Literature DB >> 20058310

The cortistatin gene PSS2 rather than the somatostatin gene PSS1 is strongly expressed in developing avian autonomic neurons.

Rae Nishi1, Jutta Stubbusch, Jonathan J Hulce, Martin Hruska, Anthony Pappas, Maria-Christina Bravo, Leslie P Huber, Benjamin Bakondi, John Soltys, Hermann Rohrer.   

Abstract

Somatostatin and cortistatin are neuromodulators with divergent expression patterns and biological roles. Whereas expression and function of genes encoding somatostatin (PSS1) and the related peptide cortistatin (PSS2) have been studied in detail for the central nervous system (CNS) and immune system, relatively little is known about their expression patterns in the peripheral nervous system (PNS). We compare the expression patterns of PSS1 and PSS2 in chicken embryos. At E14, PSS1 is higher in the CNS versus PNS, whereas PSS2 is higher in the PNS. During early development, PSS1 is transiently expressed in lumbar sympathetic ganglia and is detectable at low levels throughout the development of dorsal root and ciliary ganglia. In contrast, PSS2 expression increases as development progresses in sympathetic and dorsal root ganglia, whereas levels in ciliary ganglia by E8 are more than 100-fold higher than in sympathetic ganglia. Activin, which induces somatostatin-like immunoreactivity in ciliary ganglion neurons in vivo and in vitro, controls PSS2 expression by stabilizing PSS2 but not PSS1 mRNA. We conclude that much of the somatostatin-like immunoreactivity in the developing avian peripheral nervous system is actually cortistatin, the PSS2 product, as opposed to true somatostatin, which is the PSS1 product. The identification of PSS2 as the predominantly expressed somatostatin gene family member in avian autonomic neurons provides a molecular basis for further functional and pharmacological studies.

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Year:  2010        PMID: 20058310      PMCID: PMC2919489          DOI: 10.1002/cne.22245

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  37 in total

1.  Early stages of motor neuron differentiation revealed by expression of homeobox gene Islet-1.

Authors:  J Ericson; S Thor; T Edlund; T M Jessell; T Yamada
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2.  Topographic organization of embryonic motor neurons defined by expression of LIM homeobox genes.

Authors:  T Tsuchida; M Ensini; S B Morton; M Baldassare; T Edlund; T M Jessell; S L Pfaff
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3.  Differential expression of LIM homeobox genes among motor neuron subpopulations in the developing chick brain stem.

Authors:  A Varela-Echavarría; S L Pfaff; S Guthrie
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4.  Somatostatin-, vasoactive intestinal polypeptide- and neuropeptide Y-like immunoreactivity in eye- and submandibular gland-projecting sympathetic neurons.

Authors:  L L Wright; J I Luebke
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5.  In vivo and in vitro development of somatostatin-like-immunoreactivity in the peripheral nervous system of quail embryos.

Authors:  J E García-Arrarás; M Chanconie; J Fontaine-Pérus
Journal:  J Neurosci       Date:  1984-06       Impact factor: 6.167

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Authors:  J M Lundberg; T Hökfelt; A Anggård; L Terenius; R Elde; K Markey; M Goldstein; J Kimmel
Journal:  Proc Natl Acad Sci U S A       Date:  1982-02       Impact factor: 11.205

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9.  Translational regulation of somatostatin in cultured sympathetic neurons.

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10.  Embryonic sympathoblasts transiently express TrkB in vivo and proliferate in response to brain-derived neurotrophic factor in vitro.

Authors:  Jennifer A Straub; Giselle L Saulnier Sholler; Rae Nishi
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Review 3.  The diversity of neuronal phenotypes in rodent and human autonomic ganglia.

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