Repository logo
Log In(current)
  1. Home
  2. Colleges & Schools
  3. College of Arts and Sciences
  4. Psychology and Neuroscience
  5. Psychology & Neuroscience Publications and Other Works
  6. Metabolomics reveals distinct neurochemical profiles associated with stress resilience
Details

Metabolomics reveals distinct neurochemical profiles associated with stress resilience

Source Publication
Neurobiology of Stress
Date Issued
August 7, 2017
Author(s)
Dulka, Brooke N.
Bourdon, Allen K.  
Clinard, Catherine T.  
Muvvala, Mohan B.K.
Campagna, Shawn R.  
Cooper, Matthew A.  
DOI
10.1016/j.ynstr.2017.08.001
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/50678
Abstract

Acute social defeat represents a naturalistic form of conditioned fear and is an excellent model in which to investigate the biological basis of stress resilience. While there is growing interest in identifying biomarkers of stress resilience, until recently, it has not been feasible to associate levels of large numbers of neurochemicals and metabolites to stress-related phenotypes. The objective of the present study was to use an untargeted metabolomics approach to identify known and unknown neurochemicals in select brain regions that distinguish susceptible and resistant individuals in two rodent models of acute social defeat. In the first experiment, male mice were first phenotyped as resistant or susceptible. Then, mice were subjected to acute social defeat, and tissues were immediately collected from the ventromedial prefrontal cortex (vmPFC), basolateral/central amygdala (BLA/CeA), nucleus accumbens (NAc), and dorsal hippocampus (dHPC). Ultra-high performance liquid chromatography coupled with high resolution mass spectrometry (UPLC-HRMS) was used for the detection of water-soluble neurochemicals. In the second experiment, male Syrian hamsters were paired in daily agonistic encounters for 2 weeks, during which they formed stable dominant-subordinate relationships. Then, 24 h after the last dominance encounter, animals were exposed to acute social defeat stress. Immediately after social defeat, tissue was collected from the vmPFC, BLA/CeA, NAc, and dHPC for analysis using UPLC-HRMS. Although no single biomarker characterized stress-related phenotypes in both species, commonalities were found. For instance, in both model systems, animals resistant to social defeat stress also show increased concentration of molecules to protect against oxidative stress in the NAc and vmPFC. Additionally, in both mice and hamsters, unidentified spectral features were preliminarily annotated as potential targets for future experiments. Overall, these findings suggest that a metabolomics approach can identify functional groups of neurochemicals that may serve as novel targets for the diagnosis, treatment, or prevention of stress-related mental illness.

Subjects

Metabolomics

Biomarkers

Resilience

Stress

Oxidative stress

Social defeat

Comments

This article was published openly thanks to the University of Tennessee Open Publishing Support Fund.


Licensed under a Creative Commons Attribution 4.0 International license.

Recommended Citation
Brooke N. Dulka, Allen K. Bourdon, Catherine T. Clinard, Mohan B.K. Muvvala, Shawn R. Campagna, Matthew A. Cooper. Metabolomics reveals distinct neurochemical profiles associated with stress resilience, In Neurobiology of Stress, Volume 7, 2017, Pages 103-112. https://doi.org/10.1016/j.ynstr.2017.08.001.
Submission Type
Publisher's Version
File(s)
Thumbnail Image
Name

Cooper.pdf

Size

1.21 MB

Format

Adobe PDF

Checksum (MD5)

51659c5ee9fb5534e4db14532d0b75ab


University Libraries

1015 Volunteer Boulevard
Knoxville, TN 37996
865-974-4351

Map & Directions
Donate to the Libraries
  • About
  • John C. Hodges Society
  • Speaking Volumes magazine
  • Outreach
  • Directory
  • Employment
  • Policies
  • Library Intranet
University of Tennessee power T logo

The University of Tennessee, Knoxville
Knoxville, Tennessee 37996
865-974-1000

Events
A-Z
Apply
Privacy
Map
Directory
Give to UT
Accessibility

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science