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Stressor-like effects of c-Jun N-terminal kinase (JNK) inhibition
Melanie Clarke1, Rowan Pentz, Jessica Bobyn
1Department of Neuroscience, Carleton University, Ottawa, Ontario, Canada.
Abstract:
There is an urgent need for novel treatment strategies for stressor related disorders, particularly depression and anxiety disorders. Indeed, existing drug treatments are only clinically successful in a subset of patients and relapse is common. This likely stems from the fact that stressor disorders are heterogeneous with multiple biological pathways being affected. To this end, the present investigation sought to assess in mice the contribution of the c-Jun N terminal kinase (JNK) pathway to the behavioral, hormonal and neurochemical effects of an acute stressor. Indeed, although JNK has been shown to modulate glucocorticoid receptors in vitro, virtually nothing is known of the role for JNK in affecting stressor induced pathology. We presently found that the JNK antagonist, SP600125, (but not the p38 antagonist, SB203580) increased plasma corticosterone levels under resting conditions and in the context of an acute stressor (wet bedding + restraint). SP600125 also reduced exploration in an open field arena, but prevented the stressor induced increase in open arm exploration in an elevated plus maze. Finally, SP600125 affected noradrenergic activity in the central amygdala and locus coruleus under resting condition, but prevented the noradrenergic effects within the paraventricular nucleus of the hypothalamus that were induced by the acute stressor exposure. These data suggest inhibiting endogenous JNK can have stressor-like corticoid, behavioral and central monoamine effects under basal conditions, but can actually reverse some behavioral and neurochemical effects of an acute stressor. Thus, endogenous JNK appears to affect stress relevant processes in a context-dependent manner.
Insights
Inhibiting the c-Jun N-terminal kinase (JNK) pathway in mice had stressor-like effects at rest but reversed some stressor-induced behavioral and neurochemical changes. This suggests JNK
Area of Science:
- Neuroscience
- Pharmacology
- Behavioral Science
Background:
- Stressor-related disorders like depression and anxiety lack effective treatments for many patients.
- Existing treatments have limited success and high relapse rates due to disorder heterogeneity.
- The role of the c-Jun N-terminal kinase (JNK) pathway in stressor-induced pathology is largely unknown.
Purpose of the Study:
- To investigate the contribution of the JNK pathway to the behavioral, hormonal, and neurochemical effects of acute stress in mice.
- To determine if JNK inhibition can mitigate stressor-induced responses.
Main Methods:
- Mice were treated with a JNK antagonist (SP600125) or a p38 antagonist (SB203580).
- Behavioral tests (open field, elevated plus maze) and hormonal (corticosterone) and neurochemical (noradrenergic activity) assessments were performed under basal and acute stress conditions (wet bedding + restraint).
Main Results:
- SP600125 increased plasma corticosterone and reduced exploration under resting conditions.
- SP600125 prevented stressor-induced increases in open arm exploration.
- SP600125 altered resting noradrenergic activity but prevented stressor-induced changes in the hypothalamus.
Conclusions:
- Inhibiting endogenous JNK can produce stressor-like effects under basal conditions.
- JNK inhibition can reverse certain behavioral and neurochemical effects of acute stress.
- Endogenous JNK plays a context-dependent role in stress-related processes.
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