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Topic: Cholinergic modulation

Seminar
3 seminars
Seminar · Neuroscience

Cholinergic modulation of the cerebellum

Jasmine Pickford · Apps lab, University of Bristol

Wed, Jul 14, 2021 · 17:00 UTC

Many studies have investigated the major glutamatergic inputs to the cerebellum, mossy fibres and climbing fibres, however far less is known about its neuromodulatory inputs. In particular, anatomical studies have described cholinergic input to the cerebellum, yet little is known about its role(s). In this talk, I will present our recent findings which demonstrate that manipulating acetylcholine receptors in the cerebellum causes effects at both a cellular and behavioural level. Activating acetylcholine receptors alters the intrinsic properties and synaptic inputs of cerebellar output neurons,

Seminar · Computational Neuroscience

An in-silico framework to study the cholinergic modulation of the neocortex

Cristina Colangelo · EPFL, Blue Brain Project

Wed, Jun 30, 2021 · 17:35 UTC

Neuromodulators control information processing in cortical microcircuits by regulating the cellular and synaptic physiology of neurons. Computational models and detailed simulations of neocortical microcircuitry offer a unifying framework to analyze the role of neuromodulators on network activity. In the present study, to get a deeper insight in the organization of the cortical neuropil for modeling purposes, we quantify the fiber length per cortical volume and the density of varicosities for catecholaminergic, serotonergic and cholinergic systems using immunocytochemical staining and stereolo

Seminar · Computational Neuroscience

Cholinergic regulation of learning in the olfactory system

Christiane Linster · Cornell University

Thu, Jul 9, 2020 · 13:00 UTC

In the olfactory system, cholinergic modulation has been associated with contrast modulation and changes in receptive fields in the olfactory bulb, as well the learning of odor associations in the olfactory cortex. Computational modeling and behavioral studies suggest that cholinergic modulation could improve sensory processing and learning while preventing pro-active interference when task demands are high. However, how sensory inputs and/or learning regulate incoming modulation has not yet been elucidated. We here use a computational model of the olfactory bulb, piriform cortex (PC) and hori

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