Phosphate and ADP differently inhibit coordinated smooth muscle myosin groups
Lennart Hilbert1, Zsombor Balassy2, Nedjma B Zitouni3
1Department of Physiology, McGill University, Montréal, Québec, Canada; Centre for Applied Mathematics in Bioscience and Medicine, Montréal, Québec, Canada; Meakins-Christie Laboratories, Montréal, Québec, Canada.
Abstract:
Actin filaments propelled in vitro by groups of skeletal muscle myosin motors exhibit distinct phases of active sliding or arrest, whose occurrence depends on actin length (L) within a range of up to 1.0 μm. Smooth muscle myosin filaments are exponentially distributed with ≈150 nm average length in vivo--suggesting relevance of the L-dependence of myosin group kinetics. Here, we found L-dependent actin arrest and sliding in in vitro motility assays of smooth muscle myosin. We perturbed individual myosin kinetics with varying, physiological concentrations of phosphate (Pi, release associated with main power stroke) and adenosine diphosphate (ADP, release associated with minor mechanical step). Adenosine triphosphate was kept constant at physiological concentration. Increasing [Pi] lowered the fraction of time for which actin was actively sliding, reflected in reduced average sliding velocity (ν) and motile fraction (fmot, fraction of time that filaments are moving); increasing [ADP] increased the fraction of time actively sliding and reduced the velocity while sliding, reflected in reduced ν and increased fmot. We introduced specific Pi and ADP effects on individual myosin kinetics into our recently developed mathematical model of actin propulsion by myosin groups. Simulations matched our experimental observations and described the inhibition of myosin group kinetics. At low [Pi] and [ADP], actin arrest and sliding were reflected by two distinct chemical states of the myosin group. Upon [Pi] increase, the probability of the active state decreased; upon [ADP] increase, the probability of the active state increased, but the active state became increasingly similar to the arrested state.
Insights
Smooth muscle myosin
Area of Science:
- Biophysics
- Muscle Physiology
- Molecular Motors
Background:
- Actin filament motion is driven by myosin motors.
- Skeletal muscle myosin shows length-dependent actin sliding and arrest.
- Smooth muscle myosin's in vivo distribution suggests length-dependence is relevant.
Purpose of the Study:
- Investigate length-dependent actin arrest and sliding in smooth muscle myosin.
- Determine the effects of phosphate (Pi) and adenosine diphosphate (ADP) on smooth muscle myosin kinetics.
- Model myosin group kinetics to understand actin propulsion.
Main Methods:
- In vitro motility assays with smooth muscle myosin.
- Perturbation of individual myosin kinetics using physiological concentrations of Pi and ADP.
- Mathematical modeling of actin propulsion by myosin groups.
Main Results:
- Actin arrest and sliding were observed and dependent on actin length.
- Increased Pi reduced active sliding time, average velocity, and motile fraction.
- Increased ADP increased active sliding time but reduced velocity during sliding.
- Mathematical model simulations matched experimental data.
Conclusions:
- Smooth muscle myosin kinetics are inhibited by Pi and ADP.
- Pi and ADP concentrations modulate actin sliding and arrest phases.
- Myosin group chemical states explain actin arrest and sliding behaviors.
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