The microtubule binding domain of microtubule-associated protein MAP1B contains a repeated sequence motif unrelated to that of MAP2 and tau
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[1] R. Vallee,et al. MAP 1A and MAP 1B are structurally related microtubule associated proteins with distinct developmental patterns in the CNS , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[2] A. Himmler. Structure of the bovine tau gene: alternatively spliced transcripts generate a protein family , 1989, Molecular and cellular biology.
[3] J. Ávila,et al. Characterization of proteins immunologically related to brain microtubule-associated protein MAP-1B in non-neural cells. , 1989, Journal of cell science.
[4] M. Kirschner,et al. Tau consists of a set of proteins with repeated C-terminal microtubule-binding domains and variable N-terminal domains , 1989, Molecular and cellular biology.
[5] R. A. Laymon,et al. A three-domain structure of kinesin heavy chain revealed by DNA sequence and microtubule binding analyses , 1989, Cell.
[6] S. Lewis,et al. Microtubule-associated protein MAP2 shares a microtubule binding motif with tau protein , 1988, Science.
[7] J. Ávila,et al. A casein kinase II-related activity is involved in phosphorylation of microtubule-associated protein MAP-1B during neuroblastoma cell differentiation , 1988, Journal of Cell Biology.
[8] L. Greene,et al. Nerve growth factor regulates both the phosphorylation and steady-state levels of microtubule-associated protein 1.2 (MAP1.2) , 1988, The Journal of cell biology.
[9] R. Vallee,et al. Microtubule-associated protein 1C from brain is a two-headed cytosolic dynein , 1988, Nature.
[10] M. Kirschner,et al. The primary structure and heterogeneity of tau protein from mouse brain. , 1988, Science.
[11] R. Vallee,et al. Retrograde transport by the microtubule-associated protein MAP 1C , 1987, Nature.
[12] J. Ávila,et al. Tubulin phosphorylation by casein kinase II is similar to that found in vivo , 1987, The Journal of cell biology.
[13] H. Okayama,et al. High-efficiency transformation of mammalian cells by plasmid DNA. , 1987, Molecular and cellular biology.
[14] P. D’Eustachio,et al. Structure and evolutionary origin of the gene encoding mouse NF-M, the middle-molecular-mass neurofilament protein. , 1987, European journal of biochemistry.
[15] Vladimir Gelfand,et al. 18 kDa microtubule‐associated protein: identification as a new light chain (LC‐3) of microtubule‐associated protein 1 (MAP‐1) , 1987, FEBS letters.
[16] B. Riederer,et al. MAP5: A novel brain microtubule-associated protein under strong developmental regulation , 1986, Journal of neurocytology.
[17] L. Greene,et al. Regulation of microtubule composition and stability during nerve growth factor-promoted neurite outgrowth , 1986, The Journal of cell biology.
[18] S. Lewis,et al. A cloned cDNA encoding MAP1 detects a single copy gene in mouse and a brain-abundant RNA whose level decreases during development , 1986, The Journal of cell biology.
[19] A. Villasanté,et al. Brain-specific expression of MAP2 detected using a cloned cDNA probe , 1986, The Journal of cell biology.
[20] D. Murphy,et al. Identification of a 34-kD polypeptide as a light chain of microtubule- associated protein-1 (MAP-1) and its association with a MAP-1 peptide that binds to microtubules , 1986, The Journal of cell biology.
[21] G. Bloom,et al. A monoclonal antibody that cross-reacts with phosphorylated epitopes on two microtubule-associated proteins and two neurofilament polypeptides. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[22] J. Ávila,et al. Localization of the tubulin binding site for tau protein. , 1985, European journal of biochemistry.
[23] E. Shooter,et al. Nerve growth factor-induced neurite outgrowth in PC12 cells involves the coordinate induction of microtubule assembly and assembly-promoting factors , 1985, The Journal of cell biology.
[24] N. Cowan,et al. Structure of the mouse glial fibrillary acidic protein gene: implications for the evolution of the intermediate filament multigene family. , 1985, Nucleic acids research.
[25] G. Bloom,et al. Microtubule-associated protein 1B: identification of a major component of the neuronal cytoskeleton. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[26] Michael P. Sheetz,et al. Identification of a novel force-generating protein, kinesin, involved in microtubule-based motility , 1985, Cell.
[27] G. Bloom,et al. Identification of high molecular weight microtubule-associated proteins in anterior pituitary tissue and cells using taxol-dependent purification combined with microtubule-associated protein specific antibodies. , 1985, Biochemistry.
[28] R. Calvert,et al. A microtubule‐associated protein (MAP1) which is expressed at elevated levels during development of the rat cerebellum. , 1985, The EMBO journal.
[29] J. Hall,et al. Three expressed sequences within the human beta-tubulin multigene family each define a distinct isotype. , 1985, Journal of molecular biology.
[30] D. Purich,et al. Microtubule-associated proteins (MAPs): a monoclonal antibody to MAP 1 decorates microtubules in vitro but stains stress fibers and not microtubules in vivo. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[31] S. Lewis,et al. Genetics, evolution, and expression of the 68,000-mol-wt neurofilament protein: isolation of a cloned cDNA probe , 1985, The Journal of cell biology.
[32] A. Matus,et al. MAP3: characterization of a novel microtubule-associated protein , 1985, The Journal of cell biology.
[33] G. Wiche. High-molecular-weight microtubule associated proteins (MAPS): a ubiquitous family of cytoskeletal connecting links , 1985 .
[34] J. Olmsted,et al. MAP 4: a microtubule-associated protein specific for a subset of tissue microtubules , 1984, The Journal of cell biology.
[35] R. Maccioni,et al. Controlled proteolysis of tubulin by subtilisin: localization of the site for MAP2 interaction. , 1984, Biochemistry.
[36] D. Melton,et al. Efficient in vitro synthesis of biologically active RNA and RNA hybridization probes from plasmids containing a bacteriophage SP6 promoter. , 1984, Nucleic acids research.
[37] J. Hall,et al. Identification of two human beta-tubulin isotypes , 1983, Molecular and cellular biology.
[38] L. Greene,et al. Regulation of a high molecular weight microtubule-associated protein in PC12 cells by nerve growth factor , 1983, The Journal of cell biology.
[39] R. Mulligan,et al. Selection for animal cells that express the Escherichia coli gene coding for xanthine-guanine phosphoribosyltransferase. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[40] F. Sanger,et al. Cloning in single-stranded bacteriophage as an aid to rapid DNA sequencing. , 1980, Journal of molecular biology.
[41] F. Solomon,et al. Identification with cellular microtubules of one of the co-assembling microtubule-associated proteins , 1979, Cell.
[42] L. Pinna,et al. Structural features determining the site specificity of a rat liver cAMP-independent protein kinase. , 1979, Biochemical and biophysical research communications.
[43] 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.
[44] P Berg,et al. Labeling deoxyribonucleic acid to high specific activity in vitro by nick translation with DNA polymerase I. , 1977, Journal of molecular biology.
[45] M. Kirschner,et al. A protein factor essential for microtubule assembly. , 1975, Proceedings of the National Academy of Sciences of the United States of America.
[46] P. Y. Chou,et al. Prediction of protein conformation. , 1974, Biochemistry.
[47] A. Matus. Microtubule-associated proteins: their potential role in determining neuronal morphology. , 1988, Annual review of neuroscience.
[48] J. Olmsted,et al. Microtubule-associated proteins. , 1986, Annual review of cell biology.
[49] Scott T. Brady,et al. A novel brain ATPase with properties expected for the fast axonal transport motor , 1985, Nature.
[50] K. Weber,et al. Immunofluorescence and immunocytochemical procedures with affinity purified antibodies: tubulin-containing structures. , 1982, Methods in cell biology.