Analysis of embryonic and larval zebrafish skeletal myofibers from dissociated preparations.
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[1] Jun Z. Li,et al. Novel deletion of lysine 7 expands the clinical, histopathological and genetic spectrum of TPM2-related myopathies. , 2013, Brain : a journal of neurology.
[2] J. Dowling,et al. A novel approach to study motor neurons from zebrafish embryos and larvae in culture , 2012, Journal of Neuroscience Methods.
[3] J. Y. Kuwada,et al. Oxidative stress and successful antioxidant treatment in models of RYR1-related myopathy. , 2012, Brain : a journal of neurology.
[4] J. Dowling,et al. Congenital Myopathies: An Update , 2012, Current Neurology and Neuroscience Reports.
[5] J. Dowling,et al. neb: a zebrafish model of nemaline myopathy due to nebulin mutation , 2011, Disease Models & Mechanisms.
[6] K. Ohno. [Genetic defects and disorders at the neuromuscular junction]. , 2011, Brain and nerve = Shinkei kenkyu no shinpo.
[7] L. Kunkel,et al. Drug screening in a zebrafish model of Duchenne muscular dystrophy , 2011, Proceedings of the National Academy of Sciences.
[8] L. Zon,et al. The zebrafish dag1 mutant: a novel genetic model for dystroglycanopathies. , 2011, Human molecular genetics.
[9] Dimitra K. Georgiou,et al. Ryanodine receptors: structure, expression, molecular details, and function in calcium release. , 2010, Cold Spring Harbor perspectives in biology.
[10] J. Dowling,et al. Zebrafish MTMR14 is required for excitation-contraction coupling, developmental motor function and the regulation of autophagy. , 2010, Human molecular genetics.
[11] Hiromi Hirata,et al. Biogenesis of GPI-anchored proteins is essential for surface expression of sodium channels in zebrafish Rohon-Beard neurons to respond to mechanosensory stimulation , 2010, Development.
[12] Anamika Dayal,et al. Non–Ca2+-conducting Ca2+ channels in fish skeletal muscle excitation-contraction coupling , 2010, Proceedings of the National Academy of Sciences.
[13] Sreekanth H. Chalasani,et al. Imaging neural activity in worms, flies and mice with improved GCaMP calcium indicators , 2009, Nature Methods.
[14] A. Dolphin. Calcium channel diversity: multiple roles of calcium channel subunits , 2009, Current Opinion in Neurobiology.
[15] F. Schöck,et al. The initial steps of myofibril assembly: integrins pave the way , 2009, Nature Reviews Molecular Cell Biology.
[16] Andrew P. Vreede,et al. Loss of Myotubularin Function Results in T-Tubule Disorganization in Zebrafish and Human Myotubular Myopathy , 2009, PLoS genetics.
[17] C. Franzini-armstrong,et al. Proper Restoration of Excitation-Contraction Coupling in the Dihydropyridine Receptor β1-null Zebrafish Relaxed Is an Exclusive Function of the β1a Subunit* , 2009, Journal of Biological Chemistry.
[18] R. Bannister. Bridging the myoplasmic gap: recent developments in skeletal muscle excitation–contraction coupling , 2007, Journal of Muscle Research and Cell Motility.
[19] A F Dulhunty,et al. EXCITATION–CONTRACTION COUPLING FROM THE 1950s INTO THE NEW MILLENNIUM , 2006, Clinical and experimental pharmacology & physiology.
[20] Hiromi Hirata,et al. Non-sense mutations in the dihydropyridine receptor beta1 gene, CACNB1, paralyze zebrafish relaxed mutants. , 2006, Cell calcium.
[21] K. Beam,et al. Organization of Calcium Channel β1a Subunits in Triad Junctions in Skeletal Muscle* , 2006, Journal of Biological Chemistry.
[22] K. Campbell,et al. Dystroglycan: from biosynthesis to pathogenesis of human disease , 2006, Journal of Cell Science.
[23] C. Franzini-armstrong,et al. The beta 1a subunit is essential for the assembly of dihydropyridine-receptor arrays in skeletal muscle. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[24] M. Westerfield,et al. Zebrafish as a model for caveolin-associated muscle disease; caveolin-3 is required for myofibril organization and muscle cell patterning. , 2005, Human molecular genetics.
[25] C. Caputo,et al. Calcium transients in developing mouse skeletal muscle fibres , 2005, The Journal of physiology.
[26] Hiromi Hirata,et al. accordion, a zebrafish behavioral mutant, has a muscle relaxation defect due to a mutation in the ATPase Ca2+ pump SERCA1 , 2004, Development.
[27] P. Currie,et al. IDENTIFICATION OF A ZEBRAFISH MODEL OF MUSCULAR DYSTROPHY , 2004, Clinical and experimental pharmacology & physiology.
[28] E. McNally,et al. The dystrophin glycoprotein complex: signaling strength and integrity for the sarcolemma. , 2004, Circulation research.
[29] P. Currie,et al. The zebrafish as a model for muscular dystrophy and congenital myopathy. , 2003, Human molecular genetics.
[30] L. Zon,et al. Zebrafish: a model system for the study of human disease. , 2000, Current opinion in genetics & development.
[31] H Okamoto,et al. High-frequency generation of transgenic zebrafish which reliably express GFP in whole muscles or the whole body by using promoters of zebrafish origin. , 1997, Developmental biology.
[32] K A Dora,et al. Elevation of intracellular calcium in smooth muscle causes endothelial cell generation of NO in arterioles. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[33] D A Kane,et al. Mutations affecting somite formation and patterning in the zebrafish, Danio rerio. , 1996, Development.
[34] A. Emery. Population frequencies of inherited neuromuscular diseases—A world survey , 1991, Neuromuscular Disorders.
[35] B. Adams,et al. Intramembrane charge movement restored in dysgenic skeletal muscle by injection of dihydropyridine receptor cDNAs , 1990, Nature.
[36] M. Westerfield,et al. Overview of the Zebrafish system. , 1999, Methods in cell biology.