Myoblasts, myosins, MyoDs, and the diversification of muscle fibers

[1]  G. Lyons,et al.  The expression of myosin genes in developing skeletal muscle in the mouse embryo , 1990, The Journal of cell biology.

[2]  J. Smith,et al.  Graded changes in dose of a Xenopus activin A homologue elicit stepwise transitions in embryonic cell fate , 1990, Nature.

[3]  J. Miller,et al.  Myogenic programs of mouse muscle cell lines: expression of myosin heavy chain isoforms, MyoD1, and myogenin , 1990, The Journal of cell biology.

[4]  E. Olson MyoD family: a paradigm for development? , 1990, Genes & development.

[5]  S. Hughes,et al.  ski can cause selective growth of skeletal muscle in transgenic mice. , 1990, Genes & development.

[6]  David J. Anderson,et al.  Two rat homologues of Drosophila achaete-scute specifically expressed in neuronal precursors , 1990, Nature.

[7]  T. Braun,et al.  Transcriptional activation domain of the muscle-specific gene-regulatory protein myf5 , 1990, Nature.

[8]  B. Kirschbaum,et al.  Antagonistic effects of chronic low frequency stimulation and thyroid hormone on myosin expression in rat fast-twitch muscle. , 1990, The Journal of biological chemistry.

[9]  D. Lockshon,et al.  MyoD binds cooperatively to two sites in a target enhancer sequence: occupancy of two sites is required for activation. , 1990, Proceedings of the National Academy of Sciences of the United States of America.

[10]  S. Rhodes,et al.  Differential trans activation associated with the muscle regulatory factors MyoD1, myogenin, and MRF4 , 1990, Molecular and cellular biology.

[11]  J. Mar,et al.  M-CAT binding factor, a novel trans-acting factor governing muscle-specific transcription , 1990, Molecular and cellular biology.

[12]  J. Sanes,et al.  Lineage, arrangement, and death of clonally related motoneurons in chick spinal cord , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[13]  J. Jansen,et al.  Development of homogeneous fast and slow motor units in the neonatal mouse soleus muscle. , 1990, Development.

[14]  Harold Weintraub,et al.  The protein Id: A negative regulator of helix-loop-helix DNA binding proteins , 1990, Cell.

[15]  H. Blau,et al.  Development of muscle fiber types in the prenatal rat hindlimb. , 1990, Developmental biology.

[16]  E. Olson,et al.  Myogenin resides in the nucleus and acquires high affinity for a conserved enhancer element on heterodimerization. , 1990, Genes & development.

[17]  E. Olson,et al.  Aberrant regulation of MyoD1 contributes to the partially defective myogenic phenotype of BC3H1 cells [published erratum appears in J Cell Biol 1990 Jun;110(6):2231] , 1990, The Journal of cell biology.

[18]  H. Blau,et al.  Differentiation of fiber types in aneural musculature of the prenatal rat hindlimb. , 1990, Developmental biology.

[19]  L. Gorza Identification of a novel type 2 fiber population in mammalian skeletal muscle by combined use of histochemical myosin ATPase and anti-myosin monoclonal antibodies. , 1990, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.

[20]  T. Lømo,et al.  Expression of myosin heavy chain isoforms in stimulated fast and slow rat muscles , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[21]  R. Markwald,et al.  Morphogenesis of precursor subpopulations of chicken limb mesenchyme in three dimensional collagen gel culture , 1990, The Anatomical record.

[22]  N. Rosenthal Muscle cell differentiation. , 1989, Current opinion in cell biology.

[23]  M. Duxson,et al.  Myonuclear birthdates distinguish the origins of primary and secondary myotubes in embryonic mammalian skeletal muscles. , 1989, Development.

[24]  J. Miller,et al.  Multiple cellular processes regulate expression of slow myosin heavy chain isoforms during avian myogenesis in vitro. , 1989, Developmental biology.

[25]  Y. Usson,et al.  The origin of secondary myotubes in mammalian skeletal muscles: ultrastructural studies. , 1989, Development.

[26]  E. Ralston,et al.  Nuclear domains in muscle cells , 1989, Cell.

[27]  S. Rhodes,et al.  Identification of MRF4: a new member of the muscle regulatory factor gene family. , 1989, Genes & development.

[28]  A. J. Harris,et al.  Neural control of the sequence of expression of myosin heavy chain isoforms in foetal mammalian muscles. , 1989, Development.

[29]  T. Braun,et al.  Differential expression of myogenic determination genes in muscle cells: possible autoactivation by the Myf gene products. , 1989, The EMBO journal.

[30]  E. Olson,et al.  A new myocyte-specific enhancer-binding factor that recognizes a conserved element associated with multiple muscle-specific genes. , 1989, Molecular and cellular biology.

[31]  C. Colmenares,et al.  The ski oncogene induces muscle differentiation in quail embryo cells , 1989, Cell.

[32]  G. Lyons,et al.  Expression of two myogenic regulatory factors myogenin and MyoDl during mouse embryogenesis , 1989, Nature.

[33]  F. Nottebohm,et al.  Neural cell adhesion molecule (N-CAM) is elevated in adult avian slow muscle fibers with multiple terminals. , 1989, Proceedings of the National Academy of Sciences of the United States of America.

[34]  A. Kelly,et al.  Metabolic specialization in fast and slow muscle fibers of the developing rat , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[35]  E. Ralston,et al.  Transfer of a protein encoded by a single nucleus to nearby nuclei in multinucleated myotubes. , 1989, Science.

[36]  E. Olson,et al.  A gene with homology to the myc similarity region of MyoD1 is expressed during myogenesis and is sufficient to activate the muscle differentiation program. , 1989, Genes & development.

[37]  David Baltimore,et al.  A new DNA binding and dimerization motif in immunoglobulin enhancer binding, daughterless, MyoD, and myc proteins , 1989, Cell.

[38]  T. Braun,et al.  A novel human muscle factor related to but distinct from MyoD1 induces myogenic conversion in 10T1/2 fibroblasts. , 1989, The EMBO journal.

[39]  P. Bonner Correlation of development stage and gap junction formation between chick embryo neurons and cloned skeletal muscle myoblasts. , 1989, Experimental cell research.

[40]  Victor K. Lin,et al.  Myogenin, a factor regulating myogenesis, has a domain homologous to MyoD , 1989, Cell.

[41]  H. Blau,et al.  Localization of muscle gene products in nuclear domains , 1989, Nature.

[42]  David A. Harris,et al.  Differential activation of myotube nuclei following exposure to an acetylcholine receptor-inducing factor , 1989, Nature.

[43]  L. Landmesser,et al.  The regulation of intramuscular nerve branching during normal development and following activity blockade. , 1988, Developmental biology.

[44]  G. Cossu,et al.  The expression of slow myosin during mammalian somitogenesis and limb bud differentiation , 1988, The Journal of cell biology.

[45]  T. Lømo,et al.  Control of contractile properties within adaptive ranges by patterns of impulse activity in the rat , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[46]  R. Moss,et al.  Myosin heavy chain composition of single cells from avian slow skeletal muscle is strongly correlated with velocity of shortening during development. , 1988, Developmental biology.

[47]  K. Latham,et al.  Myogenic lineage determination and differentiation: Evidence for a regulatory gene pathway , 1988, Cell.

[48]  R. Oppenheim,et al.  Reduction of naturally occurring motoneuron death in vivo by a target-derived neurotrophic factor. , 1988, Science.

[49]  H. Weintraub,et al.  Expression of a single transfected cDNA converts fibroblasts to myoblasts , 1987, Cell.

[50]  W. Thompson,et al.  Reinnervation of muscle fiber types in the newborn rat soleus , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[51]  J. Miller,et al.  The cellular basis of myosin heavy chain isoform expression during development of avian skeletal muscles. , 1987, Developmental biology.

[52]  F. Stockdale,et al.  What muscle cells know that nerves don't tell them , 1987, Trends in Neurosciences.

[53]  A. Rowlerson,et al.  The non‐selective innervation of muscle fibres and mixed composition of motor units in a muscle of neonatal rat. , 1987, The Journal of physiology.

[54]  M. Buckingham,et al.  Developmental pattern of mouse skeletal myosin heavy chain gene transcripts in vivo and in vitro , 1987, Cell.

[55]  F. Stockdale,et al.  Identification of sarcolemma-associated antigens with differential distributions on fast and slow skeletal muscle fibers , 1987, The Journal of cell biology.

[56]  M. Narusawa,et al.  Slow myosin in developing rat skeletal muscle , 1987, The Journal of cell biology.

[57]  W. Thompson Changes in the innervation of mammalian skeletal muscle fibers during postnatal development , 1986, Trends in Neurosciences.

[58]  Harold Weintraub,et al.  Transfection of a DNA locus that mediates the conversion of 10T1 2 fibroblasts to myoblasts , 1986, Cell.

[59]  J. Miller,et al.  Developmental regulation of the multiple myogenic cell lineages of the avian embryo , 1986, The Journal of cell biology.

[60]  G. Cossu,et al.  Neural control of early myogenic differentiation in cultures of mouse somites. , 1986, Developmental biology.

[61]  G. Salviati,et al.  Synthesis of fast myosin induced by fast ectopic innervation of rat soleus muscle is restricted to the ectopic endplate region , 1986, Nature.

[62]  E. Cosmos,et al.  Fate of brachial muscles of the chick embryo innervated by inappropriate nerves: structural, functional and histochemical analyses. , 1986, Journal of embryology and experimental morphology.

[63]  M. Bennett,et al.  The role of innervation in the establishment of the topographical distribution of primary myotube types during development , 1986, Journal of neurocytology.

[64]  J. Miller,et al.  Developmental origins of skeletal muscle fibers: clonal analysis of myogenic cell lineages based on expression of fast and slow myosin heavy chains. , 1986, Proceedings of the National Academy of Sciences of the United States of America.

[65]  T. Kenny-Mobbs Myogenic differentiation in early chick wing mesenchyme in the absence of the brachial somites. , 1985, Journal of embryology and experimental morphology.

[66]  H. Blau,et al.  Plasticity of the differentiated state. , 1985, Science.

[67]  D. Simon,et al.  Genes for skeletal muscle myosin heavy chains are clustered and are not located on the same mouse chromosome as a cardiac myosin heavy chain gene. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[68]  M. Crow,et al.  Slow and fast myosin heavy chain content defines three types of myotubes in early muscle cell cultures , 1985, The Journal of cell biology.

[69]  G. Vrbóva,et al.  Invited review: Neural control of phenotypic expression in mammalian muscle fibers , 1985, Muscle & nerve.

[70]  D. V. van Essen,et al.  Specific innervation of muscle fiber types in a developmentally polyinnervated muscle. , 1985, Developmental biology.

[71]  J. Sanes,et al.  Selective reinnervation of intercostal muscles transplanted from different segmental levels to a common site , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[72]  S. Hauschka,et al.  Temporal separation of the migration of distinct myogenic precursor populations into the developing chick wing bud. , 1984, Developmental biology.

[73]  L. Landmesser The development of specific motor pathways in the chick embryo , 1984, Trends in Neurosciences.

[74]  B. Nadal-Ginard,et al.  Cardiac alpha- and beta-myosin heavy chain genes are organized in tandem. , 1984, Proceedings of the National Academy of Sciences of the United States of America.

[75]  M. Bennett Development of neuromuscular synapses. , 1983, Physiological reviews.

[76]  I. McLennan Differentiation of muscle fiber types in the chicken hindlimb. , 1983, Developmental biology.

[77]  J Brierley,et al.  Differentiation of muscle fiber types in aneurogenic brachial muscles of the chick embryo. , 1982, The Journal of experimental zoology.

[78]  R. Rutz,et al.  Clonal analysis of vertebrate myogenesis. VII. Heritability of muscle colony type through sequential subclonal passages in vitro. , 1982, Developmental biology.

[79]  R. Rutz,et al.  Spatial analysis of limb bud myogenesis: a proximodistal gradient of muscle colony-forming cells in chick embryo leg buds. , 1982, Developmental biology.

[80]  T. Adams,et al.  Neural induction of chick myoblast differentiation in culture. , 1982, Developmental biology.

[81]  A. Kelly,et al.  Development of muscle fiber specialization in the rat hindlimb , 1981, The Journal of cell biology.

[82]  M. Kieny,et al.  Limb-somite relationship: origin of the limb musculature. , 1977, Journal of embryology and experimental morphology.

[83]  S. Hauschka,et al.  Clonal analysis of vertebrate myogenesis. IV. Medium-dependent classification of colony-forming cells. , 1975, Developmental biology.

[84]  S. Hauschka Clonal analysis of vertebrate myogenesis. 3. Developmental changes in the muscle-colony-forming cells of the human fetal limb. , 1974, Developmental biology.

[85]  M. Bárány,et al.  ATPase Activity of Myosin Correlated with Speed of Muscle Shortening , 1967, The Journal of general physiology.

[86]  L. Landmesser,et al.  A reevaluation of the role of innervation in primary and secondary myogenesis in developing chick muscle. , 1991, Developmental biology.

[87]  D. J. Parry,et al.  Relative efficacy of slow and fast alpha-motoneurons to reinnervate mouse soleus muscle. , 1990, The American journal of physiology.

[88]  M. Molinaro,et al.  Chapter 9 Cell Heterogeneity in The Myogenic Lineage , 1987 .

[89]  S. Bernstein,et al.  Molecular genetics of myosin. , 1987, Annual review of biochemistry.

[90]  M. Crow,et al.  Myosin expression and specialization among the earliest muscle fibers of the developing avian limb. , 1986, Developmental biology.

[91]  F. Jolesz,et al.  Development, innervation, and activity-pattern induced changes in skeletal muscle. , 1981, Annual review of physiology.