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Dose response relationship in anti-stress gene regulatory networks
Qiang Zhang1, Melvin E Andersen
1Division of Computational Biology, CIIT Centers for Health Research, Research Triangle Park, North Carolina, United States of America. qzhang@ciit.org
Abstract:
To maintain a stable intracellular environment, cells utilize complex and specialized defense systems against a variety of external perturbations, such as electrophilic stress, heat shock, and hypoxia, etc. Irrespective of the type of stress, many adaptive mechanisms contributing to cellular homeostasis appear to operate through gene regulatory networks that are organized into negative feedback loops. In general, the degree of deviation of the controlled variables, such as electrophiles, misfolded proteins, and O2, is first detected by specialized sensor molecules, then the signal is transduced to specific transcription factors. Transcription factors can regulate the expression of a suite of anti-stress genes, many of which encode enzymes functioning to counteract the perturbed variables. The objective of this study was to explore, using control theory and computational approaches, the theoretical basis that underlies the steady-state dose response relationship between cellular stressors and intracellular biochemical species (controlled variables, transcription factors, and gene products) in these gene regulatory networks. Our work indicated that the shape of dose response curves (linear, superlinear, or sublinear) depends on changes in the specific values of local response coefficients (gains) distributed in the feedback loop. Multimerization of anti-stress enzymes and transcription factors into homodimers, homotrimers, or even higher-order multimers, play a significant role in maintaining robust homeostasis. Moreover, our simulation noted that dose response curves for the controlled variables can transition sequentially through four distinct phases as stressor level increases: initial superlinear with lesser control, superlinear more highly controlled, linear uncontrolled, and sublinear catastrophic. Each phase relies on specific gain-changing events that come into play as stressor level increases. The low-dose region is intrinsically nonlinear, and depending on the level of local gains, presence of gain-changing events, and degree of feedforward gene activation, this region can appear as superlinear, sublinear, or even J-shaped. The general dose response transition proposed here was further examined in a complex anti-electrophilic stress pathway, which involves multiple genes, enzymes, and metabolic reactions. This work would help biologists and especially toxicologists to better assess and predict the cellular impact brought about by biological stressors.
Insights
Cells use gene regulatory networks with negative feedback loops to maintain homeostasis against stress. This study reveals how dose-response curves shift through distinct phases, aiding in predicting cellular stress impacts.
Area of Science:
- Cellular Biology
- Systems Biology
- Biophysics
Background:
- Cells possess intricate defense systems to maintain homeostasis against diverse stressors like electrophilic stress, heat shock, and hypoxia.
- Cellular adaptive mechanisms often involve gene regulatory networks organized into negative feedback loops.
Purpose of the Study:
- To explore the theoretical basis of steady-state dose-response relationships in cellular stress response gene regulatory networks using control theory and computational approaches.
- To elucidate how intracellular biochemical species (controlled variables, transcription factors, gene products) respond to varying levels of cellular stressors.
Main Methods:
- Application of control theory and computational modeling to analyze gene regulatory networks.
- Simulation of dose-response relationships between cellular stressors and intracellular components.
- Examination of a specific anti-electrophilic stress pathway involving multiple genes and enzymes.
Main Results:
- Dose-response curve shapes (linear, superlinear, sublinear) are determined by local response coefficients (gains) within the feedback loop.
- Multimerization of enzymes and transcription factors significantly contributes to robust cellular homeostasis.
- Simulations showed controlled variables transition through four distinct phases with increasing stressor levels: superlinear (lesser control), superlinear (more control), linear (uncontrolled), and sublinear (catastrophic).
Conclusions:
- The study provides a theoretical framework for understanding cellular dose-response relationships under stress.
- The findings highlight the critical role of gain-changing events and molecular multimerization in maintaining cellular homeostasis.
- This research offers valuable insights for biologists and toxicologists in assessing and predicting cellular responses to biological stressors.
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