Literature DB >> 21819137

Single myosin cross-bridge orientation in cardiac papillary muscle detects lever-arm shear strain in transduction.

Thomas P Burghardt1, Matthew P Josephson, Katalin Ajtai.   

Abstract

Myosin motors transduce ATP free energy into mechanical work. Transduction models allocate specific functions to motor structural domains beginning with ATP hydrolysis in the active site and ending in a lever-arm rotating power-stroke. Myosin light chains, regulatory (RLC) and essential (ELC), bind IQ-domains on the lever-arm and track its movement. Strong evidence exists that light chains stabilize the lever-arm and that light chain mutation undermines stability. Human ventricular RLC tagged with photoactivatable GFP (HCRLC-PAGFP) replaces native RLC in porcine papillary muscle fibers, restores native contractility, and situates PAGFP for single molecule orientation tracking within the crowded fiber lattice. The spatial emission pattern from single photoactivated PAGFP tagged myosins was observed in z-stacks fitted simultaneously to maximize accuracy in estimated dipole orientation. Emitter dipole polar and azimuthal angle pair scatter plots identified an area where steric and molecular crowding constraints depopulated orientations unfavorable for actin interaction. Transitions between pre- and post-power-stroke states represent the lever-arm trajectory sampled by the data and quantify lever-arm shear strain in transduction at three tension levels. These data identify forces acting on myosin in the in situ fiber system due to crowding, steric hindrance, and actomyosin interaction. They induce lever-arm shear strain observed with single molecule orientation detection. A single myosin work histogram reveals discretized power-stroke substates reminiscent of the Huxley-Simmons model for myosin based contraction [Huxley and Simmons ( 1971 ) Nature 233 , 533]. RLC or ELC mutation, should it impact lever-arm shear strain, will be detected as changes in single myosin shear strain or power-stroke substate distribution.

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Year:  2011        PMID: 21819137      PMCID: PMC3177300          DOI: 10.1021/bi2008992

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  30 in total

1.  A photoactivatable GFP for selective photolabeling of proteins and cells.

Authors:  George H Patterson; Jennifer Lippincott-Schwartz
Journal:  Science       Date:  2002-09-13       Impact factor: 47.728

2.  Single molecules observed by near-field scanning optical microscopy.

Authors:  E Betzig; R J Chichester
Journal:  Science       Date:  1993-11-26       Impact factor: 47.728

3.  Movement and force produced by a single myosin head.

Authors:  J E Molloy; J E Burns; J Kendrick-Jones; R T Tregear; D C White
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5.  Single-molecule fluorescence characterization in native environment.

Authors:  Thomas P Burghardt; Katalin Ajtai
Journal:  Biophys Rev       Date:  2010-12-01

6.  The myosin C-loop is an allosteric actin contact sensor in actomyosin.

Authors:  Katalin Ajtai; Miriam F Halstead; Miklós Nyitrai; Alan R Penheiter; Ye Zheng; Thomas P Burghardt
Journal:  Biochemistry       Date:  2009-06-16       Impact factor: 3.162

7.  Three-dimensional structure of myosin subfragment-1: a molecular motor.

Authors:  I Rayment; W R Rypniewski; K Schmidt-Bäse; R Smith; D R Tomchick; M M Benning; D A Winkelmann; G Wesenberg; H M Holden
Journal:  Science       Date:  1993-07-02       Impact factor: 47.728

8.  GFP-tagged regulatory light chain monitors single myosin lever-arm orientation in a muscle fiber.

Authors:  Thomas P Burghardt; Katalin Ajtai; Daniel K Chan; Miriam F Halstead; Jinhui Li; Ye Zheng
Journal:  Biophys J       Date:  2007-05-18       Impact factor: 4.033

9.  Single molecule fluorescence image patterns linked to dipole orientation and axial position: application to myosin cross-bridges in muscle fibers.

Authors:  Thomas P Burghardt
Journal:  PLoS One       Date:  2011-02-08       Impact factor: 3.240

10.  Coupling of ATPase activity and motility in smooth muscle myosin is mediated by the regulatory light chain.

Authors:  K M Trybus; G S Waller; T A Chatman
Journal:  J Cell Biol       Date:  1994-03       Impact factor: 10.539

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  13 in total

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Authors:  Thomas P Burghardt
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2.  The non-linear elasticity of the muscle sarcomere and the compliance of myosin motors.

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Journal:  J Physiol       Date:  2013-12-16       Impact factor: 5.182

3.  In vitro and in vivo single myosin step-sizes in striated muscle.

Authors:  Thomas P Burghardt; Xiaojing Sun; Yihua Wang; Katalin Ajtai
Journal:  J Muscle Res Cell Motil       Date:  2016-01-04       Impact factor: 2.698

4.  The Qdot-labeled actin super-resolution motility assay measures low-duty cycle muscle myosin step size.

Authors:  Yihua Wang; Katalin Ajtai; Thomas P Burghardt
Journal:  Biochemistry       Date:  2013-02-21       Impact factor: 3.162

5.  Regulatory light chain mutants linked to heart disease modify the cardiac myosin lever arm.

Authors:  Thomas P Burghardt; Laura A Sikkink
Journal:  Biochemistry       Date:  2013-02-06       Impact factor: 3.162

6.  The contributions of filaments and cross-bridges to sarcomere compliance in skeletal muscle.

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7.  In vivo orientation of single myosin lever arms in zebrafish skeletal muscle.

Authors:  Xiaojing Sun; Stephen C Ekker; Eric A Shelden; Naoko Takubo; Yihua Wang; Thomas P Burghardt
Journal:  Biophys J       Date:  2014-09-16       Impact factor: 4.033

8.  In vivo myosin step-size from zebrafish skeletal muscle.

Authors:  Thomas P Burghardt; Katalin Ajtai; Xiaojing Sun; Naoko Takubo; Yihua Wang
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Review 9.  Myosin light chains: Teaching old dogs new tricks.

Authors:  Sarah M Heissler; James R Sellers
Journal:  Bioarchitecture       Date:  2014

10.  Optimized measurements of separations and angles between intra-molecular fluorescent markers.

Authors:  Kim I Mortensen; Jongmin Sung; Henrik Flyvbjerg; James A Spudich
Journal:  Nat Commun       Date:  2015-10-16       Impact factor: 14.919

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