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October 26, 2000Biochemistry85 citations

Actin and Light Chain Isoform Dependence of Myosin V Kinetics

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ECEnrique M. De La CruzAWAmber L. WellsHSH. Lee Sweeney

Key Result

The maximum actin-activated steady-state ATPase rate of myosin V is the same with essential light chains or calmodulin, but calmodulin significantly increases K(ATPase) and reduces ATP hydrolysis rates.

Structured PICO

P
Population
Single-headed myosin V construct consisting of the motor domain and first light chain binding domain
E
Exposure
Binding of different light chain isoforms (essential light chains vs calmodulin) and actin isoforms (alpha-skeletal muscle actin vs beta- and gamma-actin)
C
Comparator
Comparison between the different light chain and actin isoforms
O
Outcome
Kinetic parameters including maximum actin-activated steady-state ATPase rate (V(max)), K(ATPase), rate and equilibrium constants for ATP hydrolysis, and ADP release ratesurrogate

Essential light chain isoforms favor the formation of the M.ADP.Pi state compared to calmodulin, but these light-chain-dependent kinetic alterations are likely minimized under physiological conditions.

Abstract

Recent studies on myosin V report a number of kinetic differences that may be attributed to the different heavy chain (chicken vs mouse) and light chain (essential light chains vs calmodulin) isoforms used. Understanding the extent to which individual light chain isoforms contribute to the kinetic behavior of myosin V is of critical importance, since it is unclear which light chains are bound to myosin V in cells. In addition, all studies to date have used alpha-skeletal muscle actin, whereas myosin V is in nonmuscle cells expressing beta- and gamma-actin. Therefore, we characterized the actin and light chain dependence of single-headed myosin V kinetics. The maximum actin-activated steady-state ATPase rate (V(max)) of a myosin V construct consisting of the motor domain and first light chain binding domain is the same when either of two essential light chain isoforms or calmodulin is bound. However, with bound calmodulin, the K(ATPase) is significantly higher and there is a reduction in the rate and equilibrium constants for ATP hydrolysis, indicating that the essential light chain favors formation of the M. ADP.P(i) state. No kinetic parameters of myosin V are strongly influenced by the actin isoform. ADP release from the actin-myosin complex is the rate-limiting step in the ATPase cycle with all actin and light chain isoforms. We postulate that although there are significant light-chain-dependent alterations in the kinetics that could affect myosin V processivity in in vitro assays, these differences likely are minimized under physiological conditions.

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Cite This Study

Cruz et al. (2000) studied this question. Light chain isoforms (essential light chains vs calmodulin) and actin isoforms was evaluated on Actin-activated steady-state ATPase rate (V(max)) and kinetic parameters. The maximum actin-activated steady-state ATPase rate of myosin V is the same with essential light chains or calmodulin, but calmodulin significantly increases K(ATPase) and reduces ATP hydrolysis rates.

synapsesocial.com/papers/6a20e2ea1e73f094422a9ef1https://doi.org/10.1021/bi001701b
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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