Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Distinct synchronization, cortical coupling and behavioural function of two basal forebrain cholinergic neuron types

View through CrossRef
Basal forebrain cholinergic neurons (BFCN) densely innervate the forebrain and modulate synaptic plasticity, cortical processing, brain states and oscillations. However, little is known about the functional diversity of cholinergic neurons and whether distinct types support different functions. To examine this question we recorded BFCN in vivo , to examine their behavioral functions, and in vitro , to study their intrinsic properties. We identified two distinct types of BFCN that markedly differ in their firing modes, synchronization properties and behavioral correlates. Bursting cholinergic neurons (BFCN BURST ) fired in zero-lag synchrony with each other, phase-locked to cortical theta activity and fired precisely timed bursts of action potentials after reward and punishment. Regular firing cholinergic neurons (BFCN REG ) were found predominantly in the posterior basal forebrain, displayed strong theta rhythmicity (5-10 Hz), fired asynchronously with each other and responded with precise single spikes after behavioral outcomes. In an auditory detection task, synchronization of BFCN BURST neurons to auditory cortex predicted the timing of mouse responses, whereas tone-evoked cortical coupling of BFCN REG predicted correct detections. We propose that cortical activation relevant for behavior is controlled by the balance of two cholinergic cell types, where the precise proportion of the strongly activating BFCN BURST follows an anatomical gradient along the antero-posterior axis of the basal forebrain.
Title: Distinct synchronization, cortical coupling and behavioural function of two basal forebrain cholinergic neuron types
Description:
Basal forebrain cholinergic neurons (BFCN) densely innervate the forebrain and modulate synaptic plasticity, cortical processing, brain states and oscillations.
However, little is known about the functional diversity of cholinergic neurons and whether distinct types support different functions.
To examine this question we recorded BFCN in vivo , to examine their behavioral functions, and in vitro , to study their intrinsic properties.
We identified two distinct types of BFCN that markedly differ in their firing modes, synchronization properties and behavioral correlates.
Bursting cholinergic neurons (BFCN BURST ) fired in zero-lag synchrony with each other, phase-locked to cortical theta activity and fired precisely timed bursts of action potentials after reward and punishment.
Regular firing cholinergic neurons (BFCN REG ) were found predominantly in the posterior basal forebrain, displayed strong theta rhythmicity (5-10 Hz), fired asynchronously with each other and responded with precise single spikes after behavioral outcomes.
In an auditory detection task, synchronization of BFCN BURST neurons to auditory cortex predicted the timing of mouse responses, whereas tone-evoked cortical coupling of BFCN REG predicted correct detections.
We propose that cortical activation relevant for behavior is controlled by the balance of two cholinergic cell types, where the precise proportion of the strongly activating BFCN BURST follows an anatomical gradient along the antero-posterior axis of the basal forebrain.

Related Results

Deletion of p75NTR enhances the cholinergic innervation pattern of the visual cortex
Deletion of p75NTR enhances the cholinergic innervation pattern of the visual cortex
AbstractThe cholinergic system is involved in cortical plasticity, attention, and learning. Within the visual cortex the cholinergic system seems to play a role in visual perceptio...
Synchronization transition with coexistence of attractors in coupled discontinuous system
Synchronization transition with coexistence of attractors in coupled discontinuous system
The studies of extended dynamics systems are relevant to the understanding of spatiotemporal patterns observed in diverse fields. One of the well-established models for such comple...
Complete morphologies of basal forebrain cholinergic neurons in the mouse
Complete morphologies of basal forebrain cholinergic neurons in the mouse
The basal forebrain cholinergic system modulates neuronal excitability and vascular tone throughout the cerebral cortex and hippocampus. This system is severely affected in Alzheim...
Acetylcholine Neurons Become Cholinergic during Three Time Windows in the Developing Mouse Brain
Acetylcholine Neurons Become Cholinergic during Three Time Windows in the Developing Mouse Brain
Acetylcholine (ACh) neurons in the central nervous system are required for the coordination of neural network activity during higher brain functions, such as attention, learning, a...
Neuron synchronization analyzed through spatial-temporal attention
Neuron synchronization analyzed through spatial-temporal attention
Abstract Across diverse organisms, the temporal dynamics of spiking responses between neurons, the neural synchrony, is crucial for encoding different stimuli. Neur...
Alzheimer’s disease therapy: Neurotrophin-based regenerative approaches
Alzheimer’s disease therapy: Neurotrophin-based regenerative approaches
Abstract Neurotrophins are a class of proteins that maintain the health and phenotype of neuronal cells under normal physiological conditions...
Complex Collision Tumors: A Systematic Review
Complex Collision Tumors: A Systematic Review
Abstract Introduction: A collision tumor consists of two distinct neoplastic components located within the same organ, separated by stromal tissue, without histological intermixing...

Back to Top