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  4. Synergistic NGF/B27 Gradients Position Synapses Heterogeneously in 3D Micropatterned Neural Cultures
 
research article

Synergistic NGF/B27 Gradients Position Synapses Heterogeneously in 3D Micropatterned Neural Cultures

Kunze, Anja  
•
Valero, Ana  
•
Zosso, Dominique  
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2011
PLoS ONE

Native functional brain circuits show different numbers of synapses (synaptic densities) in the cerebral cortex. Until now, different synaptic densities could not be studied in vitro using current cell culture methods for primary neurons. Herein, we present a novel microfluidic based cell culture method that combines 3D micropatterning of hydrogel layers with linear chemical gradient formation. Micropatterned hydrogels were used to encapsulate dissociated cortical neurons in laminar cell layers and neurotrophic factors NGF and B27 were added to influence the formation of synapses. Neurotrophic gradients allowed for the positioning of distinguishable synaptic densities throughout a 3D micropatterned neural culture. NGF and B27 gradients were maintained in the microfluidic device for over two weeks without perfusion pumps by utilizing a refilling procedure. Spatial distribution of synapses was examined with a pre-synaptic marker to determine synaptic densities. From our experiments, we observed that (1) cortical neurons responded only to synergistic NGF/B27 gradients, (2) synaptic density increased proportionally to synergistic NGF/B27 gradients; (3) homogeneous distribution of B27 disturbed cortical neurons in sensing NGF gradients and (4) the cell layer position significantly impacted spatial distribution of synapses.

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Type
research article
DOI
10.1371/journal.pone.0026187
Web of Science ID

WOS:000295978600043

Author(s)
Kunze, Anja  
Valero, Ana  
Zosso, Dominique  
Renaud, Philippe  
Date Issued

2011

Publisher

Public Library of Science

Published in
PLoS ONE
Volume

6

Issue

10

Start page

e26187.1

End page

12

Subjects

Nerve Growth-Factor

•

Immobilized Concentration Gradients

•

Guide Neurite Outgrowth

•

Adult Sensory Neurons

•

Cortical Thickness

•

Factor-I

•

Somatosensory Cortex

•

Hippocampal-Neurons

•

Alzheimers-Disease

•

Insulin

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTS5  
LMIS4  
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/72831
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