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Application of Genetically Encoded Fluorescent Nitric Oxide (NO•) Probes, the geNOps, for Real-time Imaging of NO• Signals in Single Cells
Published on: March 16, 2017
Nitric oxide synthase inhibition affects sarcoplasmic reticulum Ca2+ release in skeletal muscle fibres from mouse
Sandrine Pouvreau1, Vincent Jacquemond
1Physiologie Intégrative Cellulaire et Moléculaire, Université Claude Bernard - Lyon 1, UMR CNRS 5123, Villeurbanne, France.
Abstract:
Nitric oxide (NO) generated by skeletal muscle is believed to regulate force production but how this is achieved remains poorly understood. In the present work we tested the effects of NO synthase (NOs) inhibitors on membrane current and intracellular calcium in isolated skeletal muscle fibres from mouse, under voltage-clamp conditions. Resting [Ca(2+)] and [Ca(2+)] transients evoked by large depolarizations exhibited similar properties in control fibres and in fibres loaded with tenth millimolar levels of the NOs inhibitor N-nitro-L-arginine (L-NNA). Yet the voltage dependence of calcium release was found to be shifted by approximately 15 mV towards negative values in the presence of L-NNA. This effect could be reproduced by the other NOs inhibitor S-methyl-L-thiocitrulline (L-SMT). Separate experiments showed that the voltage dependence of charge movement and of the slow calcium current were unaffected by the presence of L-NNA, ruling out an effect on the voltage sensor. A negative shift in the voltage dependence of calcium release with no concurrent alteration in the properties of charge movement was also observed in fibres exposed to the oxidant H(2)O(2) (1 mM). Conversely the reducing agent dithiothreitol (10 mM) had no obvious effect on Ca(2+) release. Overall, the results indicate that physiological levels of NO exert a tonic inhibitory control on the activation of the calcium release channels. Changes in the voltage dependence of Ca(2+) release activation may be a ubiquitous physiological consequence of redox-related modifications of the ryanodine receptor.
Insights
Nitric oxide (NO) tonically inhibits calcium release channels in skeletal muscle. This regulation, mediated by NO synthase (NOS) inhibitors, impacts muscle force production by altering calcium release voltage dependence.
Area of Science:
- Muscle Physiology
- Cellular Signaling
- Redox Biology
Background:
- Skeletal muscle force production is regulated by nitric oxide (NO), but the precise mechanisms are unclear.
- Understanding NO's role requires investigating its effects on calcium handling within muscle fibers.
Purpose of the Study:
- To investigate the impact of nitric oxide synthase (NOS) inhibition on calcium dynamics in isolated mouse skeletal muscle fibers.
- To elucidate the role of NO in regulating calcium release and muscle force.
Main Methods:
- Utilized voltage-clamp techniques on isolated mouse skeletal muscle fibers.
- Administered NOS inhibitors (L-NNA, L-SMT), an oxidant (H2O2), and a reducing agent (dithiothreitol).
- Measured membrane currents and intracellular calcium ([Ca2+]) transients.
Main Results:
- NOS inhibition shifted the voltage dependence of calcium release to more negative potentials (~15 mV).
- This shift was reproduced by an oxidant (H2O2) but not by a reducing agent.
- Charge movement and slow calcium currents remained unaffected, indicating no impact on the voltage sensor.
Conclusions:
- Physiological levels of NO exert tonic inhibitory control over calcium release channel activation.
- Redox-related modifications of the ryanodine receptor likely alter calcium release voltage dependence, impacting muscle function.
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