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The impact of homeostatic inhibitory plasticity in a generative biophysical model

Iván Mindlin, Carlos Coronel-Oliveros, Jacobo Sitt, Rodrigo Codorniu Cofré, Andrea I. Luppi, Thomas Andrillon, Yonatan Sanz Perl, Rubén Herzog

bioRxiv (Cold Spring Harbor Laboratory) January 13, 2026 DOI: 10.64898/2026.01.12.699008 via OpenAlex

Summary

AI-generated from the abstract

A biologically grounded inhibitory homeostatic plasticity rule embedded into the Dynamic Mean Field (DMF) model creates a Homeostatic Dynamic Mean Field (HDMF) model that dynamically tunes local excitation-inhibition balance. The HDMF reproduces statistical observables of brain activity as well as the original DMF, can sustain neuromodulatory perturbations without overhead computations, and generates unprecedented sleep-like slow-wave activity that can coexist with wake-like asynchronous dynamics, permitting modeling of dissociated states of consciousness such as parasomnias. A single homeostatic rule broadens the stability and expressiveness of the DMF, providing a unified platform for studying how local adaptive processes shape the diverse global dynamics of the human brain.

Study at a glance

Characteristics Theoretical or philosophical paper Peer reviewed
Topics Neuroplasticity
Keywords Homeostatic plasticity Asynchronous communication Artificial neural network Field mathematics
Key finding A single inhibitory homeostatic plasticity rule broadens the stability and expressiveness of the Dynamic Mean Field model, enabling it to generate sleep-like slow-wave activity and model dissociated states of consciousness.

Abstract

A main characteristic of biological systems is their capacity to dynamically adapt to environmental changes. In the brain, synaptic plasticity enables the strengthening or weakening of connections between neurons, allowing neural circuits to adapt based on experience, learning, and environmental changes. Yet, it is homeostatically regulated such that it avoids excessive proliferation of synaptic contacts. These mechanisms can be studied with large-scale models of brain activity. Here, we embed a biologically grounded inhibitory homeostatic plasticity rule into the Dynamic Mean Field (DMF) model, creating a Homeostatic Dynamic Mean Field (HDMF) model that dynamically tunes local excitation-inhibition balance. Convergence of excitatory firing rates is reached by mapping a large range of coupling strength to parameters of inhibitory synapses. The HDMF reproduces statistical observables of brain activity as well as the original DMF, and can sustain neuromodulatory perturbations without overhead computations. The HDMF can generate unprecedented sleep-like slow-wave activity, which can also coexist with wake-like asynchronous dynamics, permitting to model dissociated states of consciousness such as parasomnias. Together, these results show that a single homeostatic rule broadens the stability and expressiveness of the DMF, providing a unified platform for studying how local adaptive processes shape the diverse global dynamics of the human brain.

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