Troponin (Tn) is the calcium-sensing protein of striated muscle thin filaments. Its subunits are biomarkers for disease as mutations of them are the cause of disease. Understanding how Tn interacts with the thin filament is essential in understanding its involvement in disease. Calcium and strong crossbridges induce transitions in the position of Tm on the thin filaments involved in activation of contraction. The strong crossbridge transduces a signal back to Tn to increase its apparent affinity for calcium, but how this occurs is unknown. Strong crossbridges are more important in signal transduction in cardiac than skeletal muscle. How Tn/ thin filament interactions differ between these striated tissues is unknown. Comparative protein exchange and binding studies of Tn or its subunits within and to cardiac and skeletal myofibrils, FRET, and crosslinking studies within Tn in cardiac and skeletal myofibrils are used to determine the Tn's interactions and how they influence activation of contraction. Our first hypothesis is that calcium and strong crossbridges dramatically increase Tn dissociation rate from thin filaments. Our second hypothesis is that the calcium influence on Tn and Tn subunit interactions is less in cardiac than skeletal myofibrils, making the strong crossbridge a more critical component of activation in cardiac muscle. Our third hypothesis is that signal transduction from the strong crossbridge to Tn involves a crossbridge-dependent dissociation of part of Tnl. We will test these by the following Specific Aims: 1) Determine the influence of calcium and strong crossbridges on Tn dissociation rate in cardiac and skeletal myofibrils. 2) Define Tn subunits responsible for the calcium and strong crossbridge effects upon Tn dissociation rate and on regulatory interactions between TnC and Tnl. 3) Determine how designed and disease-associated mutant Tn subunits alter Tn subunit interactions and calcium activation of force in single myofibrils. ? ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
7R01HL073828-02
Application #
7098079
Study Section
Cardiac Contractility, Hypertrophy, and Failure Study Section (CCHF)
Program Officer
Buxton, Denis B
Project Start
2005-07-18
Project End
2010-05-31
Budget Start
2006-07-01
Budget End
2007-05-31
Support Year
2
Fiscal Year
2006
Total Cost
$336,404
Indirect Cost
Name
Purdue University
Department
Veterinary Sciences
Type
Schools of Earth Sciences/Natur
DUNS #
072051394
City
West Lafayette
State
IN
Country
United States
Zip Code
47907
Sen, Asok K; Swartz, Darl R; Gawalapu, Ravi K (2012) A kinetic model of troponin dissociation in relation to thin filament regulation in striated muscle. Math Biosci 238:32-7
Tikunova, Svetlana B; Liu, Bin; Swindle, Nicholas et al. (2010) Effect of calcium-sensitizing mutations on calcium binding and exchange with troponin C in increasingly complex biochemical systems. Biochemistry 49:1975-84
Shen, Qingwu W; Swartz, Darl R (2010) Influence of salt and pyrophosphate on bovine fast and slow myosin S1 dissociation from actin. Meat Sci 84:364-70
Lee, Ryan S; Tikunova, Svetlana B; Kline, Kristopher P et al. (2010) Effect of Ca2+ binding properties of troponin C on rate of skeletal muscle force redevelopment. Am J Physiol Cell Physiol 299:C1091-9
Yamazaki, Marie; Shen, Qingwu W; Swartz, Darl R (2010) Tripolyphosphate hydrolysis by bovine fast and slow myosin subfragment 1 isoforms. Meat Sci 85:446-52
Yang, Zhenyun; Yamazaki, Marie; Shen, Qingwu W et al. (2009) Differences between cardiac and skeletal troponin interaction with the thin filament probed by troponin exchange in skeletal myofibrils. Biophys J 97:183-94
Ayittey, Peter N; Walker, John S; Rice, Jeremy J et al. (2009) Glass microneedles for force measurements: a finite-element analysis model. Pflugers Arch 457:1415-22
Rice, John Jeremy; Tu, Yuhai; Poggesi, Corrado et al. (2008) Spatially-compressed cardiac myofilament models generate hysteresis that is not found in real muscle. Pac Symp Biocomput :366-77
Kobayashi, Tomoyoshi; Jin, Lei; de Tombe, Pieter P (2008) Cardiac thin filament regulation. Pflugers Arch 457:37-46
Pearson, David S; Swartz, Darl R; Geeves, Michael A (2008) Fast pressure jumps can perturb calcium and magnesium binding to troponin C F29W. Biochemistry 47:12146-58

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