Muscle PCr hydrolysis and lactate accumulation increased, indicating lower mitochondrial ATP generation.
- Muscle tension development was significantly reduced by high-dose PPARdelta agonism.
Conclusions:
- PPARdelta agonism inhibits muscle CHO oxidation at the PDC level during prolonged contraction.
- This inhibition leads to increased anaerobic metabolism and impaired contractile function.
- PPARdelta agonists may negatively impact skeletal muscle performance during endurance exercise.
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