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This burst activation of the VTA DA neuron may provide motivational signals in generating start/stop signals for voluntary movements.
More importantly, putative DA neurons exhibited significant burst activation at both onset and offset of voluntary movements.
Similarly, the putative DA neuron exhibited significant burst activation at the termination of wheel running (Figure 7B_right panels, unit 1).
This burst activation was propagated rostrocaudally from segment C7 to segment L3 while the corresponding peaks (triangles) were more in phase.
First, VTA putative DA neurons exhibit significant burst activation in response to the presentation of reward predicting cues, as well as at voluntary movement initiations and terminations.
The putative DA neuron (unit 1) exhibited significant burst activation at both the onset (start) and offset (stop) of wheel running, while the non-DA neuron (unit 2) showed significant rhythmic activity during wheel running (Figure 7A).
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In a second part, we bridge the gap between the description of bursts in the framework of percolation and the temporal description of neural networks activity by showing how dynamical simulations of bursts with an adaptive exponential integrate-and-fire model lead to a mean description of bursts activation which is captured by Quorum Percolation.
While GABAAR or NMDAR were not required for bursting, activation of AMPARs by climbing fibers (CFs) was sufficient to trigger bursts.
We therefore asked whether activation of glutamate-bound extrasynaptic NMDARs during burst activity has any lasting consequences for neuronal excitability.
The strong but transient burst of activation after TCR triggering is followed by a low but sustained level of activation over a period of hours.
These results could suggest that the TAT-RBD proteins are potent enough to reduce the homeostatic activity of Ras-controlled pathways in T cells, but not the strong burst of activation that follows in vitro stimulation of cells with anti-TCR antibodies.
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