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Plasticity in airway smooth muscle: an update
1Krannert Institute of Cardiology, Indiana University School of Medicine, Indianapolis, IN 46202, USA. lieford@iupui.edu
Canadian Journal of Physiology and Pharmacology
|December 8, 2005
Summary
Smooth muscles achieve their extensive functional range through plastic alterations, facilitated by myosin filament dynamics. This mechanism allows muscles to adapt length while maintaining force, with velocity inversely proportional to force.
Area of Science:
- Muscle Physiology
- Biophysics
- Cellular Mechanics
Background:
- Smooth muscles exhibit a wide functional length range, a phenomenon not fully explained by traditional models.
- Previous hypotheses proposed plastic alterations and myosin filament dynamics as key mechanisms for this adaptability.
- The relationship between muscle length, force generation, and shortening velocity requires further elucidation.
Purpose of the Study:
- To present evidence supporting the hypothesis that smooth muscle length adaptability involves plastic myofilament rearrangement.
- To investigate the role of myosin filament evanescence and reformation in muscle plasticity.
- To explore the impact of activation levels and filament dynamics on muscle shortening velocity and force.
Main Methods:
- Adaptation of muscles to a 3-fold range of lengths.
- Measurement of physiological parameters including shortening velocity, maximum power, compliance, and ATPase rate.
- Assessment of thick-filament mass and density changes during activation.
- Analysis of the relationship between force and velocity under varying activation conditions.
Main Results:
- Muscles maintain similar force output across a 3-fold variation in adapted length.
- Shortening velocity, maximum power, compliance, ATPase rate, and thick-filament mass scale with muscle length.
- Thick-filament density increases significantly with rising activation.
- Muscle shortening velocity decreases as force increases, with an inverse proportionality when activation is normalized.
Conclusions:
- The long functional range of smooth muscles is explained by plastic alterations in myofilament arrangement, facilitated by myosin filament dynamics.
- Myosin filament evanescence and reformation are crucial for muscle adaptation to different lengths.
- The observed changes in velocity and force reflect the interplay between filament dynamics, activation, and muscle length.