The dendrites of neocortical pyramidal neurons are excitable. However, it is unknown how synaptic inputs engage nonlinear dendritic mechanisms during sensory processing in vivo, and how they in turn influence action potential output. Here, we provide a quantitative account of the relationship between synaptic inputs, nonlinear dendritic events, and action potential output. We developed a detailed pyramidal neuron model constrained by in vivo dendritic recordings. We drive this model with realistic input patterns constrained by sensory responses measured in vivo and connectivity measured in vitro. We show mechanistically that under realistic conditions, dendritic Na+ and NMDA spikes are the major determinants of neuronal output in vivo. We d...
Dendrites of pyramidal cells exhibit complex morphologies and contain a variety of ionic conductance...
Dendrites integrate inputs nonlinearly, but it is unclear how these nonlinearities contribute to the...
Neocortical neurons spontaneously fire action potentials during active network states; how are dendr...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Hearing, vision, touch: underlying all of these senses is stimulus selectivity, a robust information...
SummaryNeurons possess elaborate dendritic arbors which receive and integrate excitatory synaptic si...
SummaryNeurons possess elaborate dendritic arbors which receive and integrate excitatory synaptic si...
Cortical neurons integrate thousands of synaptic inputs in their dendrites in highly nonlinear ways....
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Summary: Excitatory synaptic input reaches the soma of a cortical excitatory pyramidal neuron via an...
Theoretical modelling and experiments in vitro have shown that the computations performed by single ...
Dendrites of pyramidal cells exhibit complex morphologies and contain a variety of ionic conductance...
Dendrites integrate inputs nonlinearly, but it is unclear how these nonlinearities contribute to the...
Neocortical neurons spontaneously fire action potentials during active network states; how are dendr...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Neuronal dendrites are electrically excitable: they can generate regenerative events such as dendrit...
Hearing, vision, touch: underlying all of these senses is stimulus selectivity, a robust information...
SummaryNeurons possess elaborate dendritic arbors which receive and integrate excitatory synaptic si...
SummaryNeurons possess elaborate dendritic arbors which receive and integrate excitatory synaptic si...
Cortical neurons integrate thousands of synaptic inputs in their dendrites in highly nonlinear ways....
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Dendrites are the main recipients of synaptic inputs and are important sites determining neurons inp...
Summary: Excitatory synaptic input reaches the soma of a cortical excitatory pyramidal neuron via an...
Theoretical modelling and experiments in vitro have shown that the computations performed by single ...
Dendrites of pyramidal cells exhibit complex morphologies and contain a variety of ionic conductance...
Dendrites integrate inputs nonlinearly, but it is unclear how these nonlinearities contribute to the...
Neocortical neurons spontaneously fire action potentials during active network states; how are dendr...