Literature DB >> 28383767

Proton electrochemical gradient: Driving and regulating neurotransmitter uptake.

Zohreh Farsi1, Reinhard Jahn2, Andrew Woehler1.   

Abstract

Accumulation of neurotransmitters in the lumen of synaptic vesicles (SVs) relies on the activity of the vacuolar-type H+ -ATPase. This pump drives protons into the lumen, generating a proton electrochemical gradient (ΔμH+ ) across the membrane. Recent work has demonstrated that the balance between the chemical (ΔpH) and electrical (ΔΨ) components of ΔμH+ is regulated differently by some distinct vesicle types. As different neurotransmitter transporters use ΔpH and ΔΨ with different relative efficiencies, regulation of this gradient balance has the potential to influence neurotransmitter uptake. Nevertheless, the underlying mechanisms responsible for this regulation remain poorly understood. In this review, we provide an overview of current neurotransmitter uptake models, with a particular emphasis on the distinct roles of the electrical and chemical gradients and current hypotheses for regulatory mechanisms.
© 2017 WILEY Periodicals, Inc.

Keywords:  buffering capacity; ion-proton exchangers; neurotransmitter uptake; proton electrochemical gradient; proton pump; vesicular transporters

Mesh:

Substances:

Year:  2017        PMID: 28383767     DOI: 10.1002/bies.201600240

Source DB:  PubMed          Journal:  Bioessays        ISSN: 0265-9247            Impact factor:   4.345


  10 in total

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2.  Spike Activity Regulates Vesicle Filling at a Glutamatergic Synapse.

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Review 3.  Fluorescent Indicators For Biological Imaging of Monatomic Ions.

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Journal:  Front Cell Dev Biol       Date:  2022-04-27

4.  Aging is associated with a mild acidification in neocortical human neurons in vitro.

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Journal:  J Neural Transm (Vienna)       Date:  2018-07-11       Impact factor: 3.575

5.  VGLUT1 functions as a glutamate/proton exchanger with chloride channel activity in hippocampal glutamatergic synapses.

Authors:  Magalie Martineau; Raul E Guzman; Christoph Fahlke; Jürgen Klingauf
Journal:  Nat Commun       Date:  2017-12-22       Impact factor: 14.919

6.  Clathrin coat controls synaptic vesicle acidification by blocking vacuolar ATPase activity.

Authors:  Sindhuja Gowrisankaran; Matija Krunic; Zohreh Farsi; Burkhard Rammner; Andrew Woehler; Eileen M Lafer; Carsten Mim; Reinhard Jahn; Ira Milosevic
Journal:  Elife       Date:  2018-04-13       Impact factor: 8.140

Review 7.  Physiological Perspectives on Molecular Mechanisms and Regulation of Vesicular Glutamate Transport: Lessons From Calyx of Held Synapses.

Authors:  Tetsuya Hori; Shigeo Takamori
Journal:  Front Cell Neurosci       Date:  2022-01-13       Impact factor: 5.505

Review 8.  Integration between Glycolysis and Glutamate-Glutamine Cycle Flux May Explain Preferential Glycolytic Increase during Brain Activation, Requiring Glutamate.

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Journal:  Front Integr Neurosci       Date:  2017-08-25

Review 9.  Molecular, Structural, Functional, and Pharmacological Sites for Vesicular Glutamate Transporter Regulation.

Authors:  Nicolas Pietrancosta; Mahamadou Djibo; Stephanie Daumas; Salah El Mestikawy; Jeffrey D Erickson
Journal:  Mol Neurobiol       Date:  2020-05-30       Impact factor: 5.682

Review 10.  Role of Clathrin and Dynamin in Clathrin Mediated Endocytosis/Synaptic Vesicle Recycling and Implications in Neurological Diseases.

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  10 in total

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