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Ion Channel Regulation, Volume 33 (Advances in Second Messenger & Phosphoprotein Research)
 
 
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Ion Channel Regulation, Volume 33 (Advances in Second Messenger & Phosphoprotein Research) [Hardcover]

David L. Armstrong (Editor), Sandra Rossie (Editor), Paul Greengard (Series Editor), Angus C. Nairn (Series Editor), Shirish Shenolikar (Series Editor)

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Book Description

0120361337 978-0120361335 April 22, 1999 1
Volume 33 reviews the current understanding of ion channel regulation by signal transduction pathways. Ion channels are no longer viewed simply as the voltage-gated resistors of biophysicists or the ligand-gated receptors of biochemists. They have been transformed during the past 20 years into signaling proteins that regulate every aspect of cell physiology. In addition to the voltage-gated channels, which provide the ionic currents to generate and spread neuronal activity, and the calcium ions to trigger synaptic transmission, hormonal secretion, and muscle contraction, new gene families of ion channel proteins regulate cell migration, cell cycle progression, apoptosis, and gene transcription, as well as electrical excitability. Even the genome of the lowly roundworm Caenorhabditis elegans encodes almost 100 distinct genes for potassium-selective channels alone. Most of these new channel proteins are insensitive to membrane potential, yet in humans, mutations in these genes disrupt development and increase individual susceptibility to debilitating and lethal diseases.
How do cells regulate the activity of these channels? How might we restore their normal function? In Ion Channel Regulation, many of the experts who pioneered these discoveries provide detailed summaries of our current understanding of the molecular mechanisms that control ion channel activity.

Key Features
* Reviews brain functioning at the fundamental, molecular level
* Describes key systems that control signaling between and within cells
* Explains how channels are used to stimulate growth and changes to activity of the nucleus and genome

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Editorial Reviews

From the Back Cover

Volume 33 reviews our current understanding of ion channel regulation by signal transduction pathways. Ion channels are no longer viewed simply as the voltage-gated resistors of biophysicists or the ligand-gated receptors of biochemists. They have been transformed during the past 20 years into signaling proteins that regulate every aspect of cell physiology. In addition to the voltage-gated channels, which provide the ionic currents to generate and spread neuronal activity, and the calcium ions to trigger synaptic transmission, hormonal secretion, and muscle contraction, new gene families of ion channel proteins regulate cell migration, cell cycle progression, apoptosis, and gene transcription, as well as electrical excitability. Even the genome of the lowly roundworm Caenorhabditis elegans encodes almost 100 distinct genes for potassium-selective channels alone. Most of these new channel proteins are insensitive to membrane potential, yet in humans, mutations in these genes disrupt development and increase individual susceptibility to debilitating and lethal diseases.
How do cells regulate the activity of these channels? How might we restore their normal function? In Ion Channel Regulation, many of the experts who pioneered these discoveries provide detailed summaries of our current understanding of the molecular mechanisms that control ion channel activity. Written specifically to introduce non-electrophysiologists to ion channels as proteins and to introduce electrophysiologists to signal transduction pathways, Ion Channel Regulation represents a unique professional summary of an important and exciting field and will attract and instruct anyone interested in cell signaling through second messengers and phosphoproteins.

About the Author

Angus C. Nairn is currently Associate Professor at The Rockefeller University. He has published a large number of papers concerned with the structure and regulation of protein kinases and phosphatases involved in signal transduction, particularly with respect to signalling by calcium.


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Inside This Book (learn more)
First Sentence:
The subtitle of this chapter is not entirely facetious. Read the first page
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
channel upregulation, incremental phosphorylation, kinetic slowing, phosphorylated channels, willing mode, potassium channel stimulation, depolarizing prepulse, photoreceptor channel, iodide efflux, agrin receptor, calcium channel modulation, calcium current inhibition, ion channel regulation, cardiac calcium channels, modular binding domains, phosphoprotein phosphatase activity, identified phosphorylation sites, olfactory channel, skeletal muscle sodium channels, brain sodium channels, store refilling, rat sensory neurones, rat sympathetic neurons, influx factor, nonexcitable cells
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Biol Chem, Cell Biol, Acad Sri, Proc Nail Acad Sci, Membr Biol, New York, Pfluegers Arch, Proc Natl Acad Sci, Biol Chen, Brain Res, Trends Neurosci, Biol Cheer, National Institutes of Health, Biel Chem, Binl Chem, Biol Client, Circ Res, Mol Biol, Proc Nall Acad Sci, American Heart Association, Bial Chem, Biochem Biophvs Res Common, Pediatr Pulmonol, Proc Nail Arad Sci
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