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.

The Journal of Physiology
|November 13, 2008
PubMed

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.

Related Concept Videos

Relaxation of Skeletal Muscles01:29

Relaxation of Skeletal Muscles

The period of muscle contraction primarily influences the duration of stimulation at the neuromuscular junction (NMJ), the presence of free calcium ions in the sarcoplasm, and the availability of energy or ATP to support contractions.
When an action potential reaches the axon terminal, it depolarizes the membrane and opens voltage-gated sodium channels. Sodium ions enter the cell, further depolarizing the presynaptic membrane. This depolarization causes voltage-gated calcium channels to open.
Cross-bridge Cycle01:26

Cross-bridge Cycle

As muscle contracts, the overlap between the thin and thick filaments increases, decreasing the length of the sarcomere—the contractile unit of the muscle—using energy in the form of ATP. At the molecular level, this is a cyclic, multistep process that involves binding and hydrolysis of ATP, and movement of actin by myosin.
Energy Supply for Muscle Contraction01:25

Energy Supply for Muscle Contraction

Skeletal muscle fibers have the unique ability to switch between rest and contraction states, using different sources of ATP for energy. The contraction cycle and Ca2+ transport back into the sarcoplasmic reticulum for relaxation require significant ATP. However, the ATP reserves in muscle fibers are limited and can only sustain contractions for a few seconds. Additional ATP production becomes necessary for prolonged contractions. As a result, muscle fibers generate ATP through various sources,...
Muscle Recovery and Fatigue01:24

Muscle Recovery and Fatigue

Muscle fatigue refers to the decline in a muscle's ability to maintain the force of contraction after prolonged activity. It primarily stems from changes within muscle fibers. Even before experiencing muscle fatigue, one may feel tired and have the urge to stop the activity. This response, known as central fatigue, occurs due to changes in the central nervous system, namely the brain and spinal cord. While there is no single mechanism that induces fatigue, it may serve as a protective response...
Directly Acting Muscle Relaxants: Dantrolene and Botulinum Toxin01:26

Directly Acting Muscle Relaxants: Dantrolene and Botulinum Toxin

Directly acting muscle relaxants like dantrolene and botulinum toxin (BoNT) have distinct mechanisms and applications. Dantrolene, a hydantoin derivative, acts on the ryanodine receptor (RYR1) in skeletal muscle cells. RYR1 are calcium channels present at the sarcoplasmic reticulum membrane. In response to excitation, they release calcium ions from the sarcoplasmic reticulum to the cytosol. Calcium promotes actin-myosin-mediated contraction of muscles.
The binding of dantrolene to the RYR1...
Motor Unit Stimulation01:20

Motor Unit Stimulation

When the neuron of a motor unit fires an action potential, it triggers a series of events, leading to a twitch contraction in the muscle fibers. The process of excitation-contraction coupling is crucial in relaying the action potential to the muscle fibers.
The latent period of contraction marks the onset of excitation-contraction coupling, when the action potential propagates across the sarcolemma, preparing the muscle fibers for contraction. As the fibers enter the contraction phase, the...