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L STRYER

Showing results (41-50 of 72) with videos related to

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Neuron|May 1, 1994
Dual role of calmodulin in autophosphorylation of multifunctional CaM kinase may underlie decoding of calcium signalsP I Hanson, T Meyer, L Stryer, et al.
Biochemistry|September 6, 1994
Secondary structure of myristoylated recoverin determined by three-dimensional heteronuclear NMR: implications for the calcium-myristoyl switchJ B Ames, T Tanaka, L Stryer, et al.
Science (New York, N.Y.)|May 7, 1993
Recoverin's role: conclusion withdrawnJ B Hurley, A M Dizhoor, S Ray, et al.
Cell|November 19, 1993
Three-dimensional structure of recoverin, a calcium sensor in visionK M Flaherty, S Zozulya, L Stryer, et al.
The Journal of Biological Chemistry|October 5, 1988
Stereochemical course of the reaction catalyzed by the cyclic GMP phosphodiesterase from retinal rod outer segmentsF Eckstein, J W Karpen, J M Critchfield, et al.
The Journal of Cell Biology|May 1, 1981
Detection of actin assembly by fluorescence energy transferD L Taylor, J Reidler, J A Spudich, et al.
Proceedings of the National Academy of Sciences of the United States of America|June 1, 1989
Single-molecule fluorescence detection: autocorrelation criterion and experimental realization with phycoerythrinK Peck, L Stryer, A N Glazer, et al.
The Journal of Biological Chemistry|March 3, 1995
Amino-terminal myristoylation induces cooperative calcium binding to recoverinJ B Ames, T Porumb, T Tanaka, et al.
Proceedings of the National Academy of Sciences of the United States of America|April 1, 1988
Genetically engineered immunoglobulins reveal structural features controlling segmental flexibilityW P Schneider, T G Wensel, L Stryer, et al.
Journal of Biomolecular NMR|July 29, 1998
Differential isotype labeling strategy for determining the structure of myristoylated recoverin by NMR spectroscopyT Tanaka, J B Ames, M Kainosho, et al.
Pageof 8

Showing results (41-50 of 72) with videos related to

Sort By:
Pageof 8
Neuron|May 1, 1994
Dual role of calmodulin in autophosphorylation of multifunctional CaM kinase may underlie decoding of calcium signalsP I Hanson, T Meyer, L Stryer, et al.
Biochemistry|September 6, 1994
Secondary structure of myristoylated recoverin determined by three-dimensional heteronuclear NMR: implications for the calcium-myristoyl switchJ B Ames, T Tanaka, L Stryer, et al.
Science (New York, N.Y.)|May 7, 1993
Recoverin's role: conclusion withdrawnJ B Hurley, A M Dizhoor, S Ray, et al.
Cell|November 19, 1993
Three-dimensional structure of recoverin, a calcium sensor in visionK M Flaherty, S Zozulya, L Stryer, et al.
The Journal of Biological Chemistry|October 5, 1988
Stereochemical course of the reaction catalyzed by the cyclic GMP phosphodiesterase from retinal rod outer segmentsF Eckstein, J W Karpen, J M Critchfield, et al.
The Journal of Cell Biology|May 1, 1981
Detection of actin assembly by fluorescence energy transferD L Taylor, J Reidler, J A Spudich, et al.
Proceedings of the National Academy of Sciences of the United States of America|June 1, 1989
Single-molecule fluorescence detection: autocorrelation criterion and experimental realization with phycoerythrinK Peck, L Stryer, A N Glazer, et al.
The Journal of Biological Chemistry|March 3, 1995
Amino-terminal myristoylation induces cooperative calcium binding to recoverinJ B Ames, T Porumb, T Tanaka, et al.
Proceedings of the National Academy of Sciences of the United States of America|April 1, 1988
Genetically engineered immunoglobulins reveal structural features controlling segmental flexibilityW P Schneider, T G Wensel, L Stryer, et al.
Journal of Biomolecular NMR|July 29, 1998
Differential isotype labeling strategy for determining the structure of myristoylated recoverin by NMR spectroscopyT Tanaka, J B Ames, M Kainosho, et al.
Pageof 8