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Baraibar, A. M.

Publications and source records attributed to Baraibar, A. M..

2 recordsLinked to original sources

Aluminium alters excitability by inhibiting calcium, sodium and potassium currents in bovine chromaffin cells.

Aluminium (Al3+) has long been related to neurotoxicity and neurological diseases. This study aims to describe the specific actions of this metal on cellular excitability and neurotransmitter release. Al3+ reduced intracellular calcium concentrations around 25% and decreased catecholamine secretion in a dose-dependent manner, with an IC50 of 89.1 M. Al3+ blocked calcium currents in a time- and concentration-dependent manner with an IC50 of 560 M. This blockade was irreversible, since it did not recover after wash-out. Moreover, Al3+ produced a bigger blockade on N-, P- and Q-type calcium channels subtypes (69.5%) than on L-type channels subtypes (50.5%). Sodium currents were also inhibited by Al3+ in a time- and concentration-dependent manner, 24.3% blockade at the closest concentration to the IC50 (419 M). This inhibition was reversible. Voltage-dependent potassium currents were non-significantly affected by Al3+. Nonetheless, calcium/voltage-dependent potassium currents were inhibited in a concentration-dependent manner, with an IC50 of 447 M. This inhibition was related to the depression of calcium influx through voltage-dependent calcium channels subtypes coupled to BK channels. In summary, the blockade of these ionic conductances altered cellular excitability that reduced the action potentials firing and so, the neurotransmitter release and the synaptic transmission. These findings prove that aluminium has neurotoxic properties because it alters neuronal excitability by inhibiting the sodium currents responsible for the generation and propagation of impulse nerve, the potassium current responsible for the termination of action potentials, and the calcium current responsible for the neurotransmitters release.

neuroscience↗

SPATIAL ORGANIZATION OF NEURON-ASTROCYTE INTERACTIONS IN THE SOMATOSENSORY CORTEX

Microcircuits in the neocortex are functionally organized along layers and columns, which are the fundamental modules of cortical information processing. While the function of cortical microcircuits has focused on neuronal elements, much less is known about the functional organization of astrocytes and their bidirectional interaction with neurons. Here we show that CB1R-mediated astrocyte activation by neuron-released endocannabinoids elevate astrocyte Ca2+ levels, stimulate ATP/adenosine release as gliotransmitters, and transiently depress synaptic transmission in layer 5 pyramidal neurons at relatively distant synapses (>20 {micro}m) from the stimulated neuron. This astrocyte-mediated heteroneuronal synaptic depression occurred between pyramidal neurons within a cortical column and was absent in neurons belonging to adjacent cortical columns. Moreover, this form of heteroneuronal synaptic depression occurs between neurons located in particular layers, following a specific connectivity pattern that depends on a layer-specific neuron-to-astrocyte signaling. These results unravel the existence of astrocyte-mediated non-synaptic communication between cortical neurons, and that this communication is column- and layer-specific, which adds further complexity to the intercellular signaling processes in the cortex.

neuroscience↗