Viscoelastic dynamics of actin filaments coupled to rotary F-ATPase: angular torque profile of the enzyme.
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W. Junge | D. Cherepanov | W Junge | O. Pänke | K. Gumbiowski | S. Engelbrecht | O Pänke | S Engelbrecht | D A Cherepanov | K Gumbiowski
[1] G. Fasman,et al. Handbook of biochemistry and molecular biology. Nucleic acids - v. 1 - 3. ed. , 1975 .
[2] J. Spudich,et al. Purification of muscle actin. , 1982, Methods in cell biology.
[3] Kazuhiko Kinosita,et al. Direct observation of the rotation of F1-ATPase , 1997, Nature.
[4] W. Junge,et al. Functional and idling rotatory motion within F1-ATPase. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[5] W. Junge,et al. F‐ATPase: specific observation of the rotating c subunit oligomer of EFoEF1 , 2000, FEBS letters.
[6] W. Junge,et al. Viscoelastic dynamics of actin filaments coupled to rotary F-ATPase: curvature as an indicator of the torque. , 2001, Biophysical journal.
[7] Masasuke Yoshida,et al. Stepping rotation of F1-ATPase visualized through angle-resolved single-fluorophore imaging. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[8] T D Pollard,et al. Mechanical properties of actin filament networks depend on preparation, polymerization conditions, and storage of actin monomers. , 1998, Biophysical journal.
[9] Masasuke Yoshida,et al. Rotation of Escherichia coli F(1)-ATPase. , 1999, Biochemical and biophysical research communications.
[10] J. Sedmak,et al. A rapid, sensitive, and versatile assay for protein using Coomassie brilliant blue G250. , 1977, Analytical biochemistry.
[11] J. D. Pardee,et al. [18] Purification of muscle actin , 1982 .
[12] A. Mulkidjanian,et al. Transient accumulation of elastic energy in proton translocating ATP synthase , 1999, FEBS letters.
[13] P. R. Bevington,et al. Data Reduction and Error Analysis for the Physical Sciences , 1969 .
[14] R. H. Fillingame,et al. Genetic fusions of subunit c in the F0 sector of H+-transporting ATP synthase. Functional dimers and trimers and determination of stoichiometry by cross-linking analysis. , 1998, The Journal of biological chemistry.
[15] P. Boyer. The ATP synthase--a splendid molecular machine. , 1997, Annual review of biochemistry.
[16] Kazuhiko Kinosita,et al. F1-ATPase: A Rotary Motor Made of a Single Molecule , 1998, Cell.
[17] Jan Pieter Abrahams,et al. Structure at 2.8 Â resolution of F1-ATPase from bovine heart mitochondria , 1994, Nature.
[18] J. Elgin. The Fokker-Planck Equation: Methods of Solution and Applications , 1984 .
[19] W. Junge,et al. The Single Channel Conductance of CF0 , 1989 .
[20] Masasuke Yoshida,et al. F 1-ATPase Is a Highly Efficient Molecular Motor that Rotates with Discrete 120 8 Steps , 1998 .
[21] R. Yasuda,et al. Direct measurement of the torsional rigidity of single actin filaments. , 1996, Journal of molecular biology.
[22] H. Noji,et al. A rotary molecular motor that can work at near 100% efficiency. , 2000, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[23] G. Oster,et al. Energy transduction in the F 1 motorofATPsynthase , 1998 .
[24] W. Junge. ATP synthase and other motor proteins. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[25] D. Klionsky,et al. In vivo evidence for the role of the epsilon subunit as an inhibitor of the proton-translocating ATPase of Escherichia coli , 1984, Journal of bacteriology.
[26] R. Nakamoto,et al. Energy Coupling, Turnover, and Stability of the F0F1 ATP Synthase Are Dependent on the Energy of Interaction between γ and β Subunits* , 1997, The Journal of Biological Chemistry.
[27] P. Dimroth,et al. Operation of the F(0) motor of the ATP synthase. , 2000, Biochimica et biophysica acta.
[28] T. Yanagida,et al. Torsional rigidity of single actin filaments and actin-actin bond breaking force under torsion measured directly by in vitro micromanipulation. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[29] W. Junge,et al. ATP synthase: an electrochemical transducer with rotatory mechanics. , 1997, Trends in biochemical sciences.
[30] E P Morris,et al. The structure of the acto-myosin subfragment 1 complex: results of searches using data from electron microscopy and x-ray crystallography. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[31] G. Oster,et al. ATP synthase: two motors, two fuels. , 1999, Structure.
[32] J. Happel,et al. Low Reynolds number hydrodynamics , 1965 .
[33] D. Cherepanov,et al. Contraction transitions of F1-F0 ATPase during catalytic turnover. , 1998, Biochimica et biophysica acta.
[34] T. Yanagida,et al. Mechanical rotation of the c subunit oligomer in ATP synthase (F0F1): direct observation. , 1999, Science.
[35] Masasuke Yoshida,et al. Observations of rotation within the FoF1‐ATP synthase: deciding between rotation of the Fo c subunit ring and artifact , 2000, FEBS letters.
[36] R. Nakamoto,et al. Stability and functionality of cysteine‐less FOF1 ATP synthase from Escherichia coli , 1998, FEBS letters.
[37] G. Fasman,et al. Physical and chemical data , 1976 .
[38] O. Pänke,et al. Energy and entropy balance of ATP synthesis , 1997 .
[39] H. Stahlberg,et al. Bacterial Na+‐ATP synthase has an undecameric rotor , 2001, EMBO reports.
[40] W. Junge,et al. Stepped versus continuous rotatory motors at the molecular scale. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[41] Hiroyasu Itoh,et al. Resolution of distinct rotational substeps by submillisecond kinetic analysis of F1-ATPase , 2001, Nature.
[42] J. Howard,et al. The force exerted by a single kinesin molecule against a viscous load. , 1994, Biophysical journal.
[43] A. Leslie,et al. Structural model of F1-ATPase and the implications for rotary catalysis. , 2000, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[44] J G Wise,et al. Site-directed mutagenesis of the conserved beta subunit tyrosine 331 of Escherichia coli ATP synthase yields catalytically active enzymes. , 1990, The Journal of biological chemistry.
[45] J. Weber,et al. Binding and Hydrolysis of TNP-ATP by Escherichia coli F-ATPase (*) , 1996, The Journal of Biological Chemistry.
[46] A G Leslie,et al. Molecular architecture of the rotary motor in ATP synthase. , 1999, Science.
[47] H. Isambert,et al. Flexibility of actin filaments derived from thermal fluctuations. Effect of bound nucleotide, phalloidin, and muscle regulatory proteins , 1995, The Journal of Biological Chemistry.
[48] H. Risken. Fokker-Planck Equation , 1984 .
[49] W. Junge,et al. Three‐stepped rotation of subunits γ and ϵ in single molecules of F‐ATPase as revealed by polarized, confocal fluorometry , 1998 .
[50] Toshio Yanagida,et al. Direct observation of motion of single F-actin filaments in the presence of myosin , 1984, Nature.
[51] Henning Stahlberg,et al. Structural biology: Proton-powered turbine of a plant motor , 2000, Nature.
[52] K. Krab,et al. Improved derivation of phosphate potentials at different temperatures , 1992 .
[53] Kiwamu Saito,et al. The γ-subunit rotation and torque generation in F1-ATPase from wild-type or uncoupled mutant Escherichia coli , 1999 .
[54] J. Howard,et al. Flexural rigidity of microtubules and actin filaments measured from thermal fluctuations in shape , 1993, The Journal of cell biology.
[55] Panke,et al. Kinetic modeling of rotary CF0F1-ATP synthase: storage of elastic energy during energy transduction , 1999, Biochimica et biophysica acta.
[56] B. Böttcher,et al. Current Research in Photosynthesis. Proceedings of the VIIIth International Conference on Photosynthesis , 1990 .
[57] Masasuke Yoshida,et al. The γ subunit in chloroplast F1‐ATPase can rotate in a unidirectional and counter‐clockwise manner , 1999 .
[58] H. Risken. The Fokker-Planck equation : methods of solution and applications , 1985 .
[59] H. Noji,et al. F1-ATPase: a highly efficient rotary ATP machine. , 2000, Essays in biochemistry.
[60] J. Abrahams,et al. The structure of bovine mitochondrial F1-ATPase: an example of rotary catalysis. , 1999, Biochemical Society transactions.