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Glial Amino Acid Transporters

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Cover of 'Glial Amino Acid Transporters'

Table of Contents

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    Book Overview
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    Chapter 1 Manganese Control of Glutamate Transporters’ Gene Expression
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    Chapter 2 Glycine Transporters in Glia Cells: Structural Studies
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    Chapter 3 Taurine Homeostasis and Volume Control
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    Chapter 4 Glycine Transporters and Its Coupling with NMDA Receptors
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    Chapter 5 Revised Ion/Substrate Coupling Stoichiometry of GABA Transporters
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    Chapter 6 EAAT2 and the Molecular Signature of Amyotrophic Lateral Sclerosis
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    Chapter 7 Glial GABA Transporters as Modulators of Inhibitory Signalling in Epilepsy and Stroke
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    Chapter 8 Glutamine/Glutamate Transporters in Glial Cells: Much More Than Participants of a Metabolic Shuttle
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    Chapter 9 Glial Glutamate Transporters as Signaling Molecules
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    Chapter 10 Regulation of Glutamate Transporter Expression in Glial Cells
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    Chapter 11 Glutamate Transport System as a Novel Therapeutic Target in Chronic Pain: Molecular Mechanisms and Pharmacology
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    Chapter 12 Molecular Characteristics, Regulation, and Function of Monocarboxylate Transporters
  14. Altmetric Badge
    Chapter 13 Glial Excitatory Amino Acid Transporters and Glucose Incorporation
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    Chapter 14 Astrocytic GABA Transporters: Pharmacological Properties and Targets for Antiepileptic Drugs
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    Chapter 15 Glutamate Transporters in the Blood-Brain Barrier
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    Chapter 16 Development of Non-GAT1-Selective Inhibitors: Challenges and Achievements
Attention for Chapter 3: Taurine Homeostasis and Volume Control
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Chapter title
Taurine Homeostasis and Volume Control
Chapter number 3
Book title
Glial Amino Acid Transporters
Published in
Advances in neurobiology, January 2017
DOI 10.1007/978-3-319-55769-4_3
Pubmed ID
Book ISBNs
978-3-31-955767-0, 978-3-31-955769-4
Authors

Herminia Pasantes-Morales, Pasantes-Morales, Herminia

Abstract

Taurine content is high (mM) in mammalian brain. By its major role as an osmolyte, taurine contributes to the cell volume control, which is particularly critical in the brain. Taurine participates in osmotic adjustments required to maintain the organization and size of intracellular compartments. It counteracts volume fluctuations in unbalanced transmembrane fluxes of ions and neurotransmitters, preserving the functional synaptic contacts. Taurine has a key role in the long-term adaptation to chronic hyponatremia as well as in other pathologies leading to brain edema. Together with other osmolytes, taurine corrects cell shrinkage, preventing mysfunction of organelles and apoptosis. Swelling corrective taurine efflux occurs through a leak pathway, likely formed by LCRR8 protein isoforms. Shrinkage-activated influx comes largely by the increased activity of the Na(+)/Cl(-)-dependent transporter. The brain taurine pool results from the equilibrium between (i) dietary intake and active transport into the cell, (ii) synthesis in the brain itself or import of that synthesized elsewhere, and (iii) leak and posterior excretion. The interplay between these elements preserves brain taurine homeostasis in physiological conditions and permits the proper adjustments upon deviations of normal in the internal/external environment.

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Mendeley readers

The data shown below were compiled from readership statistics for 24 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 24 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 5 21%
Student > Bachelor 4 17%
Professor > Associate Professor 3 13%
Researcher 1 4%
Other 1 4%
Other 0 0%
Unknown 10 42%
Readers by discipline Count As %
Neuroscience 3 13%
Medicine and Dentistry 3 13%
Pharmacology, Toxicology and Pharmaceutical Science 2 8%
Agricultural and Biological Sciences 2 8%
Biochemistry, Genetics and Molecular Biology 2 8%
Other 1 4%
Unknown 11 46%