Calmodulin Stabilizes an Amphiphilic α-Helix within RC3/Neurogranin and GAP-43/Neuromodulin Only When Ca2+ Is Absent (*)
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J. Sutcliffe | P. Jennings | D. Gerendasy | S. Herron | P A Jennings | J G Sutcliffe | D D Gerendasy | S R Herron | Dan D. Gerendasy
[1] O. Bârzu,et al. Characterization of a synthetic calmodulin-binding peptide derived from Bacillus anthracis adenylate cyclase. , 1993, The Journal of biological chemistry.
[2] F A Quiocho,et al. Modulation of calmodulin plasticity in molecular recognition on the basis of x-ray structures. , 1993, Science.
[3] A. Means,et al. Molecular mechanisms of action of calmodulin. , 1988, Recent progress in hormone research.
[4] H. Vogel,et al. A peptide analog of the calmodulin‐binding domain of myosin light chain kinase adopts an aL‐helical structure in aqueous trifluoroethanol , 1993, Protein science : a publication of the Protein Society.
[5] J. Schwob,et al. Monoclonal antibodies show that kinase C phosphorylation of GAP-43 during axonogenesis is both spatially and temporally restricted in vivo , 1991, The Journal of cell biology.
[6] D. Storm,et al. Identification of the protein kinase C phosphorylation site in neuromodulin. , 1990, Biochemistry.
[7] S. Rhee,et al. Catalytic properties of inositol trisphosphate kinase: activation by Ca2+ and calmodulin , 1987, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[8] D. Storm,et al. Regulation of calmodulin binding to P-57. A neurospecific calmodulin binding protein. , 1987, The Journal of biological chemistry.
[9] W. DeGrado,et al. The interaction of calmodulin with amphiphilic peptides. , 1985, The Journal of biological chemistry.
[10] L. Schrama,et al. Protein kinase C substrate B-50 (GAP-43) and neurotransmitter release. , 1991, Progress in brain research.
[11] D. Storm,et al. Identification and characterization of the calmodulin-binding domain of neuromodulin, a neurospecific calmodulin-binding protein. , 1988, The Journal of biological chemistry.
[12] Robert L. Baldwin,et al. Relative helix-forming tendencies of nonpolar amino acids , 1990, Nature.
[13] L. Dekker,et al. Noradrenaline Release from Streptolysin O‐Permeated Rat Cortical Synaptosomes: Effects of Calcium, Phorbol Esters, Protein Kinase Inhibitors, and Antibodies to the Neuron‐Specific Protein Kinase C Substrate B‐50 (GAP‐43) , 1991, Journal of neurochemistry.
[14] H. Zwiers,et al. B‐50 (GAP‐43): Biochemistry and Functional Neurochemistry of a Neuron‐Specific Phosphoprotein , 1991, Journal of neurochemistry.
[15] O. Bârzu,et al. NMR and circular dichroic studies on the solution conformation of a synthetic peptide derived from the calmodulin-binding domain of Bordetella pertussis adenylate cyclase. , 1991, European journal of biochemistry.
[16] H. Zwiers,et al. B-50: structure, processing and interaction with ACTH. , 1991, Progress in brain research.
[17] J. Baudier,et al. Purification and characterization of a brain-specific protein kinase C substrate, neurogranin (p17). Identification of a consensus amino acid sequence between neurogranin and neuromodulin (GAP43) that corresponds to the protein kinase C phosphorylation site and the calmodulin-binding domain. , 1991, The Journal of biological chemistry.
[18] W. Gispen,et al. B-50 phosphorylation and polyphosphoinositide metabolism in nerve growth cone membranes , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[19] M. James,et al. Crystal structures of the helix-loop-helix calcium-binding proteins. , 1989, Annual review of biochemistry.
[20] M. James,et al. Calcium-binding sites in proteins: a structural perspective. , 1991, Advances in protein chemistry.
[21] W. Heideman,et al. Purification of a novel calmodulin binding protein from bovine cerebral cortex membranes. , 1983, Biochemistry.
[22] S. J. Chen,et al. Studies with synthetic peptide substrates derived from the neuronal protein neurogranin reveal structural determinants of potency and selectivity for protein kinase C. , 1993, Biochemistry.
[23] M. W. Young,et al. Igloo, a GAP-43-related gene expressed in the developing nervous system of Drosophila. , 1994, Development.
[24] Bruce L. McNaughton,et al. A selective increase in phosphorylation of protein F1, a protein kinase C substrate, directly related to three day growth of long term synaptic enhancement , 1985, Brain Research.
[25] W. DeGrado,et al. The design, synthesis, and characterization of tight‐binding inhibitors of calmodulin , 1985, Journal of cellular biochemistry.
[26] D. Storm,et al. Physicochemical and hydrodynamic characterization of P-57, a neurospecific calmodulin binding protein. , 1986, Biochemistry.
[27] F. Huang,et al. Characterization of a 7.5-kDa protein kinase C substrate (RC3 protein, neurogranin) from rat brain. , 1993, Archives of biochemistry and biophysics.
[28] M. Fishman,et al. GAP-43 as a plasticity protein in neuronal form and repair. , 1992, Journal of neurobiology.
[29] R. L. Baldwin,et al. Unusually stable helix formation in short alanine-based peptides. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[30] I. Schlichting,et al. Structure of the regulatory domain of scallop myosin at 2.8 Ä resolution , 1994, Nature.
[31] J. B. Watson,et al. Functional consequences of expression of the neuron-specific, protein kinase C substrate RC3 (neurogranin) in Xenopus oocytes , 1993, Brain Research.
[32] G. Sanyal,et al. Probable role of amphiphilicity in the binding of mastoparan to calmodulin. , 1985, Biochemistry.
[33] R. Corradetti,et al. Phosphorylation of the presynaptic protein B-50 (GAP-43) is increased during electrically induced long-term potentiation , 1992, Neuron.
[34] L. Benowitz,et al. GAP-43 expression in the developing rat lumbar spinal cord , 1991, Neuroscience.
[35] A. Means,et al. NMR studies of a complex of deuterated calmodulin with melittin. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[36] A. Bax,et al. Solution structure of calmodulin and its complex with a myosin light chain kinase fragment. , 1992, Cell calcium.
[37] H. Vogel,et al. Characterization of the calmodulin-binding domain of rat cerebellar nitric oxide synthase. , 1994, The Journal of biological chemistry.
[38] S. J. Chen,et al. Increased Phosphorylation of a 17‐kDa Protein Kinase C Substrate (P17) in Long‐Term Potentiation , 1992, Journal of neurochemistry.
[39] C. J. Salter,et al. Binding of a calcium sensitizer, bepridil, to cardiac troponin C. A fluorescence stopped-flow kinetic, circular dichroism, and proton nuclear magnetic resonance study. , 1990, The Journal of biological chemistry.
[40] N. Copeland,et al. Novel myosin heavy chain encoded by murine dilute coat colour locus , 1991, Nature.
[41] Y. Ben-Ari,et al. Neurogranin: immunocytochemical localization of a brain-specific protein kinase C substrate , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[42] N. Perrone-Bizzozero,et al. The Relationship of GAP‐43 to the Development and Plasticity of Synaptic Connections a , 1991, Annals of the New York Academy of Sciences.
[43] P. Manavalan,et al. Conformational transitions of calmodulin as studied by vacuum‐UV CD , 1987, Biopolymers.
[44] F. Bloom,et al. Subtractive cDNA cloning of RC3, a rodent cortex‐enriched mRNA encoding a novel 78 residue protein , 1990, Journal of neuroscience research.
[45] S. Cannon,et al. GAP-43 augments G protein-coupled receptor transduction in Xenopus laevis oocytes. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[46] H. Vogel,et al. The calmodulin-binding domain of caldesmon binds to calmodulin in an alpha-helical conformation. , 1994, Biochemistry.
[47] D. Storm,et al. Characterization of the calmodulin binding domain of neuromodulin. Functional significance of serine 41 and phenylalanine 42. , 1991, The Journal of biological chemistry.
[48] T. Tanaka,et al. Hydrophobic regions function in calmodulin-enzyme(s) interactions. , 1980, The Journal of biological chemistry.
[49] William F. DeGrado,et al. How calmodulin binds its targets: sequence independent recognition of amphiphilic α-helices , 1990 .
[50] D. Blumenthal,et al. The gamma-subunit of skeletal muscle phosphorylase kinase contains two noncontiguous domains that act in concert to bind calmodulin. , 1989, The Journal of biological chemistry.
[51] D. Storm,et al. Regulation of p68 RNA helicase by calmodulin and protein kinase C. , 1994, The Journal of biological chemistry.
[52] J. Sutcliffe,et al. Mutational and biophysical studies suggest RC3/neurogranin regulates calmodulin availability. , 1994, The Journal of biological chemistry.
[53] E. Neer,et al. G0 is a major growth cone protein subject to regulation by GAP-43 , 1990, Nature.
[54] J. Skene. Axonal growth-associated proteins. , 1989, Annual review of neuroscience.
[55] D. Storm,et al. Regulation of free calmodulin levels by neuromodulin: neuron growth and regeneration. , 1990, Trends in pharmacological sciences.
[56] T. Vorherr,et al. Interaction of calmodulin with the calmodulin binding domain of the plasma membrane Ca2+ pump. , 1990, Biochemistry.
[57] A. Gronenborn,et al. Solution structure of a calmodulin-target peptide complex by multidimensional NMR. , 1994, Science.
[58] J. Garnier,et al. Analysis of the accuracy and implications of simple methods for predicting the secondary structure of globular proteins. , 1978, Journal of molecular biology.
[59] S. Snyder,et al. Isolation of nitric oxide synthetase, a calmodulin-requiring enzyme. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[60] D. Storm,et al. Calcium-induced exposure of a hydrophobic surface on calmodulin. , 1980, Biochemistry.
[61] L. H. Lin,et al. Synthesis and transport of GAP-43 in entorhinal cortex neurons and perforant pathway during lesion-induced sprouting and reactive synaptogenesis. , 1992, Brain research. Molecular brain research.
[62] A. Lozano,et al. Expression of the growth-associated protein GAP-43 in adult rat retinal ganglion cells following axon injury , 1991, Neuron.
[63] J. Sutcliffe,et al. Localization of the protein kinase C phosphorylation/calmodulin-binding substrate RC3 in dendritic spines of neostriatal neurons. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[64] R. Sharma,et al. Purification and characterization of bovine lung calmodulin-dependent cyclic nucleotide phosphodiesterase. An enzyme containing calmodulin as a subunit. , 1986, The Journal of biological chemistry.
[65] R. Kretsinger. The linker of calmodulin--to helix or not to helix. , 1992, Cell calcium.
[66] D. Blumenthal,et al. Interaction of calmodulin and a calmodulin-binding peptide from myosin light chain kinase: major spectral changes in both occur as the result of complex formation. , 1985, Biochemistry.
[67] Olivier Gascuel,et al. A simple method for predicting the secondary structure of globular proteins: implications and accuracy , 1988, Comput. Appl. Biosci..
[68] O. Bârzu,et al. 1H and 15N NMR characterization of free and bound states of an amphiphilic peptide interacting with calmodulin. , 1992, Biochemistry.
[69] C. Woolf,et al. Time-dependent differences in the increase in GAP-43 expression in dorsal root ganglion cells after peripheral axotomy , 1991, Neuroscience.
[70] D. Ladant,et al. Interaction of Bordetella pertussis adenylate cyclase with calmodulin. Identification of two separated calmodulin-binding domains. , 1988, The Journal of biological chemistry.
[71] T. Vorherr,et al. Regulation of the calcium ion pump of sarcoplasmic reticulum: reversible inhibition by phospholamban and by the calmodulin binding domain of the plasma membrane calcium ion pump. , 1992, Biochemistry.
[72] J. Baudier,et al. The interactions of the brain-specific calmodulin-binding protein kinase C substrate, neuromodulin (GAP 43), with membrane phospholipids. , 1991, The Journal of biological chemistry.
[73] H. Weinstein,et al. Ca(2+)-binding and structural dynamics in the functions of calmodulin. , 1994, Annual review of physiology.
[74] W. Gispen. Phosphoprotein B-50 and phosphoinositides in brain synaptic plasma membranes: a possible feedback relationship. , 1986, Biochemical Society transactions.
[75] T. Vorherr,et al. The Molecular Basis of the Modulation of the Plasma Membrane Calcium Pump by Calmodulin a , 1992, Annals of the New York Academy of Sciences.