Produktbild: Decoding Neural Circuit Structure and Function

Decoding Neural Circuit Structure and Function Cellular Dissection Using Genetic Model Organisms

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Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

04.08.2018

Abbildungen

XIII, 518 p. 92 illus., 81 illus. in color.

Herausgeber

Arzu Çelik + weitere

Verlag

Springer

Seitenzahl

518

Maße (L/B/H)

23,5/15,5/2,7 cm

Gewicht

916 g

Auflage

Softcover reprint of the original 1st edition 2017

Sprache

Englisch

ISBN

978-3-319-86143-2

Beschreibung

Portrait


Mathias Wernet is currently a professor of Neurobiology at the Freie University of Berlin. His current research deals with the neural circuitry underlying visual behaviors in Drosophila melanogaster and integrates studies spanning anatomy, behavior, and physiology.


Arzu Celik is a professor of Developmental Neurobiology at Bogazici University in Istanbul, Turkey. Her research focuses on the generation of neuronal diversity and mechanisms of axon guidance in the visual and olfactory systems of Drosophila melanogaster.

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

04.08.2018

Abbildungen

XIII, 518 p. 92 illus., 81 illus. in color.

Herausgeber

Verlag

Springer

Seitenzahl

518

Maße (L/B/H)

23,5/15,5/2,7 cm

Gewicht

916 g

Auflage

Softcover reprint of the original 1st edition 2017

Sprache

Englisch

ISBN

978-3-319-86143-2

Herstelleradresse

Springer-Verlag KG
Sachsenplatz 4-6
1201 Wien
AT

Email: GPSR Kontakt

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  • Produktbild: Decoding Neural Circuit Structure and Function
  • 1. Note from the editors.- 2. Overview: The current state of neural circuit dissection in genetic model organisms.- Part I: High-resultion Neuroanatomy using molecular-genetic tools.- 3. Neuroanatomical techniques in invertebrate model organisms (flies, worms).- 4. Neuroanatomical techniques in vertebrate model systems (mice, monkeys).- 5. The current state of whole-brain connectomics in invertebrates.- 6. The progress in large-scale connectomics in vertebrates.- 7. Establishing synaptic connection the invertebrate brain (neural superposition?).- 8. Target selection and synaptogenesis in vertebrate models.- Part II: The behavioral contributions of identified circuit elements.- 9. Behavioral paradigms for dissecting neural circuitry in invertebrates.- 10. Behavioral paradigms for dissecting neural circuitry in vertebrates.- 11. Targeted disruption of neuronal activity in behaving invertebrate models.- 12. Circuit breaking and optogenetics in vertebrates.- 13. Modeling of neural circuits in invertebrates.- 14. Modeling of neural circuits in vertebrates.- Part III:  The functional contribution of identified cells to the circuit.- 15. The electrophysiological characterization of identified invertebrate circuit elements.- 16. Electrophysiology in combination with molecular genetic tools in vertebrates.- 17. Genetically encoded activity sensors in invertebrates.- 18. Genetically encoded activity sensors in vertebrates.- 19. Combining circuit breaking tools and the visualization of activity in invertebrates.- 20. Visualization of neuronal activity while circuit breaking in vertebrates.- Part IV:  Molecular determinants of cell type diversity.- 21. The developmental origin of cell type diversity in invertebrate brains.- 22. The development of neuronal cell type diversity in the vertebrate brain.- 23. Transcriptional profiling of identified circuit elements in invertebrates.- 24. Transcriptional profiling in neural circuits in vertebrates.