| Literature DB >> 26251320 |
Kurt A Gust1, Bindu Nanduri2, Arun Rawat3, Mitchell S Wilbanks4, Choo Yaw Ang5, David R Johnson6, Ken Pendarvis7,8, Xianfeng Chen9, Michael J Quinn10, Mark S Johnson11, Shane C Burgess12, Edward J Perkins13.
Abstract
BACKGROUND: A systems toxicology investigation comparing and integrating transcriptomic and proteomic results was conducted to develop holistic effects characterizations for the wildlife bird model, Northern bobwhite (Colinus virginianus) dosed with the explosives degradation product 2-amino-4,6-dinitrotoluene (2A-DNT). A subchronic 60 d toxicology bioassay was leveraged where both sexes were dosed via daily gavage with 0, 3, 14, or 30 mg/kg-d 2A-DNT. Effects on global transcript expression were investigated in liver and kidney tissue using custom microarrays for C. virginianus in both sexes at all doses, while effects on proteome expression were investigated in liver for both sexes and kidney in males, at 30 mg/kg-d.Entities:
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Year: 2015 PMID: 26251320 PMCID: PMC4545821 DOI: 10.1186/s12864-015-1798-4
Source DB: PubMed Journal: BMC Genomics ISSN: 1471-2164 Impact factor: 3.969
Fig. 1Overlap of: (1) transcripts and/or proteins having significant differential expression (panels a-c), (2) significantly enriched biological networks (panels d-f), and (3) significantly enriched Kyoto Encyclopedia of Genes and Genomes (KEGG) ontology terms (panels g-i) in response to 2A-DNT dosing
Top 5 networks observed to be affected in liver tissue based on differentially expressed transcripts or proteins using Ingenuity Pathway Analysis
| Transcriptomics results | |
| Female, Liver, Tissue, 3 mg/k/day | Network function score |
| Carbohydrate Metabolism, Behavior, Genetic Disorder | 21 |
| Cellular Growth and Proliferation, Cell Death, DNA Replication, Recombination, and Repair | 19 |
| Cellular Growth and Proliferation, Cellular Movement, Cancer | 17 |
| Cellular Growth and Proliferation, Hematological System Development and Function, Inflammatory Response | 15 |
| Cell-To-Cell Signaling and Interaction, Hair and Skin Development and Function, Tissue Development | 10 |
| Male, Liver Tissue, 3 mg/kg/day | |
| Antigen Presentation, Cell-To-Cell Signaling and Interaction, Hematological System Development and Function | 23 |
| Lipid Metabolism, Molecular Transport, Small Molecular Biochemistry | 20 |
| Cellular Development, Cell Cycle, DNA Replication, Recombination, and Repair | 15 |
| Lipid Metabolism, Molecular Transport, Small Molecule Biochemistry | 15 |
| Cellular Growth and Proliferation, Small Molecular Biochemistry, Cancer | 15 |
| Female, Liver Tissue, 14 mg,/kg/day | |
| Lipid Metabolism, Small Molecular Biochemistry, Cellular Development | 61 |
| Cell Death, Cellular, Tissue Development | 21 |
| Organismal Injury and Abnormalities, Antigen Presentation, Humoral Immune Response | 19 |
| Cancer, Dermatological Diseases and Conditions, Cellular Development | 18 |
| Cell Death, Organ Morphology, Lipid Metabolism | 15 |
| Male, Liver Tissue, 14 mg/kg/day | |
| Lipid Metabolism, Small Molecular Biochemistry, Cellular Development | 21 |
| Lipid Metabolism, Small Molecular Biochemistry, Cellular Movement | 19 |
| Lipid Metabolism, Small Molecular Biochemistry, Vitamin and Mineral Metabolism | 18 |
| Lipid Metabolism, Small Molecular Biochemistry, Vitamin and Mineral Metabolism | 16 |
| Cell-To- Cell Signaling and Interaction, Tissue Development, Cellular Movement | 16 |
| Female, Liver Tissue, 30 mg/kg/day | |
| Organism Functions, Cell Death, Carbohydrate Metabolisms | 19 |
| Lipid Metabolism, Small Molecular Biochemistry, Vitamin and Mineral Metabolism | 18 |
| Cellular Growth and Proliferation, Skeletal and Muscular System Development and Function, Cellular Function and Maintenance | 16 |
| Lipid Metabolism, Small Molecular Biochemistry, Vitamin and Mineral Metabolism | 16 |
| Cellular Movement, Nervous System Development and Function, Organ Development | 16 |
| Male, Liver Tissue, 30 mg/kg/day | |
| DNA Replication, Recombination, and Repair, Protein Degradation, Protein Synthesis | 20 |
| Lipid Metabolism, Molecular Transport, Small Molecule Biochemistry | 18 |
| Lipid Metabolism, Molecular Transport, Small Molecular Biochemistry | 17 |
| Cell Cycle, Cellular Development, Cellular Assembly, and Organization | 17 |
| Cell Cycle, Hair and Skin Development and Function, Cellular Development | 15 |
| Proteomics Results | |
| Female, Liver 30 mg/kg/day | Network Functions Score |
| Cell-To-Cell Signaling and Interaction, Tissue Development, Lipid Metabolism | 28 |
| Cell-To-Cell Signaling and Interaction, Tissue Development, Cell Morphology | 18 |
| Amino acid Metabolism, Small Molecular Biochemistry, Cellular Assembly and Organization | 18 |
| Drug Metabolism, Endocrine System Development and Function, Lipid Metabolism | 18 |
| Cell Death, Cellular Growth and Proliferation, Nervous System Development and Function | 17 |
| Male, Liver 30 mg/kg/day | |
| Organismal Injury and Abnormalities, Respiratory Disease, Genetic Disorder | 24 |
| Lipid Metabolism, Molecular Transport, Small Molecular Biochemistry | 22 |
| Cell Morphology, Cellular Development, Nervous System Development and Function | 18 |
| Lipid Metabolism Small, Molecular Biochemistry, Molecular Transport | 15 |
| Gene Expression, Endocrine System Development and Function, Nervous System Development and Function | 2 |
Fig. 2Expression profiles of the most highly enriched Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways found in common among transcriptomic and proteomic results sets representing effects of oral 2A-DNT dosing in liver tissue
Fig. 3Overview of Kyoto Encyclopedia of Genes and Genomes (KEGG) metabolic pathways enriched in liver tissue of Northern bobwhite exposed to 2A-DNT. Values represent the distribution of primary KEGG pathways enriched in differentially expressed transcripts or proteins that are sorted into 2nd order KEGG ontology terms (listed in the legend). The vertical columns of legend terms track the charts clockwise starting at the twelve o’clock position. Specific pathways can be found in Additional file 1: Table S5
Fig. 4Effects of 2A-DNT in nuclear receptor activation and inhibition assays conducted in Chinese hamster ovary cells. The effects of 2A-DNT were examined against positive and negative controls for each nuclear receptor. Asterisks represent significant differences among treatments
Fig. 5Effects of 2A-DNT on transcript expression, protein expression and nuclear signaling mapped onto the Kyoto Encyclopedia of Genes and Genomes (KEGG) peroxisome proliferator-activated receptor (PPAR) pathway