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Identification of Mediators of T-cell Receptor Signaling via the Screening of Chemical Inhibitor Libraries
Published on: January 22, 2019
Arsenite-induced thymus atrophy is mediated by cell cycle arrest: a characteristic downregulation of E2F-related
Keiko Nohara1, Kana Ao, Yoshimi Miyamoto
1Environmental Health Sciences Division, National Institute for Environmental Studies, Tsukuba 305-8506, Japan. keikon@nies.go.jp
Abstract:
Thymus atrophy is induced by a variety of chemicals, including environmental contaminants and is used as a sensitive index to detect their adverse effects on lymphocytes. In the present study we adopted a toxicogenomics approach to identify the pathways that mediate the atrophy induced by arsenite. We also analyzed gene expression changes observed in the course of thymus atrophy by 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD), dexamethasone (DEX), and estradiol (E2), to determine whether arsenite induces atrophy by activating an arsenite-specific pathway or the same pathways as other chemicals. These compounds were intraperitoneally administered to C57BL/6 mice at doses that reduce thymus weight by approximately 30% within 3 days, and gene expression changes in the thymus 24 h after the administration were analyzed by using microarrays and real-time PCR. The microarray analysis showed that arsenite specifically downregulates a variety of E2F target genes that are involved in cell cycle progression. The same genes were also downregulated when mouse B-cell lymphoma A20 cells were exposed to arsenite. Arsenite exposure of the A20 cells was confirmed to induce cell cycle arrest, mainly in the G(1) phase, and reduce cell number. Cell cycle arrest in the G(1) phase was also confirmed to occur in the thymocytes of the arsenite-exposed mice. These results indicate that arsenite induces thymus atrophy through E2F-dependent cell cycle arrest. The results of this study also show that analysis of gene expression in thymuses is a useful method of obtaining clues to the pathways that mediate the effects of atrophy-inducing chemicals.
Insights
Arsenite exposure causes thymus atrophy by arresting cell cycle progression, specifically downregulating E2F target genes. This toxicogenomics study reveals a mechanism for thymus atrophy and highlights gene expression analysis for chemical effect pathway identification.
Area of Science:
- Toxicogenomics
- Immunotoxicology
- Environmental Health
Background:
- Thymus atrophy is a sensitive biomarker for chemical toxicity, including environmental contaminants.
- Understanding the molecular pathways mediating thymus atrophy is crucial for assessing chemical risks.
Purpose of the Study:
- To identify the molecular pathways involved in arsenite-induced thymus atrophy using a toxicogenomics approach.
- To compare arsenite's mechanism with other thymus atrophy-inducing chemicals like TCDD, dexamethasone (DEX), and estradiol (E2).
Main Methods:
- Intraperitoneal administration of arsenite, TCDD, DEX, and E2 to C57BL/6 mice.
- Analysis of thymus gene expression using microarrays and real-time PCR 24 hours post-administration.
- In vitro studies using mouse B-cell lymphoma A20 cells exposed to arsenite, assessing cell cycle progression.
Main Results:
- Arsenite specifically downregulates E2F target genes involved in cell cycle progression in mouse thymus.
- Similar downregulation of these genes and G(1) phase cell cycle arrest were observed in arsenite-exposed A20 cells and mouse thymocytes.
- Arsenite-induced thymus atrophy is mediated by E2F-dependent cell cycle arrest.
Conclusions:
- Arsenite induces thymus atrophy through a distinct E2F-dependent cell cycle arrest pathway.
- Gene expression profiling of thymus tissue is a valuable tool for elucidating mechanisms of chemical-induced atrophy.
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