In the rodent olfactory bulb the smooth dendrites of the principal glutamatergic mitral cells (MCs) form reciprocal dendrodendritic synapses with large spines on GABAergic granule cells (GC), where unitary release of glutamate can trigger postsynaptic local activation of voltage-gated Na+-channels (Navs), i.e. a spine spike. Can such single MC input evoke reciprocal release? We find that unitary-like activation via two-photon uncaging of glutamate causes GC spines to release GABA both synchronously and asynchronously onto MC dendrites. This release indeed requires activation of Navs and high-voltage-activated Ca2+-channels (HVACCs), but also of NMDA receptors (NMDAR). Simulations show temporally overlapping HVACC- and NMDAR-mediated Ca2+-cu...
Contains fulltext : 89577.pdf (publisher's version ) (Closed access)Following init...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
Control of neurotransmission efficacy is central to theories of how the brain computes and stores in...
In the rodent olfactory bulb the smooth dendrites of the principal glutamatergic mitral cells (MCs) ...
AbstractIn the mammalian olfactory bulb, signal processing is mediated by synaptic interactions betw...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
Information transfer between neurons in the central nervous system occurs at specialized contacts, c...
In the mammalian olfactory bulb, the inhibitory axonless granule cells (GCs) feature reciprocal syna...
The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neuron...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neuron...
Before hearing onset, synapses in the inhibitory pathway from the medial nucleus of the trapezoid bo...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
Contains fulltext : 89577.pdf (publisher's version ) (Closed access)Following init...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
Control of neurotransmission efficacy is central to theories of how the brain computes and stores in...
In the rodent olfactory bulb the smooth dendrites of the principal glutamatergic mitral cells (MCs) ...
AbstractIn the mammalian olfactory bulb, signal processing is mediated by synaptic interactions betw...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
Information transfer between neurons in the central nervous system occurs at specialized contacts, c...
In the mammalian olfactory bulb, the inhibitory axonless granule cells (GCs) feature reciprocal syna...
The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neuron...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neuron...
Before hearing onset, synapses in the inhibitory pathway from the medial nucleus of the trapezoid bo...
The inhibitory axonless olfactory bulb granule cells form reciprocal dendrodendritic synapses with m...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
Contains fulltext : 89577.pdf (publisher's version ) (Closed access)Following init...
<p>The majority of excitatory synapses are located on dendritic spines of cortical glutamatergic neu...
Control of neurotransmission efficacy is central to theories of how the brain computes and stores in...