Halothane modulation of skeletal muscle ryanodine receptors: dependence on Ca2+, Mg2+, and ATP

Paula L Diaz-Sylvester1, Maura Porta, Julio A Copello

  • 1Department of Pharmacology, Southern Illinois University School of Medicine, Springfield, IL 62794-9629, USA.

Insights

Malignant hyperthermia susceptibility involves RyR1 channel mutations. ATP is essential for halothane to activate wild-type RyR1 channels, influencing diagnosis and treatment strategies.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Physiology

Background:

  • Malignant hyperthermia (MH) susceptibility is a pharmacogenetic disorder of skeletal muscle.
  • Mutations in the ryanodine receptor isoform 1 (RyR1) are linked to MH susceptibility.
  • Volatile anesthetics like halothane can trigger MH episodes in susceptible individuals.

Purpose of the Study:

  • To investigate the role of endogenous agonists in modulating halothane's action on RyR1.
  • To determine if ATP and calcium influence halothane sensitivity of RyR1.
  • To understand the mechanism behind halothane activation of RyR1 in the context of MH.

Main Methods:

  • Reconstitution of rabbit skeletal RyR1 into planar lipid bilayers.
  • Electrophysiological recordings of RyR1 channel activity.
  • Studies on skeletal sarcoplasmic reticulum (SR) microsomes to assess Ca(2+) release.
  • Investigating the effects of cytosolic ATP, Ca(2+), and Mg(2+) on halothane-induced RyR1 activation.

Main Results:

  • Cytosolic ATP is required for halothane to activate skeletal RyR1, but not cardiac RyR2.
  • Halothane activation of RyR1 is enhanced by cytosolic Ca(2+) and inhibited by Mg(2+).
  • Dantrolene did not affect basal RyR1/RyR2 activity or halothane-induced activation.
  • Halothane-induced RyR1-mediated Ca(2+) release from SR is potentiated by high ATP, low Mg(2+), and high SR Ca(2+) load.

Conclusions:

  • Endogenous modulators like ATP, Ca(2+), and Mg(2+) significantly influence RyR1 sensitivity to halothane.
  • Changes in cellular levels of these modulators could affect MH susceptibility and diagnosis.
  • These findings provide insights into the molecular mechanisms underlying MH and anesthetic sensitivity.

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.
Skeletal Muscle Relaxants: Adverse Effects01:21

Skeletal Muscle Relaxants: Adverse Effects

Skeletal muscle relaxants are widely used for muscle paralysis and relieving pain following any muscle injury or stiffness. However, depending on the drug type, they can have adverse effects that range from mild to severe. Usually, nondepolarizing neuromuscular blockers have minimal side effects. For example, drugs like d-tubocurarine, cisatracurium, and rocuronium cause hypotension, whereas drugs like baclofen, when stopped abruptly, can lead to the recurrence of spastic conditions.
Unlike...
Depolarizing Blockers: Mechanism of Action01:28

Depolarizing Blockers: Mechanism of Action

Depolarizing blockers act on skeletal muscle fibers' membranes and induce their depolarization. Most depolarizing blockers have two quaternary N+ atoms that bind the nicotinic acetylcholine receptors and cause neuromuscular blockade within minutes.
Succinylcholine is the most commonly used depolarizing blocker. Chemically, it constitutes two molecules of acetylcholine joined together by an acetate methyl group. They act on the receptors in the same way as acetylcholine. Because succinylcholine...
Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacological Actions01:27

Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacological Actions

Nondepolarizing neuromuscular blockers prevent the membrane depolarization of muscle cells and inhibit muscle contraction. These are usually administered with anesthetics to achieve complete muscle relaxation. Upon administration, these drugs first block the small, rapidly contracting muscles of the face and hands, followed by the larger muscles of the trunk and the intercostal muscles. The diaphragm is the last muscle to be affected.
Although all competitive neuromuscular blockers are designed...
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...
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.