Related Experiment Video
Updated: Jun 19, 2026

Functional Characterization of Endogenously Expressed Human RYR1 Variants
Published on: June 9, 2021
Ryanodine modification of RyR1 retrogradely affects L-type Ca(2+) channel gating in skeletal muscle
1Department of Physiology and Biophysics, School of Medicine, University of Colorado-Denver, RC-1, North Tower, Aurora, CO 80045, USA. roger.bannister@ucdenver.edu
Abstract:
In skeletal muscle, there is bidirectional signalling between the L-type Ca(2+) channel (1,4-dihydropyridine receptor; DHPR) and the type 1 ryanodine-sensitive Ca(2+) release channel (RyR1) of the sarcoplasmic reticulum (SR). In the case of "orthograde signalling" (i.e., excitation-contraction coupling), the conformation of RyR1 is controlled by depolarization-induced conformational changes of the DHPR resulting in Ca(2+) release from the SR. "Retrograde coupling" is manifested as enhanced L-type current. The nature of this retrograde signal, and its dependence on RyR1 conformation, are poorly understood. Here, we have examined L-type currents in normal myotubes after an exposure to ryanodine (200 microM, 1 h at 37 degrees C) sufficient to lock RyR1 in a non-conducting, inactivated, conformational state. This treatment caused an increase in L-type current at less depolarized test potentials in comparison to myotubes similarly exposed to vehicle as a result of a approximately 5 mV hyperpolarizing shift in the voltage-dependence of activation. Charge movements of ryanodine-treated myotubes were also shifted to more hyperpolarizing potentials (approximately 13 mV) relative to vehicle-treated myotubes. Enhancement of the L-type current by ryanodine was absent in dyspedic (RyR1 null) myotubes, indicating that ryanodine does not act directly on the DHPR. Our findings indicate that in retrograde signaling, the functional state of RyR1 influences conformational changes of the DHPR involved in activation of L-type current. This raises the possibility that physiological regulators of the conformational state of RyR1 (e.g., Ca(2+), CaM, CaMK, redox potential) may also affect DHPR gating.
Insights
Ryanodine treatment alters skeletal muscle excitation-contraction coupling by affecting L-type Ca(2+) channels. This study reveals that the ryanodine receptor influences L-type channel activity, impacting muscle contraction signaling.
Area of Science:
- Muscle Physiology
- Excitation-Contraction Coupling
- Ion Channel Function
Background:
- Skeletal muscle exhibits bidirectional signaling between L-type Ca(2+) channels (DHPR) and RyR1 channels.
- Orthograde signaling (excitation-contraction coupling) involves DHPR-mediated RyR1 conformation changes.
- Retrograde coupling, an enhanced L-type current, is poorly understood regarding its signal and RyR1 dependence.
Purpose of the Study:
- To investigate the nature of retrograde signaling in skeletal muscle.
- To determine if RyR1 conformation influences L-type current and DHPR gating.
- To elucidate the role of RyR1 in the modulation of L-type Ca(2+) channel activity.
Main Methods:
- Examined L-type currents in normal and dyspedic (RyR1 null) myotubes.
- Treated myotubes with ryanodine to lock RyR1 in a non-conducting state.
- Measured voltage-dependence of activation and charge movements of L-type channels.
Main Results:
- Ryanodine treatment increased L-type current and shifted its activation voltage dependence hyperpolarly.
- Charge movements were also shifted to more hyperpolarizing potentials after ryanodine exposure.
- Ryanodine's effect on L-type current was absent in RyR1 null myotubes, confirming RyR1 dependence.
Conclusions:
- The functional state of RyR1 influences DHPR conformational changes during L-type current activation.
- Retrograde signaling involves RyR1 modulating DHPR gating, not a direct effect of ryanodine on DHPR.
- Physiological regulators of RyR1 may also impact DHPR gating, suggesting a broader regulatory network.
Related Concept Videos
Channel Rhodopsins
Rhodopsins belong to the family of cell surface proteins called G-protein coupled receptors,...
Cross-bridge Cycle
Relaxation of Skeletal Muscles
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.
G-Protein Gated Ion Channels
Sensory organs,...
Antihypertensive Drugs: Action of Calcium Channel Blockers
Ligand-Gated Ion Channel Receptor: Gating Mechanism
