Mechanisms and mathematical modeling of ROS production by the mitochondrial electron transport chain

Author:

Chenna Sandeep1,Koopman Werner J. H.23ORCID,Prehn Jochen H. M.14,Connolly Niamh M. C.1

Affiliation:

1. Department of Physiology and Medical Physics, Centre for Systems Medicine, Royal College of Surgeons in Ireland, Dublin, Ireland

2. Department of Pediatrics, Amalia Children’s Hospital, Radboud Institute for Molecular Life Sciences, Radboud Center for Mitochondrial Disorders, Radboud University Medical Center, Nijmegen, The Netherlands

3. Human and Animal Physiology, Wageningen University, Wageningen, The Netherlands

4. SFI FutureNeuro Research Centre, Dublin, Ireland

Abstract

Reactive oxygen species (ROS) are recognized both as damaging molecules and intracellular signaling entities. In addition to its role in ATP generation, the mitochondrial electron transport chain (ETC) constitutes a relevant source of mitochondrial ROS, in particular during pathological conditions. Mitochondrial ROS homeostasis depends on species- and site-dependent ROS production, their bioreactivity, diffusion, and scavenging. However, our quantitative understanding of mitochondrial ROS homeostasis has thus far been hampered by technical limitations, including a lack of truly site- and/or ROS-specific reporter molecules. In this context, the use of computational models is of great value to complement and interpret empirical data, as well as to predict variables that are difficult to assess experimentally. During the past decades, various mechanistic models of ETC-mediated ROS production have been developed. Although these often-complex models have generated novel insights, their parameterization, analysis, and integration with other computational models are not straightforward. In contrast, phenomenological (sometimes termed “minimal”) models use a relatively small set of equations to describe empirical relationship(s) between ROS-related and other parameters and generally aim to explore system behavior and generate hypotheses for experimental validation. In this review, we first discuss ETC-linked ROS homeostasis and introduce various detailed mechanistic models. Next, we present how bioenergetic parameters (e.g., NADH/NAD+ ratio and mitochondrial membrane potential) relate to site-specific ROS production within the ETC and how these relationships can be used to design minimal models of ROS homeostasis. Finally, we illustrate how minimal models have been applied to explore pathophysiological aspects of ROS.

Funder

Next Level Animal Sciences (NLAS) initiative of the Wageningen University

EC | European Regional Development Fund

Innovative Medicines Initiative

Science Foundation Ireland

European Union's Horizon 2020 Research and Innovation Program

European Federation of Pharmaceutical Industries and Associations

Parkinson's UK

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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