Glutamate regulation of calcium and IP3 oscillating and pulsating dynamics in astrocytes
Maurizio De Pitta` (1), Mati Goldberg (1), Vladislav Volman (2, 3),, Hugues Berry (4), Eshel Ben-Jacob (1, 2) ((1) School of Physics and, Astronomy, Tel Aviv University, Israel, (2) Center for Theoretical Biological, Physics, UCSD, La Jolla, CA, USA

TL;DR
This paper develops a mathematical model of astrocytic calcium dynamics influenced by glutamate, revealing complex oscillatory behaviors and encoding modes that align with experimental observations, enhancing understanding of neuron-glia communication.
Contribution
It introduces a novel three-state model incorporating realistic IP3 regulation, extending previous models to better capture astrocytic calcium responses to glutamate signals.
Findings
The model predicts self-sustained calcium oscillations driven by IP3 and calcium interactions.
It demonstrates mixed frequency-amplitude encoding modes in astrocytes.
Results align with experimental data on astrocyte calcium dynamics.
Abstract
Recent years have witnessed an increasing interest in neuron-glia communication. This interest stems from the realization that glia participates in cognitive functions and information processing and is involved in many brain disorders and neurodegenerative diseases. An important process in neuron-glia communications is astrocyte encoding of synaptic information transfer: the modulation of intracellular calcium dynamics in astrocytes in response to synaptic activity. Here, we derive and investigate a concise mathematical model for glutamate-induced astrocytic intracellular Ca2+ dynamics that captures the essential biochemical features of the regulatory pathway of inositol 1,4,5-trisphosphate (IP3). Starting from the well-known two-state Li-Rinzel model for calcium-induced-calcium release, we incorporate the regulation of the IP3 production and phosphorylation. Doing so we extended it to…
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