Literature DB >> 17130133

The slow skeletal muscle isoform of myosin shows kinetic features common to smooth and non-muscle myosins.

Bogdan Iorga1, Nancy Adamek, Michael A Geeves.   

Abstract

Fast and slow mammalian muscle myosins differ in the heavy chain sequences (MHC-2, MHC-1) and muscles expressing the two isoforms contract at markedly different velocities. One role of slow skeletal muscles is to maintain posture with low ATP turnover, and MHC-1 expressed in these muscles is identical to heavy chain of the beta-myosin of cardiac muscle. Few studies have addressed the biochemical kinetic properties of the slow MHC-1 isoform. We report here a detailed analysis of the MHC-1 isoform of the rabbit compared with MHC-2 and focus on the mechanism of ADP release. We show that MHC-1, like some non-muscle myosins, shows a biphasic dissociation of actin-myosin by ATP. Most of the actin-myosin dissociates at up to approximately 1000 s(-1), a very similar rate constant to MHC-2, but 10-15% of the complex must go through a slow isomerization (approximately 20 s(-1)) before ATP can dissociate it. Similar slow isomerizations were seen in the displacement of ADP from actin-myosin.ADP and provide evidence of three closely related actin-myosin.ADP complexes, a complex in rapid equilibrium with free ADP, a complex from which ADP is released at the rate required to define the maximum shortening velocity of slow muscle fibers (approximately 20 s(-1)), and a third complex that releases ADP too slowly (approximately 6 s(-1)) to be on the main ATPase pathway. The role of these actin-myosin.ADP complexes in the mechanochemistry of slow muscle contraction is discussed in relation to the load dependence of ADP release.

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Year:  2006        PMID: 17130133     DOI: 10.1074/jbc.M608191200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  21 in total

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2.  Nucleotide pocket thermodynamics measured by EPR reveal how energy partitioning relates myosin speed to efficiency.

Authors:  Thomas J Purcell; Nariman Naber; Kathy Franks-Skiba; Alexander R Dunn; Catherine C Eldred; Christopher L Berger; András Málnási-Csizmadia; James A Spudich; Douglas M Swank; Edward Pate; Roger Cooke
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Review 3.  Shaking the myosin family tree: biochemical kinetics defines four types of myosin motor.

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4.  Atomistic Models from Orientation and Distance Constraints Using EPR of a Bifunctional Spin Label.

Authors:  Benjamin P Binder; Andrew R Thompson; David D Thomas
Journal:  Biophys J       Date:  2019-06-20       Impact factor: 4.033

5.  Temperature dependent measurements reveal similarities between muscle and non-muscle myosin motility.

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6.  Mechanical and kinetic properties of β-cardiac/slow skeletal muscle myosin.

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Journal:  J Muscle Res Cell Motil       Date:  2012-07-31       Impact factor: 2.698

7.  Identification of functional differences between recombinant human α and β cardiac myosin motors.

Authors:  John C Deacon; Marieke J Bloemink; Heresh Rezavandi; Michael A Geeves; Leslie A Leinwand
Journal:  Cell Mol Life Sci       Date:  2012-02-16       Impact factor: 9.261

8.  Single-molecule analysis reveals that regulatory light chains fine-tune skeletal myosin II function.

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Journal:  J Biol Chem       Date:  2020-04-09       Impact factor: 5.157

9.  High-resolution helix orientation in actin-bound myosin determined with a bifunctional spin label.

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Journal:  Proc Natl Acad Sci U S A       Date:  2015-06-08       Impact factor: 11.205

10.  Erratum to: Identification of functional differences between recombinant human α and β cardiac myosin motors.

Authors:  John C Deacon; Marieke J Bloemink; Heresh Rezavandi; Michael A Geeves; Leslie A Leinwand
Journal:  Cell Mol Life Sci       Date:  2012-12       Impact factor: 9.261

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