
The Dynamic Synapse
Molecular Methods in Ionotropic Receptor Biology
CRC Press
1st Edition
Will be published approx. on 27. March 2006
Book
Hardback
336 pages
978-0-8493-1891-7 (ISBN)
Description
Exploring the diverse tools and technologies used to study synaptic processes, The Dynamic Synapse: Molecular Methods in Ionotropic Receptor Biology delineates techniques, methods, and conceptual advances for studying neurotransmitter receptors and other synaptic proteins. It describes a broad range of molecular, biochemical, imaging, and electrophysiological approaches for studying the biology of synapses.
Specific topics include the use of proteomics to study synaptic protein complexes, the development of phosphorylation state specific antibodies, post-genomic tools applied to the study of synapses and RNA interference in neurons. In addition, several chapters focus on methods for gene and protein delivery into neuronal tissue. The use of biochemical, electrophysiological and optical tagging techniques to study the movement and membrane trafficking of neurotransmitter receptors in the membrane of live nerve cells are also discussed. To complement these approaches, the application of approaches for achieving long-term alterations in the genetic complement of neurons in vivo using viral vectors or homologous recombination of ES cells are also described.
Specific topics include the use of proteomics to study synaptic protein complexes, the development of phosphorylation state specific antibodies, post-genomic tools applied to the study of synapses and RNA interference in neurons. In addition, several chapters focus on methods for gene and protein delivery into neuronal tissue. The use of biochemical, electrophysiological and optical tagging techniques to study the movement and membrane trafficking of neurotransmitter receptors in the membrane of live nerve cells are also discussed. To complement these approaches, the application of approaches for achieving long-term alterations in the genetic complement of neurons in vivo using viral vectors or homologous recombination of ES cells are also described.
More details
Series
Language
English
Place of publication
Bosa Roca
United States
Publishing group
Taylor & Francis Inc
Target group
Professional and scholarly
Professional
Illustrations
7 Tables, black and white; 96 Illustrations, black and white
Dimensions
Height: 234 mm
Width: 156 mm
Weight
612 gr
ISBN-13
978-0-8493-1891-7 (9780849318917)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Other editions
Additional editions

Josef T. Kittler | Stephen J. Moss
The Dynamic Synapse
Molecular Methods in Ionotropic Receptor Biology
E-Book
03/2006
CRC Press
€265.99
Available for download

Josef T. Kittler | Stephen J. Moss
The Dynamic Synapse
Molecular Methods in Ionotropic Receptor Biology
E-Book
03/2006
1st Edition
CRC Press
€265.99
Available for download
Persons
Josef T. Kittler, Stephen J. Moss
Content
Methods for Uncovering the Mechanisms of AMPA Receptor Trafficking. Long Term Plasticity at Inhibitory Synapses: A Phenomenon that Has Been Overlooked. New Tricks for an Old Dog: Proteomics of the PSD. Phosphorylation Site-Specific Antibodies as Research Tools in Studies of Native GABAA Receptors. Protein Palmitoylation by DHHC Protein Family. Studying the Subcellular Localization, Surface Stability and Endocytosis of Ionotropic Receptors by Antibody Labeling and Biotinylation Approaches. Visualization of AMPAR Trafficking and Surface Expression. The Dynamic Synapse in the Light of Receptor Dynamics. Receptor Dynamics at the Cell Surface Studied Using Functional Tagging. RNAi and Applications in Neurobiology. Methods for Transfecting and Transducing Neurons. Acute In Vivo Expression of Recombinant Proteins in Rat Brain Using Sindbis Virus. Lentivirus-Based Genetic Manipulations in Neurons In Viro. AMPA Receptor Phosphorylation in Synaptic Plasticity: Insights from Knockin Mice. Genomic and Post-Genomic Tools for Studying Synapse Biology.