4.7 Article

Geometric analysis of the spontaneous electrical activity in anterior pituitary corticotrophs

Journal

CHAOS SOLITONS & FRACTALS
Volume 161, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chaos.2022.112305

Keywords

Geometric singular perturbation theory; Fast; slow analysis; Model reduction; Multiple timescales; Bifurcation analysis

Funding

  1. National Natural Science Foundation of China [11572127, 11872183]
  2. National Natural Science Founda- tion of China

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This paper investigates the electrical excitability of pituitary cells and the triggering relationship between their secretory function and electrical activity using mathematical modeling and analysis. The simplified model and the multi-geometric perspective reveal the intrinsic transients and long-term evolution of the system, as well as the dynamic mechanism and mixed-mode oscillations of cell firing. This study provides a new perspective on the origin of cellular spontaneous firing activity.
Pituitary cells are electrically excitable. A core set of intracellular ion channels cooperate in providing the basic conditions for the generation of electro-excitable patterns. Although much data have been accumulated on elec-trophysiological recordings of corticotrophs, there is an unclear triggering relationship between the secretory function of the cells and the electrical activity pattern. Fletcher et al. established a conductance-based 6 -dimensional mathematical model to capture the detailed features of three spontaneous firing activities observed in electrophysiological experiments. This paper employs eigenvalue analysis and curve fitting to simplify the original model to a 4-dimensional one. The simplified model maintains many aspects of the firing activity of the original model. Then, considering the development of system variables on multiple time scales, the geometric singular perturbation theory and fast/slow analysis are utilized to observe the system's intrinsic transients and the long-term evolution of each attractor from a multi-geometric perspective. In particular, singular periodic or-bits of the corticotropic model are constructed to explore the dynamic mechanism of cells firing. The dynamic mechanism of mixed-mode oscillations in this model is also revealed. The analysis helps us gain insight into the corticotrophs model from a low-dimensional subsystem and provides a new perspective on the origin of cel-lular spontaneous firing activity.(c) 2022 Elsevier Ltd. All rights reserved.

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