Mechanisms of directional asymmetry in the zebrafish epithalamus

Seminars in Cell & Developmental Biology - Tập 20 - Trang 498-509 - 2009
Miguel L. Concha1, Iskra A. Signore1, Alicia Colombo1
1Laboratory of Experimental Ontogeny, Nucleus of Neural Morphogenesis (NEMO), Anatomy and Developmental Biology Program, Institute of Biomedical Sciences, Faculty of Medicine, University of Chile, Clasificador 7 – Correo 7 – Santiago, Chile

Tài liệu tham khảo

Vallortigara, 2005, Survival with an asymmetrical brain: advantages and disadvantages of cerebral lateralization, Behav Brain Sci, 28, 575, 10.1017/S0140525X05000105 Rogers, 2000, Evolution of hemispheric specialization: advantages and disadvantages, Brain Language, 73, 236, 10.1006/brln.2000.2305 Rogers, 2008, From antenna to antenna: lateral shift of olfactory memory recall by honeybees, PLoS ONE, 3, e2340, 10.1371/journal.pone.0002340 Escalante-Mead, 2003, Abnormal brain lateralization in high-functioning autism, J Autism Develop Disorders, 33, 539, 10.1023/A:1025887713788 Li, 2007, fMRI study of language activation in schizophrenia, schizoaffective disorder and in individuals genetically at high risk, Schizophr Res, 96, 14, 10.1016/j.schres.2007.07.013 Toth, 2004, Anomalies of asymmetry of clinical signs in parkinsonism, Mov Disord, 19, 151, 10.1002/mds.10685 Pascual, 2004, Neuroanatomy: brain asymmetry and long-term memory, Nature, 427, 605, 10.1038/427605a Hobert, 2002, Left–right asymmetry in the nervous system: the Caenorhabditis elegans model, Nat Rev, 3, 629, 10.1038/nrn897 Sagasti, 2007, Three ways to make two sides: genetic models of asymmetric nervous system development, Neuron, 55, 345, 10.1016/j.neuron.2007.07.015 Concha, 2004, The dorsal diencephalic conduction system of zebrafish as a model of vertebrate brain lateralisation, Neuroreport, 15, 1843, 10.1097/00001756-200408260-00001 Liang, 2000, Asymmetric nodal signaling in the zebrafish diencephalon positions the pineal organ, Development, 127, 5101, 10.1242/dev.127.23.5101 Concha, 2000, A nodal signaling pathway regulates the laterality of neuroanatomical asymmetries in the zebrafish forebrain, Neuron, 28, 399, 10.1016/S0896-6273(00)00120-3 Long, 2003, The zebrafish nodal-related gene southpaw is required for visceral and diencephalic left–right asymmetry, Development, 130, 2303, 10.1242/dev.00436 Inbal, 2007, Six3 represses nodal activity to establish early brain asymmetry in zebrafish, Neuron, 55, 407, 10.1016/j.neuron.2007.06.037 Gamse, 2005, Directional asymmetry of the zebrafish epithalamus guides dorsoventral innervation of the midbrain target, Development, 132, 4869, 10.1242/dev.02046 Gamse, 2003, The parapineal mediates left–right asymmetry in the zebrafish diencephalon, Development, 130, 1059, 10.1242/dev.00270 Concha, 2003, Local tissue interactions across the dorsal midline of the forebrain establish CNS laterality, Neuron, 39, 423, 10.1016/S0896-6273(03)00437-9 Carl, 2007, Wnt/Axin1/beta-catenin signaling regulates asymmetric nodal activation, elaboration, and concordance of CNS asymmetries, Neuron, 55, 393, 10.1016/j.neuron.2007.07.007 Regan JC, Concha ML, Roussigne M, Russell C, Wilson SW. An Fgf8-dependent bi-stable cell migratory event establishes CNS asymmetry. Neuron [in press]. Kuan, 2007, Neuropilin asymmetry mediates a left–right difference in habenular connectivity, Development, 134, 857, 10.1242/dev.02791 Aizawa, 2005, Laterotopic representation of left–right information onto the dorso-ventral axis of a zebrafish midbrain target nucleus, Curr Biol, 15, 238, 10.1016/j.cub.2005.01.014 Bianco, 2008, Brain asymmetry is encoded at the level of axon terminal morphology, Neural Develop, 3, 9, 10.1186/1749-8104-3-9 Ninkovic, 2006, The zebrafish as a model system for assessing the reinforcing properties of drugs of abuse, Methods (San Diego, CA), 39, 262, 10.1016/j.ymeth.2005.12.007 Sison, 2006, Fishing for genes influencing vertebrate behavior: zebrafish making headway, Lab Animal, 35, 33, 10.1038/laban0506-33 McLean, 2008, Using imaging and genetics in zebrafish to study developing spinal circuits in vivo, Develop Neurobiol, 68, 817, 10.1002/dneu.20617 Douglass, 2008, Escape behavior elicited by single, channelrhodopsin-2-evoked spikes in zebrafish somatosensory neurons, Curr Biol, 18, 1133, 10.1016/j.cub.2008.06.077 Orger, 2008, Control of visually guided behavior by distinct populations of spinal projection neurons, Nat Neurosci, 11, 327, 10.1038/nn2048 Ramdya, 2008, Emergence of binocular functional properties in a monocular neural circuit, Nat Neurosci, 10.1038/nn.2166 Okamoto, 2008, Transgenic technology for visualization and manipulation of the neural circuits controlling behavior in zebrafish, Develop Growth Different, 50, S167, 10.1111/j.1440-169X.2008.01003.x Barth, 2005, fsi zebrafish show concordant reversal of laterality of viscera, neuroanatomy, and a subset of behavioral responses, Curr Biol, 15, 844, 10.1016/j.cub.2005.03.047 Signore IA, Guerrero N, Loosli F, Colombo A, Villalon A., Wittbrodt J, et al. Zebrafish and medaka: model organisms for a comparative developmental approach of brain asymmetry. Philos Trans R Soc Lond B Biol Sci [in press]. Concha, 2001, Asymmetry in the epithalamus of vertebrates, J Anat, 199, 63, 10.1046/j.1469-7580.2001.19910063.x Bianco IH, Wilson SW. The habenular nuclei: a conserved asymmetric relay station in the vertebrate brain. Philos Trans R Soc Lond B Biol Sci [in press]. Halpern, 2003, Leaning to the left: laterality in the zebrafish forebrain, Trends Neurosci, 26, 308, 10.1016/S0166-2236(03)00129-2 Klemm, 2004, Habenular and interpeduncularis nuclei: shared components in multiple-function networks, Med Sci Monit, 10, RA261 Sutherland, 1982, The dorsal diencephalic conduction system: a review of the anatomy and functions of the habenular complex, Neurosci Biobehav Rev, 6, 1, 10.1016/0149-7634(82)90003-3 Aizawa, 2007, Temporally regulated asymmetric neurogenesis causes left–right difference in the zebrafish habenular structures, Develop Cell, 12, 87, 10.1016/j.devcel.2006.10.004 Hendricks, 2007, Asymmetric innervation of the habenula in zebrafish, J Comparat Neurol, 502, 611, 10.1002/cne.21339 Palmer, 1996, From symmetry to asymmetry: phylogenetic patterns of asymmetry variation in animals and their evolutionary significance, Proc Natl Acad Sci USA, 93, 14279, 10.1073/pnas.93.25.14279 VanValen, 1962, A study of fluctuating asymmetry, Evolution, 16, 125, 10.2307/2406192 Palmer, 2004, Symmetry breaking and the evolution of development, Science (New York, NY), 306, 828, 10.1126/science.1103707 Kennedy, 1999, Structural and functional brain asymmetries in human situs inversus totalis, Neurology, 53, 1260, 10.1212/WNL.53.6.1260 Tanaka, 1999, Dichotic listening in patients with situs inversus: brain asymmetry and situs asymmetry, Neuropsychologia, 37, 869, 10.1016/S0028-3932(98)00144-4 Torgersen, 1950, Situs inversus, asymmetry, and twinning, Am J Human Genet, 2, 361 Ferrell, 2002, Self-perpetuating states in signal transduction: positive feedback, double-negative feedback and bistability, Curr Opin Cell Biol, 14, 140, 10.1016/S0955-0674(02)00314-9 Ferrell, 2001, Bistability in cell signaling: how to make continuous processes discontinuous, and reversible processes irreversible, Chaos (Woodbury, NY), 11, 227, 10.1063/1.1349894 Xiong, 2003, A positive-feedback-based bistable ‘memory module’ that governs a cell fate decision, Nature, 426, 460, 10.1038/nature02089 Snelson, 2008, Formation of the asymmetric pineal complex in zebrafish requires two independently acting transcription factors, Dev Dyn, 237, 3538, 10.1002/dvdy.21607 Snelson, 2008, Tbx2b is required for the development of the parapineal organ, Development, 135, 1693, 10.1242/dev.016576 Sato, 2002, FGF is an essential mitogen and chemoattractant for the air sacs of the drosophila tracheal system, Develop Cell, 3, 195, 10.1016/S1534-5807(02)00202-2 Ghabrial, 2006, Social interactions among epithelial cells during tracheal branching morphogenesis, Nature, 441, 746, 10.1038/nature04829 Nakamura, 2006, Generation of robust left–right asymmetry in the mouse embryo requires a self-enhancement and lateral-inhibition system, Develop Cell, 11, 495, 10.1016/j.devcel.2006.08.002 Shen, 2007, Nodal signaling: developmental roles and regulation, Development, 134, 1023, 10.1242/dev.000166 Hirokawa, 2006, Nodal flow and the generation of left–right asymmetry, Cell, 125, 33, 10.1016/j.cell.2006.03.002 Raya, 2006, Left–right asymmetry in the vertebrate embryo: from early information to higher-level integration, Nat Rev Genet, 7, 283, 10.1038/nrg1830 Essner, 2000, Mesendoderm and left–right brain, heart and gut development are differentially regulated by pitx2 isoforms, Development, 127, 1081, 10.1242/dev.127.5.1081 Bisgrove, 1999, Regulation of midline development by antagonism of lefty and nodal signaling, Development, 126, 3253, 10.1242/dev.126.14.3253 Sampath, 1998, Induction of the zebrafish ventral brain and floorplate requires cyclops/nodal signalling, Nature, 395, 185, 10.1038/26020 Rebagliati, 1998, cyclops encodes a nodal-related factor involved in midline signaling, Proc Natl Acad Sci USA, 95, 9932, 10.1073/pnas.95.17.9932 Thisse, 1999, a novel and divergent member of the TGFbeta superfamily, negatively regulates mesoderm induction, Development, 126, 229, 10.1242/dev.126.2.229 Jaszczyszyn, 2007, Comparison of the expression of medaka (Oryzias latipes) pitx genes with other vertebrates shows high conservation and a case of functional shuffling in the pituitary, Gene, 406, 42, 10.1016/j.gene.2007.05.024 Soroldoni, 2007, Dynamic expression pattern of Nodal-related genes during left–right development in medaka, Gene Exp Patterns, 7, 93, 10.1016/j.modgep.2006.05.013 Zhang, 1998, Positional cloning identifies zebrafish one-eyed pinhead as a permissive EGF-related ligand required during gastrulation, Cell, 92, 241, 10.1016/S0092-8674(00)80918-6 Pogoda, 2000, The zebrafish forkhead transcription factor FoxH1/Fast1 is a modulator of nodal signaling required for organizer formation, Curr Biol, 10, 1041, 10.1016/S0960-9822(00)00669-2 Sirotkin, 2000, Fast1 is required for the development of dorsal axial structures in zebrafish, Curr Biol, 10, 1051, 10.1016/S0960-9822(00)00679-5 Seo, 1998, Expression of two zebrafish homologues of the murine Six3 gene demarcates the initial eye primordia, Mech Develop, 73, 45, 10.1016/S0925-4773(98)00028-8 Seo, 1998, Transient expression of a novel Six3-related zebrafish gene during gastrulation and eye formation, Gene, 216, 39, 10.1016/S0378-1119(98)00328-X Mathieu, 2004, Nodal and Fgf pathways interact through a positive regulatory loop and synergize to maintain mesodermal cell populations, Development, 131, 629, 10.1242/dev.00964 Yokota, 2003, A novel role for a nodal-related protein; Xnr3 regulates convergent extension movements via the FGF receptor, Development, 130, 2199, 10.1242/dev.00434 Vallier, 2005, Activin/Nodal and FGF pathways cooperate to maintain pluripotency of human embryonic stem cells, J Cell Sci, 118, 4495, 10.1242/jcs.02553 Cornell, 1994, Combinatorial signaling in development, Bioessays, 16, 577, 10.1002/bies.950160811 Cornell, 1994, Activin-mediated mesoderm induction requires FGF, Development, 120, 453, 10.1242/dev.120.2.453 Cornell, 1995, FGF is a prospective competence factor for early activin-type signals in Xenopus mesoderm induction, Development, 121, 2429, 10.1242/dev.121.8.2429 Kumano, 2002, The nodal target gene Xmenf is a component of an FGF-independent pathway of ventral mesoderm induction in Xenopus, Mech Develop, 118, 45, 10.1016/S0925-4773(02)00186-7 Poulain, 2006, Zebrafish endoderm formation is regulated by combinatorial Nodal, FGF and BMP signalling, Development, 133, 2189, 10.1242/dev.02387 Xiao, 2006, Activin A maintains self-renewal and regulates fibroblast growth factor, Wnt, and bone morphogenic protein pathways in human embryonic stem cells, Stem Cells (Dayton, OH), 24, 1476, 10.1634/stemcells.2005-0299 Rottinger, 2008, FGF signals guide migration of mesenchymal cells, control skeletal morphogenesis [corrected] and regulate gastrulation during sea urchin development, Development, 135, 353, 10.1242/dev.014282 De Robertis, 2004, Dorsal–ventral patterning and neural induction in Xenopus embryos, Ann Rev Cell Develop Biol, 20, 285, 10.1146/annurev.cellbio.20.011403.154124 Lecaudey, 2008, Dynamic Fgf signaling couples morphogenesis and migration in the zebrafish lateral line primordium, Development, 135, 2695, 10.1242/dev.025981 Nechiporuk, 2008, FGF-dependent mechanosensory organ patterning in zebrafish, Science (New York, NY), 320, 1774, 10.1126/science.1156547 Guglielmotti, 2006, The interplay between the pineal complex and the habenular nuclei in lower vertebrates in the context of the evolution of cerebral asymmetry, Brain Res Bull, 69, 475, 10.1016/j.brainresbull.2006.03.010 Engbretson, 1981, Habenular asymmetry and the central connections of the parietal eye of the lizard, J Comparat Neurol, 198, 155, 10.1002/cne.901980113 Hartwell, 1999, From molecular to modular cell biology, Nature, 402, C47, 10.1038/35011540 Winther, 2001, Varieties of modules: kinds, levels, origins, and behaviors, J Exp Zool, 291, 116, 10.1002/jez.1064 Gass, 2003, Modularity, 260 Gilbert, 1996, Resynthesizing evolutionary and developmental biology, Develop Biol, 173, 357, 10.1006/dbio.1996.0032 Wagner, 2007, The road to modularity, Nat Rev Genet, 8, 921, 10.1038/nrg2267 Raff, 2000, Dissociability, modularity, evolvability, Evolut Develop, 2, 235, 10.1046/j.1525-142x.2000.00069.x Raff, 2000, Modularity and dissociation in the evolution of gene expression territories in development, Evolut Develop, 2, 102, 10.1046/j.1525-142x.2000.00035.x von Dassow, 1999, Modularity in animal development and evolution: elements of a conceptual framework for EvoDevo, J Exp Zool, 285, 307, 10.1002/(SICI)1097-010X(19991215)285:4<307::AID-JEZ2>3.0.CO;2-V Bolker, 2000, Modularity in development and why it matters to Evo-Devo, Am Zool, 40, 770, 10.1668/0003-1569(2000)040[0770:MIDAWI]2.0.CO;2 Edinger, 1955, The size of the parietal foramen and organ in reptiles, Bull Museum Comparat Zool Harvard Collect, 114, 3 Edinger, 1956, Paired pineal organs, 121 Gladstone RJ, Wakeley CPG. The pineal organ. The comparative anatomy of median and lateral eyes, with special reference to the origin of the pineal body; and a description of the human pineal organ considered from the clinical and surgical standpoints. London: Baillière, Tindall and Cox; 1940. Braitenberg, 1970, Exceptions to bilateral symmetry in the epithalamus of lower vertebrates, J Comparat Neurol, 138, 137, 10.1002/cne.901380203 Rebagliati, 1998, Zebrafish nodal-related genes are implicated in axial patterning and establishing left–right asymmetry, Develop Biol, 199, 261, 10.1006/dbio.1998.8935 Bisgrove, 2000, Multiple pathways in the midline regulate concordant brain, heart and gut left–right asymmetry, Development, 127, 3567, 10.1242/dev.127.16.3567 Yan, 1999, Conserved requirement for EGF-CFC genes in vertebrate left–right axis formation, Genes Develop, 13, 2527, 10.1101/gad.13.19.2527 Albertson, 2005, Roles for fgf8 signaling in left–right patterning of the visceral organs and craniofacial skeleton, Develop Biol, 283, 310, 10.1016/j.ydbio.2005.04.025