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January 17, 2002Biochemistry15 citations

Dynamic Docking of Myosin and Actin Observed with Resonance Energy Transfer

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DRDouglas D. RootSSShaun StewartJXJin Xu

Structured PICO

P
Population
Atomic models of myosin subfragment-1 (S1) and the actin filament
I
Intervention
Resonance energy-transfer data modeling (combined with chemical cross-linking data for prepowerstroke state)
O
Outcome
Orientation of the neck-region of S1 and docking models of myosin and actin

Resonance energy transfer modeling reveals a 30-degree tilt in the myosin catalytic domain during the weak-to-strong transition, providing structural insights into muscle contraction and force generation.

Abstract

Atomic models of myosin subfragment-1 (S1) and the actin filament are docked together using resonance energy-transfer data from both pre- and postpowerstroke conditions. The quality of the resulting best fits discriminated between neck-region orientations of the S1 for a given set of experimental conditions. For measurements of the postpowerstroke states in the presence of ADP, resonance energy-transfer data alone are sufficient to dock the atomic models and provide evidence that S1 exists with at least two neck-region orientations under these conditions. To dock the prepowerstroke state, resonance energy-transfer data were used in combination with previous chemical cross-linking data to determine that a neck-region orientation similar to that of a proposed prepowerstroke state best fit the data. The resulting models determined independently from electron microscopy compare favorably with micrographs from the recent literature. The docking models by resonance energy transfer suggest that the larger movements in the light-chain binding domain are accompanied by twisting and rotating movements of the catalytic domain, causing a tilt of approximately 30 degrees during the weak-to-strong transition. This transition provides the displacement necessary to support motility and force generation.

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Cite This Study

Root et al. (2002) studied this question.

synapsesocial.com/papers/6a75cc83f718b06d6813cc25https://doi.org/10.1021/bi015869o
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Also Consider

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

  1. 1Effect of Nucleotides and Actin on the Orientation of the Light Chain-Binding Domain in Myosin Subfragment 11997 · 21 citations
  2. 2Conformational changes between the active-site and regulatory light chain of myosin as determined by luminescence resonance energy transfer: The effect of nucleotides and actin1998 · 59 citations
  3. 3Intradomain Distances in the Regulatory Domain of the Myosin Head in Prepower and Postpower Stroke States:  Fluorescence Energy Transfer1999 · 19 citations
  4. 4Resonance energy transfer evidence for two attached states of the actomyosin complex1985 · 26 citations
  5. 5Structural Model of Weak Binding Actomyosin in the Prepowerstroke State2014 · 11 citations