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TMT Sample Preparation for Proteomics Facility Submission and Subsequent Data Analysis
Published on: June 8, 2020
Strain differences in the proteome of dioxin-sensitive and dioxin-resistant mice treated with
Hoa Thanh Nguyen1, Maria Claret Lauan Tsuchiya1,2, Jean Yoo1
1Laboratory of Environmental Toxicology, Center for Marine Environmental Studies (CMES), Ehime University, Matsuyama, 790-8577, Japan.
Abstract:
Dioxins cause various toxic effects through the aryl hydrocarbon receptor (AHR) in vertebrates, with dramatic species and strain differences in susceptibility. Although inbred mouse strains C3H/HeJ-lpr/lpr (C3H/lpr) and MRL/MpJ-lpr/lpr (MRL/lpr) are known as dioxin-sensitive and dioxin-resistant mice, respectively, the molecular mechanism underlying this difference remains unclear. The difference in the hepatic proteome of the two mouse strains treated with vehicle or 2,3,7,8-tetrabromodibenzo-p-dioxin (TBDD) was investigated by a proteomic approach of two-dimensional electrophoresis (2-DE) coupled with matrix-assisted laser desorption/ionization time-of-flight/time-of-flight tandem mass spectrometry (MALDI-TOF/TOF). To confirm the strain-difference in response to TBDD treatment, cytochrome P450 (CYP) 1A1 and 1A2 protein levels were measured in both strains. A dose of 10 µg/kg body weight of TBDD induced hepatic CYP1A1 and CYP1A2 expression in both strains, but the expression levels of both CYP1A proteins were higher in C3H/lpr mice than in MRL/lpr mice, supporting that C3H/lpr mice are more sensitive to dioxins than MRL/lpr mice. Proteins that were more induced or suppressed by TBDD treatment in C3H/lpr mice were successfully identified by 2-DE and MALDI-TOF/TOF, including proteins responsible for AHR activation through production of endogenous ligands such as aspartate aminotransferase, indolethylamine N-methyltransferase, and aldehyde dehydrogenases, as well as proteins reducing oxidative stress, such as superoxide dismutase and peroxiredoxins. Taken together, our results provide insights into the molecular mechanism underlying the high dioxin susceptibility of the C3H/lpr strain, in which AHR activation by TBDD is more prompted by the production of endogenous ligands, but the adaptation to oxidative stress is also acquired.
Insights
This study reveals that dioxin-sensitive C3H/lpr mice exhibit enhanced aryl hydrocarbon receptor (AHR) activation and oxidative stress adaptation compared to dioxin-resistant MRL/lpr mice, explaining susceptibility differences.
Area of Science:
- Toxicology
- Proteomics
- Molecular Biology
Background:
- Dioxins exert toxic effects via the aryl hydrocarbon receptor (AHR), with significant species and strain variations in susceptibility.
- The molecular mechanisms behind differential dioxin sensitivity between C3H/lpr (sensitive) and MRL/lpr (resistant) mouse strains remain largely unknown.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the differential dioxin susceptibility between C3H/lpr and MRL/lpr mouse strains.
- To identify key proteins affected by 2,3,7,8-tetrabromodibenzo-p-dioxin (TBDD) in the liver proteome of these distinct mouse strains.
Main Methods:
- Proteomic analysis using two-dimensional electrophoresis (2-DE) combined with MALDI-TOF/TOF mass spectrometry.
- Quantification of cytochrome P450 (CYP) 1A1 and 1A2 protein levels to confirm strain-specific responses to TBDD.
Main Results:
- TBDD treatment induced higher hepatic CYP1A1 and CYP1A2 expression in C3H/lpr mice compared to MRL/lpr mice, confirming greater sensitivity.
- Proteomic analysis identified proteins involved in AHR activation (e.g., aspartate aminotransferase) and oxidative stress reduction (e.g., superoxide dismutase) that were differentially regulated by TBDD in C3H/lpr mice.
Conclusions:
- The heightened dioxin susceptibility in C3H/lpr mice is linked to more prompt AHR activation, potentially driven by endogenous ligand production.
- Enhanced adaptive responses to oxidative stress contribute to the observed differences in dioxin toxicity between the mouse strains.

