Force-producing ADP state of myosin bound to actin

Molecular motors produce force when they interact with their cellular tracks. For myosin motors, the primary force-generating state has MgADP tightly bound, whereas myosin is strongly bound to actin. We have generated an 8-Å cryoEM reconstruction of this state for myosin V and used molecular dynamic...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2016-03, Vol.113 (13), p.E1844-E1852
Hauptverfasser: Wulf, Sarah F., Ropars, Virginie, Fujita-Becker, Setsuko, Oster, Marco, Hofhaus, Goetz, Trabuco, Leonardo G., Pylypenko, Olena, Sweeney, H. Lee, Houdusse, Anne M., Schröder, Rasmus R.
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Sprache:eng
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Zusammenfassung:Molecular motors produce force when they interact with their cellular tracks. For myosin motors, the primary force-generating state has MgADP tightly bound, whereas myosin is strongly bound to actin. We have generated an 8-Å cryoEM reconstruction of this state for myosin V and used molecular dynamics flexed fitting for model building. We compare this state to the subsequent state on actin (Rigor). The ADP-bound structure reveals that the actin-binding cleft is closed, even though MgADP is tightly bound. This state is accomplished by a previously unseen conformation of the β-sheet underlying the nucleotide pocket. The transition from the force-generating ADP state to Rigor requires a 9.5° rotation of the myosin lever arm, coupled to a β-sheet rearrangement. Thus, the structure reveals the detailed rearrangements underlying myosin force generation as well as the basis of strain-dependent ADP release that is essential for processive myosins, such as myosin V.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.1516598113