Literature DB >> 23222439

Sim1a and Arnt2 contribute to hypothalamo-spinal axon guidance by regulating Robo2 activity via a Robo3-dependent mechanism.

Jörn Schweitzer1, Heiko Löhr, Joshua L Bonkowsky, Katrin Hübscher, Wolfgang Driever.   

Abstract

Precise spatiotemporal control of axon guidance factor expression is a prerequisite for formation of functional neuronal connections. Although Netrin/Dcc- and Robo/Slit-mediated attractive and repulsive guidance of commissural axons have been extensively studied, little is known about mechanisms controlling mediolateral positioning of longitudinal axons in vertebrates. Here, we use a genetic approach in zebrafish embryos to study pathfinding mechanisms of dopaminergic and neuroendocrine longitudinal axons projecting from the hypothalamus into hindbrain and spinal cord. The transcription factors Sim1a and Arnt2 contribute to differentiation of a defined population of dopaminergic and neuroendocrine neurons. We show that both factors also control aspects of axon guidance: Sim1a or Arnt2 depletion results in displacement of hypothalamo-spinal longitudinal axons towards the midline. This phenotype is suppressed in robo3 guidance receptor mutant embryos. In the absence of Sim1a and Arnt2, expression of the robo3 splice isoform robo3a.1 is increased in the hypothalamus, indicating negative control of robo3a.1 transcription by these factors. We further provide evidence that increased Robo3a.1 levels interfere with Robo2-mediated repulsive axon guidance. Finally, we show that the N-terminal domain unique to Robo3a.1 mediates the block of Robo2 repulsive activity. Therefore, Sim1a and Arnt2 contribute to control of lateral positioning of longitudinal hypothalamic-spinal axons by negative regulation of robo3a.1 expression, which in turn attenuates the repulsive activity of Robo2.

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Year:  2013        PMID: 23222439      PMCID: PMC4497291          DOI: 10.1242/dev.087825

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  52 in total

1.  Identification of a dopaminergic enhancer indicates complexity in vertebrate dopamine neuron phenotype specification.

Authors:  Esther Fujimoto; Tamara J Stevenson; Chi-Bin Chien; Joshua L Bonkowsky
Journal:  Dev Biol       Date:  2011-01-27       Impact factor: 3.582

2.  Sim1 and Sim2 are required for the correct targeting of mammillary body axons.

Authors:  Jean-François Marion; Chun Yang; Aurore Caqueret; Francine Boucher; Jacques L Michaud
Journal:  Development       Date:  2005-11-16       Impact factor: 6.868

3.  Distinct protein domains and expression patterns confer divergent axon guidance functions for Drosophila Robo receptors.

Authors:  Bettina Spitzweck; Marko Brankatschk; Barry J Dickson
Journal:  Cell       Date:  2010-02-05       Impact factor: 41.582

4.  Deleted in Colorectal Cancer (DCC) encodes a netrin receptor.

Authors:  K Keino-Masu; M Masu; L Hinck; E D Leonardo; S S Chan; J G Culotti; M Tessier-Lavigne
Journal:  Cell       Date:  1996-10-18       Impact factor: 41.582

5.  Midbrain dopaminergic axons are guided longitudinally through the diencephalon by Slit/Robo signals.

Authors:  James P Dugan; Andrea Stratton; Hilary P Riley; W Todd Farmer; Grant S Mastick
Journal:  Mol Cell Neurosci       Date:  2010-11-27       Impact factor: 4.314

6.  Stromal cell-derived factor-1 antagonizes slit/robo signaling in vivo.

Authors:  Sreekanth H Chalasani; Angela Sabol; Hong Xu; Michael A Gyda; Kendall Rasband; Michael Granato; Chi-Bin Chien; Jonathan A Raper
Journal:  J Neurosci       Date:  2007-01-31       Impact factor: 6.167

Review 7.  Axon guidance at the midline: of mice and flies.

Authors:  Timothy A Evans; Greg J Bashaw
Journal:  Curr Opin Neurobiol       Date:  2010-01-14       Impact factor: 6.627

8.  Orthopedia homeodomain protein is essential for diencephalic dopaminergic neuron development.

Authors:  Soojin Ryu; Julia Mahler; Dario Acampora; Jochen Holzschuh; Simone Erhardt; Daniela Omodei; Antonio Simeone; Wolfgang Driever
Journal:  Curr Biol       Date:  2007-05-03       Impact factor: 10.834

Review 9.  Structural insight into Slit-Robo signalling.

Authors:  Erhard Hohenester
Journal:  Biochem Soc Trans       Date:  2008-04       Impact factor: 5.407

10.  Progressive impairment of developing neuroendocrine cell lineages in the hypothalamus of mice lacking the Orthopedia gene.

Authors:  D Acampora; M P Postiglione; V Avantaggiato; M Di Bonito; F M Vaccarino; J Michaud; A Simeone
Journal:  Genes Dev       Date:  1999-11-01       Impact factor: 11.361

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  11 in total

Review 1.  Transcriptional regulation of guidance at the midline and in motor circuits.

Authors:  Aref Arzan Zarin; Jamshid Asadzadeh; Juan-Pablo Labrador
Journal:  Cell Mol Life Sci       Date:  2013-08-06       Impact factor: 9.261

Review 2.  Transcription factors and effectors that regulate neuronal morphology.

Authors:  Celine Santiago; Greg J Bashaw
Journal:  Development       Date:  2014-12       Impact factor: 6.868

Review 3.  Patterning, specification, and differentiation in the developing hypothalamus.

Authors:  Joseph L Bedont; Elizabeth A Newman; Seth Blackshaw
Journal:  Wiley Interdiscip Rev Dev Biol       Date:  2015-03-27       Impact factor: 5.814

4.  The Temporal Neurogenesis Patterning of Spinal p3-V3 Interneurons into Divergent Subpopulation Assemblies.

Authors:  Dylan Deska-Gauthier; Joanna Borowska-Fielding; Christopher T Jones; Ying Zhang
Journal:  J Neurosci       Date:  2019-12-11       Impact factor: 6.167

Review 5.  Neuronal networks in mental diseases and neuropathic pain: Beyond brain derived neurotrophic factor and collapsin response mediator proteins.

Authors:  Tam T Quach; Jessica K Lerch; Jerome Honnorat; Rajesh Khanna; Anne-Marie Duchemin
Journal:  World J Psychiatry       Date:  2016-03-22

6.  Nephron proximal tubule patterning and corpuscles of Stannius formation are regulated by the sim1a transcription factor and retinoic acid in zebrafish.

Authors:  Christina N Cheng; Rebecca A Wingert
Journal:  Dev Biol       Date:  2014-12-25       Impact factor: 3.582

7.  Genetic variant rs17225178 in the ARNT2 gene is associated with Asperger Syndrome.

Authors:  Agnese Di Napoli; Varun Warrier; Simon Baron-Cohen; Bhismadev Chakrabarti
Journal:  Mol Autism       Date:  2015-02-27       Impact factor: 7.509

8.  Netrin1-DCC-Mediated Attraction Guides Post-Crossing Commissural Axons in the Hindbrain.

Authors:  Farnaz Shoja-Taheri; Arielle DeMarco; Grant S Mastick
Journal:  J Neurosci       Date:  2015-08-19       Impact factor: 6.167

9.  ARNT2 mutation causes hypopituitarism, post-natal microcephaly, visual and renal anomalies.

Authors:  Emma A Webb; Angham AlMutair; Daniel Kelberman; Chiara Bacchelli; Estelle Chanudet; Francesco Lescai; Cynthia L Andoniadou; Abdul Banyan; Al Alsawaid; Muhammad T Alrifai; Mohammed A Alahmesh; M Balwi; Seyedeh N Mousavy-Gharavy; Biljana Lukovic; Derek Burke; Mark J McCabe; Tessa Kasia; Robert Kleta; Elia Stupka; Philip L Beales; Dorothy A Thompson; W Kling Chong; Fowzan S Alkuraya; Juan-Pedro Martinez-Barbera; Jane C Sowden; Mehul T Dattani
Journal:  Brain       Date:  2013-09-10       Impact factor: 13.501

10.  Pioneer midbrain longitudinal axons navigate using a balance of Netrin attraction and Slit repulsion.

Authors:  Minkyung Kim; W Todd Farmer; Brielle Bjorke; Samuel A McMahon; Pierre J Fabre; Frédéric Charron; Grant S Mastick
Journal:  Neural Dev       Date:  2014-07-24       Impact factor: 3.842

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