Literature DB >> 17513123

Neurotransmitter phenotype-specific expression changes in developing sympathetic neurons.

Galina Apostolova1, Roland Dorn, Sojeong Ka, Finn Hallböök, Joakim Lundeberg, Keren Liser, Vicky Hakim, Claude Brodski, Theologos M Michaelidis, Georg Dechant.   

Abstract

During late developmental phases individual sympathetic neurons undergo a switch from noradrenergic to cholinergic neurotransmission. This phenomenon of plasticity depends on target-derived signals in vivo and is triggered by neurotrophic factors in neuronal cultures. To analyze genome-wide expression differences between the two transmitter phenotypes we employed DNA microarrays. RNA expression profiles were obtained from chick paravertebral sympathetic ganglia, treated with neurotrophin 3, glial cell line-derived neurotrophic factor or ciliary neurotrophic factor, all of which stimulate cholinergic differentiation. Results were compared with the effect of nerve growth factor, which functions as a pro-noradrenergic stimulus. The gene set common to all three comparisons defined the noradrenergic and cholinergic synexpression groups. Several functional categories, such as signal transduction, G-protein-coupled signaling, cation transport, neurogenesis and synaptic transmission, were enriched in these groups. Experiments based on the prediction that some of the identified genes play a role in the neurotransmitter switch identified bone morphogenetic protein signaling as an inhibitor of cholinergic differentiation.

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Year:  2007        PMID: 17513123     DOI: 10.1016/j.mcn.2007.03.014

Source DB:  PubMed          Journal:  Mol Cell Neurosci        ISSN: 1044-7431            Impact factor:   4.314


  9 in total

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2.  The transcription factor Hmx1 and growth factor receptor activities control sympathetic neurons diversification.

Authors:  Alessandro Furlan; Moritz Lübke; Igor Adameyko; Francois Lallemend; Patrik Ernfors
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3.  Sweat gland innervation is pioneered by sympathetic neurons expressing a cholinergic/noradrenergic co-phenotype in the mouse.

Authors:  B Schütz; J von Engelhardt; M Gördes; M K-H Schäfer; L E Eiden; H Monyer; E Weihe
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4.  Myocardial Infarction Causes Transient Cholinergic Transdifferentiation of Cardiac Sympathetic Nerves via gp130.

Authors:  Antoinette Olivas; Ryan T Gardner; Lianguo Wang; Crystal M Ripplinger; William R Woodward; Beth A Habecker
Journal:  J Neurosci       Date:  2016-01-13       Impact factor: 6.167

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Journal:  Nat Commun       Date:  2016-08-25       Impact factor: 17.694

Review 6.  Autonomic cardiac innervation: development and adult plasticity.

Authors:  Wohaib Hasan
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7.  Temporal requirements for ISL1 in sympathetic neuron proliferation, differentiation, and diversification.

Authors:  Qingquan Zhang; Ru Huang; Youqiong Ye; Xiaoxia Guo; Jun Lu; Fugui Zhu; Xiaohui Gong; Qitong Zhang; Jie Yan; Lina Luo; Shaowei Zhuang; Yihan Chen; Xiaodong Zhao; Sylvia M Evans; Cizhong Jiang; Xingqun Liang; Yunfu Sun
Journal:  Cell Death Dis       Date:  2018-02-14       Impact factor: 8.469

8.  Insights into the neurochemical signature of the Innervation of Beige Fat.

Authors:  Aneta Stefanidis; Nicole M Wiedmann; Sonika Tyagi; Andrew M Allen; Matthew J Watt; Brian J Oldfield
Journal:  Mol Metab       Date:  2018-02-10       Impact factor: 7.422

9.  Untangling Peripheral Sympathetic Neurocircuits.

Authors:  Courtney Clyburn; Michael C Andresen; Susan L Ingram; Beth A Habecker
Journal:  Front Cardiovasc Med       Date:  2022-02-10
  9 in total

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