Essential role for plasma membrane glutamate transporters in stimulus intensity coding in auditory neurons
Trussell, L. O.; Ngodup, T.
Show abstract
Plasma membrane glutamate transporters, also known as excitatory amino acid transporters (EAATs), serve to remove glutamate from extracellular spaces following transmitter release. Generally, this process is slow enough that EAAT activity controls the levels of background glutamate rather than the magnitude and time course of synaptic responses. We show here a striking exception to this pattern in the auditory system where neurons receive ongoing high-frequency synaptic signals. The effect of blocking EAATs on synaptic function was tested in neurons of the ventral cochlear nucleus in brain slices from mouse, focusing on auditory nerve inputs to T-stellate cells, neurons used to encode the spectrum of complex sounds. Complete block of EAATs caused a gradual accumulation of glutamate leading to a large depolarization in T-stellate cells and cessation of excitability. Partial EAAT blockade maintained resting potential but severely compromised the ability of the neurons to linearly encode the frequency of presynaptic spike activity with changes in postsynaptic firing, an essential feature of T-stellate cell function in sound intensity coding. After EAAT blockade, even a few high-frequency presynaptic spikes were sufficient to accumulate glutamate and cause repetitive postsynaptic firing lasting for tens to hundreds of milliseconds. Both glial and neuronal transporters were found to contribute to this rapid uptake necessary to maintain normal synaptic transmission. Altering the number of active auditory nerve fibers revealed that glutamate did not spill over between bouton synapses made by different nerve fibers, suggesting that synaptic boutons onto T-stellate cells restrict the diffusion of glutamate, necessitating an enhanced, local uptake activity. Notably, spike coding by the giant endbulb synapses on bushy cells was little affected by EAAT blockade, indicating a cell-type specificity to rapid glutamate uptake. Thus, rapid glutamate uptake enables the intensity coding function of neurons within the auditory system.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Synaptic facilitation enhances the reliability and precision of high frequency neurotransmission 97%
- Acetylcholine modulates cerebellar granule cell spiking by regulating the balance of synaptic excitation and inhibition 97%
- Axon initial segment GABA inhibits action potential generation throughout periadolescent development 97%
Similar papers in this journal
- Extracellular GABA waves regulate coincidence detection in excitatory circuits 97%
- GluN2C/D-containing NMDA receptors enhance temporal summation and increase sound-evoked and spontaneous firing in the inferior colliculus 97%
- Synaptic plasticity of inhibitory synapses onto medial olivocochlear efferent neurons 96%
Similar papers in this journal
- Distinct forms of synaptic plasticity during ascending vs. descending control of medial olivocochlear efferent neurons 97%
- Kv3.3 subunits control presynaptic action potential waveform and neurotransmitter release at a central excitatory synapse 97%
- Distinct release properties of glutamate/GABA co-transmission serve as a frequency-dependent filtering of supramammillary inputs 97%
Similar papers in this journal
Similar papers in this journal
- Kv1 channels regulate variations in spike patterning and temporal reliability in the avian cochlear nucleus angularis 96%
- Local Glutamate-Mediated Dendritic Plateau Potentials Change the State of the Cortical Pyramidal Neuron 95%
- Resolution of subcomponents of synaptic release from post-synaptic currents in rat hair-cell/auditory-nerve fiber dendrites 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.