Phospholamban modulates the functional coupling between nucleotide domains in Ca-ATPase oligomeric complexes in cardiac sarcoplasmic reticulum.
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T. Soares | T. Squier | D. Bigelow | Q. Yao | Linda T L Chen | L. Chen
[1] Baowei Chen,et al. Concerted but noncooperative activation of nucleotide and actuator domains of the Ca-ATPase upon calcium binding. , 2008, Biochemistry.
[2] N. Goodey,et al. Allosteric regulation and catalysis emerge via a common route. , 2008, Nature chemical biology.
[3] C. Toyoshima,et al. Interaction sites among phospholamban, sarcolipin, and the sarco(endo)plasmic reticulum Ca(2+)-ATPase. , 2008, Biochemical and biophysical research communications.
[4] S. Becker,et al. Structural characterization of Ca(2+)-ATPase-bound phospholamban in lipid bilayers by solid-state nuclear magnetic resonance (NMR) spectroscopy. , 2008, Biochemistry.
[5] David D. Thomas,et al. Controlling the Inhibition of the Sarcoplasmic Ca2+-ATPase by Tuning Phospholamban Structural Dynamics* , 2007, Journal of Biological Chemistry.
[6] L. Jones,et al. Mechanism of Reversal of Phospholamban Inhibition of the Cardiac Ca2+-ATPase by Protein Kinase A and by Anti-phospholamban Monoclonal Antibody 2D12* , 2007, Journal of Biological Chemistry.
[7] J. Froehlich,et al. Phospholamban inhibits Ca-ATPase conformational changes involving the E2 intermediate. , 2007, Biochemistry.
[8] S. Pantano,et al. The role of phosphorylation on the structure and dynamics of phospholamban: A model from molecular simulations , 2006, Proteins.
[9] Y. Sugita,et al. Structural changes in the cytoplasmic domain of phospholamban by phosphorylation at Ser16: a molecular dynamics study. , 2006, Biochemistry.
[10] P. Kollman,et al. New-generation amber united-atom force field. , 2006, The journal of physical chemistry. B.
[11] D. Stokes,et al. Interactions between Ca2+-ATPase and the pentameric form of phospholamban in two-dimensional co-crystals. , 2006, Biophysical journal.
[12] D. Stokes,et al. Cross-linking of C-terminal Residues of Phospholamban to the Ca2+ Pump of Cardiac Sarcoplasmic Reticulum to Probe Spatial and Functional Interactions within the Transmembrane Domain* , 2006, Journal of Biological Chemistry.
[13] T. Squier,et al. Coil-to-Helix Transition within Phospholamban Underlies Release of Ca-ATPase Inhibition in Response to β-Adrenergic Signaling , 2006 .
[14] C. Boschek,et al. Essential role for Pro21 in phospholamban for optimal inhibition of the Ca-ATPase. , 2005, Biochemistry.
[15] Y. Sugita,et al. Structural role of countertransport revealed in Ca(2+) pump crystal structure in the absence of Ca(2+). , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[16] J. Froehlich,et al. Intermolecular conformational coupling and free energy exchange enhance the catalytic efficiency of cardiac muscle SERCA2a following the relief of phospholamban inhibition. , 2005, Biochemistry.
[17] T. Squier,et al. Redox modulation of cellular signaling and metabolism through reversible oxidation of methionine sensors in calcium regulatory proteins. , 2005, Biochimica et biophysica acta.
[18] Poul Nissen,et al. Phosphoryl Transfer and Calcium Ion Occlusion in the Calcium Pump , 2004, Science.
[19] J. Froehlich,et al. The time-dependent distribution of phosphorylated intermediates in native sarcoplasmic reticulum Ca2+-ATPase from skeletal muscle is not compatible with a linear kinetic model. , 2004, Biochemistry.
[20] Baowei Chen,et al. Calcium activation of the Ca-ATPase enhances conformational heterogeneity between nucleotide binding and phosphorylation domains. , 2004, Biochemistry.
[21] T. Squier,et al. Conformational changes within the cytosolic portion of phospholamban upon release of Ca-ATPase inhibition. , 2004, Biochemistry.
[22] Yijia Xiong,et al. Phospholamban binds in a compact and ordered conformation to the Ca-ATPase. , 2004, Biochemistry.
[23] T. Squier,et al. Phosphorylation by cAMP-dependent protein kinase modulates the structural coupling between the transmembrane and cytosolic domains of phospholamban. , 2003, Biochemistry.
[24] E. Kranias,et al. Calcium: Phospholamban: a crucial regulator of cardiac contractility , 2003, Nature Reviews Molecular Cell Biology.
[25] Z. Weng,et al. A novel shape complementarity scoring function for protein‐protein docking , 2003, Proteins.
[26] Y. Sugita,et al. Modeling of the inhibitory interaction of phospholamban with the Ca2+ ATPase , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[27] J. Meiler,et al. A Structural Model of the Complex Formed by Phospholamban and the Calcium Pump of Sarcoplasmic Reticulum Obtained by Molecular Mechanics , 2002, Chembiochem : a European journal of chemical biology.
[28] D. Ferrington,et al. Comparable levels of Ca-ATPase inhibition by phospholamban in slow-twitch skeletal and cardiac sarcoplasmic reticulum. , 2002, Biochemistry.
[29] Zhiping Weng,et al. Docking unbound proteins using shape complementarity, desolvation, and electrostatics , 2002, Proteins.
[30] Chen Xu,et al. A structural model for the catalytic cycle of Ca(2+)-ATPase. , 2002, Journal of molecular biology.
[31] D. Stokes,et al. Locating phospholamban in co-crystals with Ca(2+)-ATPase by cryoelectron microscopy. , 2001, Biophysical journal.
[32] J. Li,et al. Oligomeric interactions between phospholamban molecules regulate Ca-ATPase activity in functionally reconstituted membranes. , 2001, Biochemistry.
[33] S. Negash,et al. Phospholamban remains associated with the Ca2+- and Mg2+-dependent ATPase following phosphorylation by cAMP-dependent protein kinase. , 2000, The Biochemical journal.
[34] T. Vorherr,et al. NMR Solution Structure of Phospholamban , 2000 .
[35] M. Nakasako,et al. Crystal structure of the calcium pump of sarcoplasmic reticulum at 2.6 Å resolution , 2000, Nature.
[36] D. Maclennan,et al. Physical Interactions between Phospholamban and Sarco(endo)plasmic Reticulum Ca2+-ATPases Are Dissociated by Elevated Ca2+, but Not by Phospholamban Phosphorylation, Vanadate, or Thapsigargin, and Are Enhanced by ATP* , 2000, The Journal of Biological Chemistry.
[37] J M Briggs,et al. Ionization state and molecular docking studies for the macrophage migration inhibitory factor: the role of lysine 32 in the catalytic mechanism , 2000, Journal of molecular recognition : JMR.
[38] L. Jones,et al. Kinetics studies of the cardiac Ca-ATPase expressed in Sf21 cells: new insights on Ca-ATPase regulation by phospholamban. , 2000, Biophysical journal.
[39] J M Briggs,et al. Docking of 4-oxalocrotonate tautomerase substrates: implications for the catalytic mechanism. , 1999, Biopolymers.
[40] S. Negash,et al. Rearrangement of domain elements of the Ca-ATPase in cardiac sarcoplasmic reticulum membranes upon phospholamban phosphorylation. , 1999, Biochemistry.
[41] Shaohui Huang,et al. Enhanced rotational dynamics of the phosphorylation domain of the Ca-ATPase upon calcium activation. , 1998, Biochemistry.
[42] David S. Goodsell,et al. Automated docking using a Lamarckian genetic algorithm and an empirical binding free energy function , 1998, J. Comput. Chem..
[43] D. Bigelow,et al. Affinity purification of the Ca-ATPase from cardiac sarcoplasmic reticulum membranes. , 1998, Protein expression and purification.
[44] David D. Thomas,et al. Complex Kinetic Behavior in the Na,K‐and Ca‐ATPases. Evidence for Subunit‐Subunit Interactions and Energy Conservation during Catalysis , 1997, Annals of the New York Academy of Sciences.
[45] S. Negash,et al. Phosphorylation of phospholamban by cAMP-dependent protein kinase enhances interactions between Ca-ATPase polypeptide chains in cardiac sarcoplasmic reticulum membranes. , 1996, Biochemistry.
[46] L. Runnels,et al. Theory and application of fluorescence homotransfer to melittin oligomerization. , 1995, Biophysical journal.
[47] L. Brand,et al. Orientation factor in steady-state and time-resolved resonance energy transfer measurements. , 1992, Biochemistry.
[48] M. Entman,et al. Nucleotide specificity of cardiac sarcoplasmic reticulum. Inhibition of GTPase activity by ATP analogue in fluorescein isothiocyanate-modified calcium ATPase. , 1991, The Journal of biological chemistry.
[49] G. Weber,et al. Oligomeric protein associations: transition from stochastic to deterministic equilibrium. , 1991, Biochemistry.
[50] E. Carafoli,et al. Nature and site of phospholamban regulation of the Ca2+ pump of sarcoplasmic reticulum , 1989, Nature.
[51] M. Kirchberger,et al. Modulation by polyelectrolytes of canine cardiac microsomal calcium uptake and the possible relationship to phospholamban. , 1989, The Journal of biological chemistry.
[52] J. Andersen. Monomer-oligomer equilibrium of sarcoplasmic reticulum Ca-ATPase and the role of subunit interaction in the Ca2+ pump mechanism. , 1989, Biochimica et biophysica acta.
[53] G. Inesi,et al. Roles of phosphorylation and nucleotide binding domains in calcium transport by sarcoplasmic reticulum adenosinetriphosphatase. , 1988, Biochemistry.
[54] T. Squier,et al. (Iodoacetamido)fluorescein labels a pair of proximal cysteines on the Ca2+-ATPase of sarcoplasmic reticulum. , 1988, Biochemistry.
[55] D. D. Thomas,et al. Lipid fluidity directly modulates the overall protein rotational mobility of the Ca-ATPase in sarcoplasmic reticulum. , 1988, The Journal of biological chemistry.
[56] D. D. Thomas,et al. Rotational dynamics and protein-protein interactions in the Ca-ATPase mechanism. , 1988, The Journal of biological chemistry.
[57] A. Bodley,et al. Acetyl phosphate as a substrate for the calcium ATPase of sarcoplasmic reticulum. , 1987, The Journal of biological chemistry.
[58] S. Highsmith,et al. Spatial organization of CaATPase molecules in sarcoplasmic reticulum vesicles. , 1987, Biochemistry.
[59] D. D. Thomas,et al. Temperature dependence of rotational dynamics of protein and lipid in sarcoplasmic reticulum membranes. , 1986, Biochemistry.
[60] T. Wang,et al. Homology of ATP binding sites from Ca2+ and (Na,K)-ATPases: comparison of the amino acid sequences of fluorescein isothiocyanate labeled peptides. , 1985, Biochemical and biophysical research communications.
[61] E. Gratton,et al. A continuously variable frequency cross-correlation phase fluorometer with picosecond resolution. , 1983, Biophysical journal.
[62] N. Green,et al. Identification of a labelled peptide after stoicheiometric reaction of fluorescein isothiocyanate with the Ca2+‐dependent adenosine triphosphatase of sarcoplasmic reticulum , 1982, FEBS letters.
[63] U. Pick,et al. Indications for an oligomeric structure and for conformational changes in sarcoplasmic reticulum Ca2+-ATPase labelled selectively with fluorescein. , 1980, Biochimica et biophysica acta.
[64] P. A. Lanzetta,et al. An improved assay for nanomole amounts of inorganic phosphate. , 1979, Analytical biochemistry.
[65] J. Froehlich,et al. Transient state kinetic studies of sarcoplasmic reticulum adenosine triphosphatase. , 1975, The Journal of biological chemistry.
[66] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[67] C. Toyoshima,et al. Structural aspects of ion pumping by Ca 2+-ATPase of sarcoplasmic reticulum , 2007 .
[68] J. Froehlich,et al. Transient-state kinetics of the ADP-insensitive phosphoenzyme in sarcoplasmic reticulum: implications for transient-state calcium translocation. , 1985, Biochemistry.