A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.

The motor domain of myosin is the core element performing mechanochemical energy transduction. This domain contains the actin and ATP binding sites and the base of the force-transducing lever. Coordinated subdomain movements within the motor are essential in linking the ATPase chemical cycle to tran...

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Main Authors: Nikolett T Nagy, Saikat Chakraborty, Gábor M Harami, James R Sellers, Takeshi Sakamoto, Mihály Kovács
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3641075?pdf=render
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spelling doaj-b396a8f5e8e648d5917cf79fe9a119692020-11-25T01:52:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0185e6264010.1371/journal.pone.0062640A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.Nikolett T NagySaikat ChakrabortyGábor M HaramiJames R SellersTakeshi SakamotoMihály KovácsThe motor domain of myosin is the core element performing mechanochemical energy transduction. This domain contains the actin and ATP binding sites and the base of the force-transducing lever. Coordinated subdomain movements within the motor are essential in linking the ATPase chemical cycle to translocation along actin filaments. A dynamic subdomain interface located at the base of the lever was previously shown to exert an allosteric influence on ATP hydrolysis in the non-processive myosin 2 motor. By solution kinetic, spectroscopic and ensemble and single-molecule motility experiments, we determined the role of a class-specific adaptation of this interface in the mechanochemical mechanism of myosin 5a, a processive intracellular transporter. We found that the introduction of a myosin 2-specific repulsive interaction into myosin 5a via the I67K mutation perturbs the strong-binding interaction of myosin 5a with actin, influences the mechanism of ATP binding and facilitates ATP hydrolysis. At the same time, the mutation abolishes the actin-induced activation of ADP release and, in turn, slows down processive motility, especially when myosin experiences mechanical drag exerted by the action of multiple motor molecules bound to the same actin filament. The results highlight that subtle structural adaptations of the common structural scaffold of the myosin motor enable specific allosteric tuning of motor activity shaped by widely differing physiological demands.http://europepmc.org/articles/PMC3641075?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Nikolett T Nagy
Saikat Chakraborty
Gábor M Harami
James R Sellers
Takeshi Sakamoto
Mihály Kovács
spellingShingle Nikolett T Nagy
Saikat Chakraborty
Gábor M Harami
James R Sellers
Takeshi Sakamoto
Mihály Kovács
A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
PLoS ONE
author_facet Nikolett T Nagy
Saikat Chakraborty
Gábor M Harami
James R Sellers
Takeshi Sakamoto
Mihály Kovács
author_sort Nikolett T Nagy
title A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
title_short A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
title_full A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
title_fullStr A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
title_full_unstemmed A subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
title_sort subdomain interaction at the base of the lever allosterically tunes the mechanochemical mechanism of myosin 5a.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description The motor domain of myosin is the core element performing mechanochemical energy transduction. This domain contains the actin and ATP binding sites and the base of the force-transducing lever. Coordinated subdomain movements within the motor are essential in linking the ATPase chemical cycle to translocation along actin filaments. A dynamic subdomain interface located at the base of the lever was previously shown to exert an allosteric influence on ATP hydrolysis in the non-processive myosin 2 motor. By solution kinetic, spectroscopic and ensemble and single-molecule motility experiments, we determined the role of a class-specific adaptation of this interface in the mechanochemical mechanism of myosin 5a, a processive intracellular transporter. We found that the introduction of a myosin 2-specific repulsive interaction into myosin 5a via the I67K mutation perturbs the strong-binding interaction of myosin 5a with actin, influences the mechanism of ATP binding and facilitates ATP hydrolysis. At the same time, the mutation abolishes the actin-induced activation of ADP release and, in turn, slows down processive motility, especially when myosin experiences mechanical drag exerted by the action of multiple motor molecules bound to the same actin filament. The results highlight that subtle structural adaptations of the common structural scaffold of the myosin motor enable specific allosteric tuning of motor activity shaped by widely differing physiological demands.
url http://europepmc.org/articles/PMC3641075?pdf=render
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