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September 28, 2001Biochemistry121 citations

Kinetic Resolution of a Conformational Transition and the ATP Hydrolysis Step Using Relaxation Methods with a Dictyostelium Myosin II Mutant Containing a Single Tryptophan Residue

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AMAndrás Málnási‐CsizmadiaDPDavid PearsonMKMihály Kovács

Key Result

Temperature and pressure jump methods revealed that the fluorescence enhancement corresponding to the open-closed transition is kinetically distinct from but coupled to the ATP hydrolysis step.

Structured PICO

P
Population
Dictyostelium discoideum myosin II motor domain mutant containing a single tryptophan residue (W501)
I
Intervention
Temperature and pressure jump methods during ATP binding and hydrolysis
O
Outcome
Fluorescence emission intensity changes corresponding to conformational transitions and ATP hydrolysissurrogate

The study demonstrates that the open-closed conformational transition in the myosin II motor domain is kinetically distinct from but coupled to the ATP hydrolysis step.

Abstract

The fluorescence emission intensity from a conserved tryptophan residue (W501) located in the relay loop (F466 to L516) of the Dicytostelium discoideum myosin II motor domain is sensitive to ATP binding and hydrolysis. The initial binding process is accompanied by a small quench in fluorescence, and this is followed by a large enhancement that appears coincident with the hydrolysis step. Using temperature and pressure jump methods, we show that the enhancement process is kinetically distinct from but coupled to the hydrolysis step. The fluorescence enhancement corresponds to the open-closed transition (k(obs) approximately 1000 s(-1) at 20 degrees C). From the overall steady-state fluorescence signal and the presence or absence of a relaxation transient, we conclude that the ADP state is largely in the open state, while the ADP.AlF(4) state is largely closed. At 20 degrees C the open-closed equilibria for the AMP.PNP and ADP.BeF(x) complexes are close to unity and are readily perturbed by temperature and pressure. In the case of ATP, the equilibrium of this step slightly favors the open state, but coupling to the subsequent hydrolysis step gives rise to a predominantly closed state in the steady state. Pressure jump during steady-state ATP turnover reveals the distinct transients for the rapid open-closed transition and the slower hydrolysis step.

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Cite This Study

Málnási‐Csizmadia et al. (2001) studied this question. Temperature and pressure jump methods was evaluated on Kinetic resolution of conformational transition and ATP hydrolysis step. Temperature and pressure jump methods revealed that the fluorescence enhancement corresponding to the open-closed transition is kinetically distinct from but coupled to the ATP hydrolysis step.

synapsesocial.com/papers/6a5e61637dc1c0be7daf1b84https://doi.org/10.1021/bi010963q
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