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research article

Enduring medial perforant path short-term synaptic depression at high pressure

Talpalar, Adolfo E.
•
Giugliano, Michele
•
Grossman, Yoram
2010
Frontiers In Cellular Neuroscience

The high pressure neurological syndrome develops during deep-diving (> 1.1 MPa) involving impairment of cognitive functions, alteration of synaptic transmission and increased excitability in cortico-hippocampal areas. The medial perforant path (MPP), connecting entorhinal cortex with the hippocampal formation, displays synaptic frequency-dependent-depression (FDD) under normal conditions. Synaptic FDD is essential for specific functions of various neuronal networks. We used rat cortico-hippocampal slices and computer simulations for studying the effects of pressure and its interaction with extracellular Ca2+ (Ca2+) on FDD at the MPP synapses. At atmospheric pressure, high Ca2+ (4-6 mM) saturated single MPP field EPSP (fEPSP) and increased FDD in response to short trains at 50 Hz. High pressure (HP; 10.1 MPa) depressed single fEPSPs by 50%. Increasing Ca2+ to 4 mM at HP saturated synaptic response at a subnormal level (only 20% recovery of single fEPSPs), but generated a FDD similar to atmospheric pressure. Mathematical model analysis of the fractions of synaptic resources used by each fEPSP during trains (normalized to their maximum) and the total fraction utilized within a train indicate that HP depresses synaptic activity also by reducing synaptic resources. This data suggest that MPP synapses may be modulated, in addition to depression of single events, by reduction of synaptic resources and then may have the ability to conserve their dynamic properties under different conditions.

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Type
research article
DOI
10.3389/fncel.2010.00128
Web of Science ID

WOS:000288498200001

Author(s)
Talpalar, Adolfo E.
Giugliano, Michele
Grossman, Yoram
Date Issued

2010

Published in
Frontiers In Cellular Neuroscience
Volume

4

Start page

128

Subjects

rat

•

hyperbaric helium pressure

•

dentate gyrus

•

granule cells

•

hippocampus

•

synaptic dynamics

•

entorhinal cortex

•

Hpns

•

Crustacean Excitatory Synapses

•

Neocortical Pyramidal Neurons

•

Gyrus In-Vitro

•

Climbing Fiber

•

Dentate Gyrus

•

Neurotransmitter Release

•

Neuromuscular-Junction

•

Neurological Syndrome

•

Hydrostatic-Pressure

•

Calcium-Dependence

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
December 16, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/74728
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