We will address several fundamental questions concerning the mechanics and energetics of the actomyosin interaction in active muscle fibers: 1. What are the fractions of myosin heads attached strongly to actin, and weakly to actin?. 2) What are the properties of the weakly bound states at the beginning of the power stroke? 3. How is the force produced in the power stroke related to the energetics of the formation of the actomyosin interface? We have recently developed two spectroscopic techniques, which will monitor the interaction of myosin with actin in the fibers. The fluorescent probe pyrene bound to the Cys-374 of actin senses the strong binding of myosin to actin, but not the weak binding. We have shown that we can label actin in a fiber and measure the fraction of myosin heads bound strongly to actin in an active fiber. We propose to measure the fraction attached strongly under a variety of conditions, e.g. during activation, or isotonic releases or changes in solvent conditions, etc. Knowledge of the fraction of myosin heads attached strongly to actin is essential for relating fiber mechanics to dat obtained from single molecules experimentally and for interpreting a number of structural results. The total fraction of myosin heads bound to actin will be determined using luminescence resonance energy transfer (LRET), by measuring a distance between a probe on myosin and a probe on the thin filament. LRET is capable of measuring the large distances involved, and we can isolate a signal that arises solely from transfer between myosin heads and actin. This signal will also provide information on the structure of the complex, and in particular it should be sensitive to changes that occur in the actomyosin interface. We have recently found that a polymer, polyethylene glycol (PEG), perturbs the actomyosin interaction. In particular, it can selectively populate the weakly bound, putative pre-power stroke states thought to exit at the beginning of the power stroke. Using PEG and analogs of phosphate, we will characterize the mechanics of these stakes, and using LRET we will investigate their structure. These spectroscopic techniques will be combined with mechanical measurements to define the energetics of the actomyosin interaction, and how the force produced correlates with the energetics of the strongly bound states. The data will connect mechanical data and structural dat to provide a more complete picture of how force is produced by actin and myosin in both skeletal and cardiac muscles.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL032145-17
Application #
6638238
Study Section
Physiological Chemistry Study Section (PC)
Program Officer
Varghese, Jamie
Project Start
1984-05-01
Project End
2005-03-31
Budget Start
2003-04-01
Budget End
2005-03-31
Support Year
17
Fiscal Year
2003
Total Cost
$271,813
Indirect Cost
Name
University of California San Francisco
Department
Biochemistry
Type
Schools of Medicine
DUNS #
094878337
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Purcell, Thomas J; Naber, Nariman; Franks-Skiba, Kathy et al. (2011) Nucleotide pocket thermodynamics measured by EPR reveal how energy partitioning relates myosin speed to efficiency. J Mol Biol 407:79-91
Hooijman, Pleuni; Stewart, Melanie A; Cooke, Roger (2011) A new state of cardiac myosin with very slow ATP turnover: a potential cardioprotective mechanism in the heart. Biophys J 100:1969-76
Purcell, Thomas J; Naber, Nariman; Sutton, Shirley et al. (2011) EPR spectra and molecular dynamics agree that the nucleotide pocket of myosin V is closed and that it opens on binding actin. J Mol Biol 411:16-26
Naber, Nariman; Cooke, Roger; Pate, Edward (2011) Slow myosin ATP turnover in the super-relaxed state in tarantula muscle. J Mol Biol 411:943-50
Naber, Nariman; Málnási-Csizmadia, András; Purcell, Thomas J et al. (2010) Combining EPR with fluorescence spectroscopy to monitor conformational changes at the myosin nucleotide pocket. J Mol Biol 396:937-48
Stewart, Melanie A; Franks-Skiba, Kathleen; Chen, Susan et al. (2010) Myosin ATP turnover rate is a mechanism involved in thermogenesis in resting skeletal muscle fibers. Proc Natl Acad Sci U S A 107:430-5
Stewart, Melanie; Franks-Skiba, Kathy; Cooke, Roger (2009) Myosin regulatory light chain phosphorylation inhibits shortening velocities of skeletal muscle fibers in the presence of the myosin inhibitor blebbistatin. J Muscle Res Cell Motil 30:17-27
Cooke, Roger (2007) Modulation of the actomyosin interaction during fatigue of skeletal muscle. Muscle Nerve 36:756-77
Franks-Skiba, Kathleen; Lardelli, Rea; Goh, Germaine et al. (2007) Myosin light chain phosphorylation inhibits muscle fiber shortening velocity in the presence of vanadate. Am J Physiol Regul Integr Comp Physiol 292:R1603-12
Karatzaferi, Christina; Chinn, Marc K; Cooke, Roger (2004) The force exerted by a muscle cross-bridge depends directly on the strength of the actomyosin bond. Biophys J 87:2532-44

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