Exact neural mass model for synaptic-based working memory

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Hauptverfasser: Taher, Halgurd, Torcini, Alessandro, Olmi, Simona
Format: Preprint
Veröffentlicht: 2020
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author Taher, Halgurd
Torcini, Alessandro
Olmi, Simona
author_facet Taher, Halgurd
Torcini, Alessandro
Olmi, Simona
contents A synaptic theory of Working Memory (WM) has been developed in the last decade as a possible alternative to the persistent spiking paradigm. In this context, we have developed a neural mass model able to reproduce exactly the dynamics of heterogeneous spiking neural networks encompassing realistic cellular mechanisms for short-term synaptic plasticity. This population model reproduces the macroscopic dynamics of the network in terms of the firing rate and the mean membrane potential. The latter quantity allows us to get insight on Local Field Potential and electroencephalographic signals measured during WM tasks to characterize the brain activity. More specifically synaptic facilitation and depression integrate each other to efficiently mimic WM operations via either synaptic reactivation or persistent activity. Memory access and loading are associated to stimulus-locked transient oscillations followed by a steady-state activity in the $β-γ$ band, thus resembling what observed in the cortex during vibrotactile stimuli in humans and object recognition in monkeys. Memory juggling and competition emerge already by loading only two items. However more items can be stored in WM by considering neural architectures composed of multiple excitatory populations and a common inhibitory pool. Memory capacity depends strongly on the presentation rate of the items and it maximizes for an optimal frequency range. In particular we provide an analytic expression for the maximal memory capacity. Furthermore, the mean membrane potential turns out to be a suitable proxy to measure the memory load, analogously to event driven potentials in experiments on humans. Finally we show that the $γ$ power increases with the number of loaded items, as reported in many experiments, while $θ$ and $β$ power reveal non monotonic behaviours.
format Preprint
id arxiv_https___arxiv_org_abs_2010_07071
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Exact neural mass model for synaptic-based working memory
Taher, Halgurd
Torcini, Alessandro
Olmi, Simona
Neurons and Cognition
Disordered Systems and Neural Networks
Dynamical Systems
Adaptation and Self-Organizing Systems
Biological Physics
A synaptic theory of Working Memory (WM) has been developed in the last decade as a possible alternative to the persistent spiking paradigm. In this context, we have developed a neural mass model able to reproduce exactly the dynamics of heterogeneous spiking neural networks encompassing realistic cellular mechanisms for short-term synaptic plasticity. This population model reproduces the macroscopic dynamics of the network in terms of the firing rate and the mean membrane potential. The latter quantity allows us to get insight on Local Field Potential and electroencephalographic signals measured during WM tasks to characterize the brain activity. More specifically synaptic facilitation and depression integrate each other to efficiently mimic WM operations via either synaptic reactivation or persistent activity. Memory access and loading are associated to stimulus-locked transient oscillations followed by a steady-state activity in the $β-γ$ band, thus resembling what observed in the cortex during vibrotactile stimuli in humans and object recognition in monkeys. Memory juggling and competition emerge already by loading only two items. However more items can be stored in WM by considering neural architectures composed of multiple excitatory populations and a common inhibitory pool. Memory capacity depends strongly on the presentation rate of the items and it maximizes for an optimal frequency range. In particular we provide an analytic expression for the maximal memory capacity. Furthermore, the mean membrane potential turns out to be a suitable proxy to measure the memory load, analogously to event driven potentials in experiments on humans. Finally we show that the $γ$ power increases with the number of loaded items, as reported in many experiments, while $θ$ and $β$ power reveal non monotonic behaviours.
title Exact neural mass model for synaptic-based working memory
topic Neurons and Cognition
Disordered Systems and Neural Networks
Dynamical Systems
Adaptation and Self-Organizing Systems
Biological Physics
url https://arxiv.org/abs/2010.07071