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Simple kinetic model of mitochondrial swelling in cardiac cells
Author(s) -
ChapaDubocq Xavier,
Makarov Vladimir,
Javadov Sabzali
Publication year - 2018
Publication title -
journal of cellular physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.529
H-Index - 174
eISSN - 1097-4652
pISSN - 0021-9541
DOI - 10.1002/jcp.26335
Subject(s) - swelling , mitochondrion , mitochondrial permeability transition pore , biophysics , membrane potential , programmed cell death , inner mitochondrial membrane , depolarization , chemistry , apoptosis , microbiology and biotechnology , cell , biochemistry , materials science , biology , composite material
Mitochondria play an important role in both cell survival and cell death. In response to oxidative stress, they undergo opening of non‐selective permeability transition pores (PTP) in the inner mitochondrial membrane. Sustained PTP opening triggers mitochondrial swelling due to increased colloidal osmotic pressure in the matrix accompanied by mitochondrial membrane depolarization and ATP hydrolysis. Mitochondrial swelling is the major factor leading to mitochondria‐mediated cell death through both apoptosis and necrosis. Hence, precise estimation of the threshold parameters of the transition of reversible swelling to irreversible swelling is important for understanding the mechanisms of PTP‐mediated cell death as well as for the development of new therapeutic approaches targeting the mitochondria under pathological conditions. In this study, we designed a simple kinetic model of the Ca 2+ ‐induced mitochondrial swelling that describes the mechanisms of transition from reversible to irreversible swelling in cardiac mitochondria. Values of kinetic parameters calculated using parameter estimation techniques that fit experimental data of mitochondrial swelling with minimum average differences between the experimental data and model parameters. Overall, this study provides a kinetic model verified by data simulation and model fitting that adequately describes the dynamics of mitochondrial swelling.