Insulin acts in hypokalemic periodic paralysis by reducing inward rectifier K+ current
1Department of Neurology, Case Western Reserve University School of Medicine, Louis Stokes Cleveland Department of Veterans Affairs Medical Center, University Hospitals of Cleveland, OH 44106, USA.
Objective:
To define how insulin acts in hypokalemic periodic paralysis (HypoPP).
Background:
HypoPP results from point mutations of the skeletal muscle L-type Ca2+ channel. Attacks of flaccid paralysis are associated with hypokalemia and triggered by insulin. A persistent inward current causes depolarization-induced paralysis. The relationships of the Ca2+ channel mutations to the persistent inward current and how insulin triggers paralytic attacks are not yet known.
Methods:
Intercostal muscle fibers from HypoPP and normal subjects were studied in vitro at 37 degrees C using two electrodes to determine action potential thresholds and a three-electrode voltage clamp to study membrane currents.
Results:
HypoPP fibers were depolarized in bathing solution with 4 mM K+. Reducing K+ from 4.0 mM to 2.5 or 1.0 mM depolarized HypoPP fibers but hyperpolarized normal fibers. Adding 12 mU/mL of insulin to bathing fluids increased the depolarization of HypoPP fibers and increased the hyperpolarization of normal fibers. Depolarized HypoPP had increased action potential thresholds. The fraction of excitable muscle fibers decreased with increasing fiber depolarization. Blocking Na+ channels or L-type Ca2+ channels did not prevent depolarization induced by hypokalemia or by insulin. Insulin reduced the conductance of the inward rectifier K+ channel for outward-flowing currents.
Conclusions:
Insulin potentiates depolarization of hypokalemic periodic paralysis (HypoPP) fibers by reducing inward rectifier K+ conductance. The Ca2+ mutations in HypoPP indirectly derange membrane excitability by altering the function of other membrane channels.
Insights
Insulin worsens muscle fiber depolarization in hypokalemic periodic paralysis (HypoPP) by reducing potassium channel function. This explains how insulin triggers paralysis attacks in HypoPP patients.
Area of Science:
- Muscle Physiology
- Channelopathies
- Endocrinology
Background:
- Hypokalemic periodic paralysis (HypoPP) is linked to skeletal muscle L-type Ca2+ channel mutations.
- Paralytic attacks in HypoPP are triggered by insulin and associated with hypokalemia.
- The underlying mechanisms connecting Ca2+ channel mutations, persistent inward currents, and insulin's role remain unclear.
Purpose of the Study:
- To elucidate the specific mechanism by which insulin affects muscle fibers in hypokalemic periodic paralysis (HypoPP).
- To understand how insulin contributes to the depolarization and paralysis observed during HypoPP attacks.
Main Methods:
- In vitro study of intercostal muscle fibers from HypoPP and normal subjects.
- Utilized two-electrode electrophysiology to measure action potential thresholds.
- Employed three-electrode voltage clamp to analyze membrane currents.
Main Results:
- HypoPP fibers depolarized in low potassium, while normal fibers hyperpolarized.
- Insulin exacerbated depolarization in HypoPP fibers and hyperpolarization in normal fibers.
- Insulin reduced inward rectifier K+ channel conductance, contributing to fiber depolarization.
Conclusions:
- Insulin potentiates muscle fiber depolarization in HypoPP by decreasing inward rectifier K+ conductance.
- Skeletal muscle Ca2+ channel mutations in HypoPP indirectly disrupt membrane excitability by affecting other ion channels.
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