Activity-dependent neuromodulation and calcium homeostasis cooperate to produce robust and modulable neuronal function
Arthur Fyon, Guillaume Drion

TL;DR
This paper presents a biologically inspired neuromodulation controller that, together with calcium homeostasis, ensures reliable and adaptable neuronal and network functions through computational modeling.
Contribution
It introduces a novel neuromodulation controller that harmonizes with calcium homeostasis to maintain neuronal stability and flexibility in conductance-based models.
Findings
Controlled neuromodulation preserves firing patterns.
Calcium homeostasis maintains target calcium levels.
Interaction depends on conductance space intersection.
Abstract
Neurons rely on two interdependent mechanisms, homeostasis and neuromodulation, to maintain robust and adaptable functionality. Calcium homeostasis stabilizes neuronal activity by adjusting ionic conductances, whereas neuromodulation dynamically modifies ionic properties in response to external signals carried by neuromodulators. Combining these mechanisms in conductance-based models often produces unreliable outcomes, particularly when sharp neuromodulation interferes with calcium-homeostatic tuning. This study explores how a biologically inspired neuromodulation controller can harmonize with calcium homeostasis to ensure reliable neuronal function. Using computational models of stomatogastric ganglion and dopaminergic neurons, we demonstrate that controlled neuromodulation preserves neuronal firing patterns while calcium homeostasis simultaneously maintains target intracellular…
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