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Published on: March 7, 2019
Stressor-induced increase in microbicidal activity of splenic macrophages is dependent upon peroxynitrite production
Rebecca G Allen1, William P Lafuse, Nicole D Powell
1Integrated Biomedical Sciences Graduate Program, Wexner Medical Center at The Ohio State University, Columbus, Ohio, USA.
Abstract:
Exposing mice to a social stressor called social disruption (SDR) that involves repeated social defeat during intermale aggression results in increased circulating cytokines, such as interleukin-1α (IL-1α) and IL-1β, and increased reactivity of splenic CD11b(+) macrophages to inflammatory stimuli. For example, upon lipopolysaccharide stimulation, macrophages from stressor-exposed mice produce higher levels of cytokines than do cells from nonstressed controls. Moreover, the SDR stressor enhances the ability of these macrophages to kill Escherichia coli both in vitro and in vivo, through a Toll-like receptor 4-dependent mechanism. The present study tested the hypothesis that stressor-enhanced bacterial killing is due to increases in the production of peroxynitrite. Male mice were exposed to the SDR stressor or were left undisturbed. Upon stimulation with E. coli, splenic macrophages from SDR-exposed mice expressed significantly increased levels of inducible nitric oxide synthase mRNA and produced higher levels of peroxynitrite. Blocking the production of peroxynitrite abrogated the SDR-induced increase in microbicidal activity. Studies in IL-1 receptor type 1 knockout mice indicated that the increased microbicidal activity and peroxynitrite production was dependent upon IL-1 signaling. These data confirm and extend the importance of IL-1 signaling for stressor-induced immunopotentiation; the finding that inhibiting superoxide or nitric oxide production inhibits both peroxynitrite production and killing of E. coli demonstrates that peroxynitrite mediates the stressor-induced increase in bacterial killing.
Insights
Social disruption stress enhances mice
Area of Science:
- Immunology
- Neuroscience
- Microbiology
Background:
- Social disruption stress (SDR) increases circulating cytokines and enhances macrophage reactivity.
- SDR-exposed macrophages exhibit increased capacity to kill Escherichia coli via a Toll-like receptor 4-dependent mechanism.
Purpose of the Study:
- To investigate if stressor-enhanced bacterial killing is mediated by increased peroxynitrite production.
- To determine the role of interleukin-1 (IL-1) signaling in stress-induced immunopotentiation.
Main Methods:
- Mice were exposed to SDR or left undisturbed.
- Splenic macrophages were stimulated with E. coli.
- Levels of inducible nitric oxide synthase mRNA, peroxynitrite, and cytokine production were measured.
- Peroxynitrite production was blocked, and IL-1 receptor type 1 knockout mice were studied.
Main Results:
- SDR-exposed macrophages showed increased inducible nitric oxide synthase mRNA and peroxynitrite production upon E. coli stimulation.
- Blocking peroxynitrite production abolished the SDR-induced increase in bacterial killing.
- Increased microbicidal activity and peroxynitrite production were dependent on IL-1 signaling.
Conclusions:
- Peroxynitrite mediates the stressor-induced enhancement of bacterial killing by macrophages.
- IL-1 signaling is crucial for stressor-induced immunopotentiation, leading to enhanced macrophage microbicidal activity.
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