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Axonal Projections Originating From Raphe Serotonergic Neurons in the Developing and Adult Zebrafish, Danio rerio, Using Transgenics To Visualize Raphe-Specific pet1 Expression

期刊

JOURNAL OF COMPARATIVE NEUROLOGY
卷 512, 期 2, 页码 158-182

出版社

WILEY
DOI: 10.1002/cne.21887

关键词

raphe; pet1; serotonin; 5-HT; green fluorescent protein

资金

  1. VWStiftung Junior Group
  2. EU [LSHC-CT-2003-503466]
  3. Life Science Stiftung [GSF 2005/01]
  4. Institut du Cerveau et de la Moelle Epiniere (ICM
  5. Paris, France)
  6. Center for Protein Science-Munich (CIPSM)
  7. Swedish Research Council
  8. Alexander von Humboldt Foundation
  9. Graduate School of Systemic Neurosciences at the LMU Munich

向作者/读者索取更多资源

Serotonin is a major central nervous modulator of physiology and behavior and plays fundamental roles during development and plasticity of the vertebrate central nervous system (CNS). Understanding the developmental control and functions of serotonergic neurons is therefore an important task. In all vertebrates, prominent serotonergic neurons are found in the superior and inferior raphe nuclei in the hind-brain innervating most CNS regions. In addition, all vertebrates except for mammals harbor other serotonergic centers, including several populations in the diencephalon. This, in combination with the intricate and wide distribution of serotonergic fibers, makes it difficult to sort out serotonergic innervation originating from the raphe from that of other serotonergic cell populations. To resolve this issue, we isolated the regulatory elements of the zebrafish raphe-specific gene pet1 and used them to drive expression of an eGFP transgene in the raphe population of serotonergic neurons. With this approach together with retrograde tracing we 1) describe in detail the development, anatomical organization, and projection pattern of zebrafish pet1-positive neurons compared with their mammalian counterparts, 2) identify a new serotonergic population in the ventrolateral zebrafish hindbrain, and 3) reveal some extent of functional subdivisions within the zebrafish superior raphe complex. Together, our results reveal for the first time the specific innervation pattern of the zebrafish raphe and, thus, provide a new model and various tools to investigate further the role of raphe serotonergic neurons in vertebrates. J. Comp. Neurol. 512:158-182, 2009. (C) 2008 Wiley-Liss, Inc.

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