A biophysical model explains the spontaneous bursting behavior in the developing retina
Dora Matzakou-Karvouniari, Lionel Gil, Elaine Orendorff, Olivier, Marre, Serge Picaud, Bruno Cessac

TL;DR
This paper presents a biophysical mathematical model that reproduces the spontaneous bursting activity of starburst amacrine cells in the developing retina, explaining their intrinsic properties and developmental changes.
Contribution
It introduces a novel, biophysically grounded model that captures SAC bursting behavior and predicts the role of specific ion channels in development.
Findings
Reproduces SAC bursting activity using calcium and potassium channels.
Identifies bifurcation mechanisms controlling bursting and refractory periods.
Predicts experimental roles of potassium channels in SAC excitability.
Abstract
During early development, waves of activity propagate across the retina and play a key role in the proper wiring of the early visual system. During the stage II these waves are triggered by a transient network of neurons, called Starburst Amacrine Cells (SACs), showing a bursting activity which disappears upon further maturation. While several models have attempted to reproduce retinal waves, none of them is able to mimic the rhythmic autonomous bursting of individual SACs and reveal how these cells change their intrinsic properties during development. Here, we introduce a mathematical model, grounded on biophysics, which enables us to reproduce the bursting activity of SACs and to propose a plausible, generic and robust, mechanism that generates it. The core parameters controlling repetitive firing are fast depolarizing -gated calcium channels and hyperpolarizing -gated potassium…
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Taxonomy
TopicsPhotoreceptor and optogenetics research · Neural dynamics and brain function · stochastic dynamics and bifurcation
