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  4. Determination of Transmembrane Water Fluxes in Neurons Elicited by Glutamate Ionotropic Receptors and by the Co-transporters KCC2 and NKCC1: A Digital Holographic Microscopy Study
 
research article

Determination of Transmembrane Water Fluxes in Neurons Elicited by Glutamate Ionotropic Receptors and by the Co-transporters KCC2 and NKCC1: A Digital Holographic Microscopy Study

Jourdain, Pascal  
•
Pavillon, Nicolas  
•
Moratal, Corinne
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2011
The Journal of neuroscience

Digital holographic microscopy (DHM) is a noninvasive optical imaging technique that provides quantitative phase images of living cells. In a recent study, we showed that the quantitative monitoring of the phase signal by DHM was a simple label-free method to study the effects of glutamate on neuronal optical responses (Pavillon et al., 2010). Here, we refine these observations and show that glutamate produces the following three distinct optical responses in mouse primary cortical neurons in culture, predominantly mediated by NMDA receptors: biphasic, reversible decrease (RD) and irreversible decrease (ID) responses. The shape and amplitude of the optical signal were not associated with a particular cellular phenotype but reflected the physiopathological status of neurons linked to the degree of NMDA activity. Thus, the biphasic, RD, and ID responses indicated, respectively, a low-level, a high-level, and an “excitotoxic” level of NMDA activation. Moreover, furosemide and bumetanide, two inhibitors of sodium-coupled and/or potassium-coupled chloride movement strongly modified the phase shift, suggesting an involvement of two neuronal cotransporters, NKCC1 (Na-K-Cl) and KCC2 (K-Cl) in the genesis of the optical signal. This observation is of particular interest since it shows that DHM is the first imaging technique able to monitor dynamically and in situ the activity of these cotransporters during physiological and/or pathological neuronal conditions.

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Type
research article
DOI
10.1523/​JNEUROSCI.0286-11.2011
Author(s)
Jourdain, Pascal  
Pavillon, Nicolas  
Moratal, Corinne
Boss, Daniel  
Rappaz, Benjamin  
Depeursinge, Christian  
Marquet, Pierre
Magistretti, Pierre  
Date Issued

2011

Publisher

Society for Neuroscience

Published in
The Journal of neuroscience
Volume

31

Issue

33

Start page

11846

End page

11854

Subjects

[MVD]

•

K-Cl Cotransporter

•

Hippocampal-Neurons

•

Gaba(A) Receptor

•

Flow-Cytometry

•

Living Cells

•

Chloride

•

Brain

•

Nmda

•

Excitotoxicity

•

Injury

URL

URL

http://www.jneurosci.org/content/31/33/11846.abstract
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
July 8, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/69504
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