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Multistationary and Oscillatory Modes of Free Radicals Generation by the Mitochondrial Respiratory Chain Revealed by a Bifurcation Analysis

Overview of attention for article published in PLoS Computational Biology, September 2012
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Title
Multistationary and Oscillatory Modes of Free Radicals Generation by the Mitochondrial Respiratory Chain Revealed by a Bifurcation Analysis
Published in
PLoS Computational Biology, September 2012
DOI 10.1371/journal.pcbi.1002700
Pubmed ID
Authors

Vitaly A. Selivanov, Marta Cascante, Mark Friedman, Mark F. Schumaker, Massimo Trucco, Tatyana V. Votyakova

Abstract

The mitochondrial electron transport chain transforms energy satisfying cellular demand and generates reactive oxygen species (ROS) that act as metabolic signals or destructive factors. Therefore, knowledge of the possible modes and bifurcations of electron transport that affect ROS signaling provides insight into the interrelationship of mitochondrial respiration with cellular metabolism. Here, a bifurcation analysis of a sequence of the electron transport chain models of increasing complexity was used to analyze the contribution of individual components to the modes of respiratory chain behavior. Our algorithm constructed models as large systems of ordinary differential equations describing the time evolution of the distribution of redox states of the respiratory complexes. The most complete model of the respiratory chain and linked metabolic reactions predicted that condensed mitochondria produce more ROS at low succinate concentration and less ROS at high succinate levels than swelled mitochondria. This prediction was validated by measuring ROS production under various swelling conditions. A numerical bifurcation analysis revealed qualitatively different types of multistationary behavior and sustained oscillations in the parameter space near a region that was previously found to describe the behavior of isolated mitochondria. The oscillations in transmembrane potential and ROS generation, observed in living cells were reproduced in the model that includes interaction of respiratory complexes with the reactions of TCA cycle. Whereas multistationarity is an internal characteristic of the respiratory chain, the functional link of respiration with central metabolism creates oscillations, which can be understood as a means of auto-regulation of cell metabolism.

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Geographical breakdown

Country Count As %
United States 1 3%
Germany 1 3%
Canada 1 3%
Unknown 35 92%

Demographic breakdown

Readers by professional status Count As %
Researcher 12 32%
Student > Ph. D. Student 6 16%
Professor 4 11%
Professor > Associate Professor 3 8%
Student > Bachelor 2 5%
Other 4 11%
Unknown 7 18%
Readers by discipline Count As %
Agricultural and Biological Sciences 12 32%
Computer Science 4 11%
Medicine and Dentistry 4 11%
Biochemistry, Genetics and Molecular Biology 3 8%
Engineering 2 5%
Other 5 13%
Unknown 8 21%