Skip to Main Content (Press Enter)

Logo UNILINK
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations

UNI-FIND
Logo UNILINK

|

UNI-FIND

unilink.it
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations
  1. Outputs

Extracellular mild acidosis decreases the Ca 2+ permeability of the human NMDA receptors

Academic Article
Publication Date:
2019
abstract:
NMDA receptors (NMDARs) are glutamate-gated ion channels involved in excitatory synaptic transmission and in others physiological processes such as synaptic plasticity and development. The overload of Ca 2+ ions through NMDARs, caused by an excessive activation of receptors, leads to excitotoxic neuronal cell death. For this reason, the reduction of Ca 2+ flux through NMDARs has been a central focus in finding therapeutic strategies to prevent neuronal cell damage. Extracellular H + are allosteric modulators of NMDARs. Starting from previous studies showing that extracellular mild acidosis reduces NMDA-evoked whole cell currents, we analyzed the effects of this condition on the NMDARs Ca 2+ permeability, measured as “fractional calcium current” (P f , i.e. the percentage of the total current carried by Ca 2+ ions), of human NMDARs NR1/NR2A and NR1/NR2B transiently transfected in HeLa cells. Extracellular mild acidosis significantly reduces P f of both human NR1/NR2A and NR1/NR2B NMDARs, also decreasing single channel conductance in outside out patches for NR1/NR2A receptor. Reduction of Ca 2+ flux through NMDARs was also confirmed in cortical neurons in culture. A comparative analysis of both NMDA evoked Ca 2+ transients and whole cell currents showed that extracellular H + differentially modulate the permeation of Na + and Ca 2+ through NMDARs. Our data highlight the synergy of two distinct neuroprotective mechanisms during acidosis: Ca 2+ entry through NMDARs is lowered due to the modulation of both open probability and Ca 2+ permeability. Furthermore, this study provides the proof of concept that it is possible to reduce Ca 2+ overload in neurons modulating the NMDAR Ca 2+ permeability.
Iris type:
1.1 Articolo in rivista
Keywords:
Excitatory synaptic transmission; Excitotoxicity; Neurodegeneration; Neuromodulation; Neuroprotection
List of contributors:
Plutino, S.; Sciaccaluga, M.; Fucile, S.
Authors of the University:
SCIACCALUGA MIRIAM
Handle:
https://iris.unilink.it/handle/20.500.14085/23206
Published in:
CELL CALCIUM
Journal
  • Use of cookies

Powered by VIVO | Designed by Cineca | 26.7.2.0