The cerebral cortex is characterized by multiple layers and many distinct cell-types that together as a network are responsible for many higher cognitive functions including decision making, sensory-guided behavior or memory. To understand how such intricate neuronal networks perform such tasks, a crucial step is to determine the function (or electrical activity) of individual cell types within the network, preferentially when the animal is performing a relevant cognitive task. Additionally, it is equally important to determine the anatomical structure of the network and the morphological architecture of the individual neurons to allow reverse engineering the cortical network. Technical breakthroughs available today allow recording cellular...
One of the main characteristics of brains is their profuse connectivity at different spatial scales....
The brain is the most complex and least understood biological system known to man. New imaging techn...
Synaptic circuits bind together functional modules of the neocortex. We aim to clarify in a rodent m...
To understand the structure of neuronal networks, functional and morphological characterization of i...
To investigate the connectivity of brain networks noninvasively and dynamically, we have developed a...
Numerous studies have attempted to relate variations in cellular structure (i.e., morphology) with v...
One of the most striking characteristic of the brain is its profuse neuronal connectivity. Not surpr...
Electrophysiological recordings of cells using the patch clamp technique have allowed for the identi...
In vivo whole-cell recording when combined with morphological characterization after biocytin labeli...
There are a variety of techniques to monitor extracellular activity of single neuronal units. Howeve...
Despite a long tradition in reconstructing neurons, the tracing of complete 3D axon morphologies sti...
We present a first-draft digital reconstruction of the microcircuitry of somatosensory cortex of juv...
The single-cell juxtacellular recording-labeling technique makes it possible to label the neuron rec...
How cortical network activity processes information is of importance to a large number of basic 26 ...
<p>A) Example of biocytin-filled pyramidal neuron from cortical layer II/III. The internal solution ...
One of the main characteristics of brains is their profuse connectivity at different spatial scales....
The brain is the most complex and least understood biological system known to man. New imaging techn...
Synaptic circuits bind together functional modules of the neocortex. We aim to clarify in a rodent m...
To understand the structure of neuronal networks, functional and morphological characterization of i...
To investigate the connectivity of brain networks noninvasively and dynamically, we have developed a...
Numerous studies have attempted to relate variations in cellular structure (i.e., morphology) with v...
One of the most striking characteristic of the brain is its profuse neuronal connectivity. Not surpr...
Electrophysiological recordings of cells using the patch clamp technique have allowed for the identi...
In vivo whole-cell recording when combined with morphological characterization after biocytin labeli...
There are a variety of techniques to monitor extracellular activity of single neuronal units. Howeve...
Despite a long tradition in reconstructing neurons, the tracing of complete 3D axon morphologies sti...
We present a first-draft digital reconstruction of the microcircuitry of somatosensory cortex of juv...
The single-cell juxtacellular recording-labeling technique makes it possible to label the neuron rec...
How cortical network activity processes information is of importance to a large number of basic 26 ...
<p>A) Example of biocytin-filled pyramidal neuron from cortical layer II/III. The internal solution ...
One of the main characteristics of brains is their profuse connectivity at different spatial scales....
The brain is the most complex and least understood biological system known to man. New imaging techn...
Synaptic circuits bind together functional modules of the neocortex. We aim to clarify in a rodent m...