The Comparative Toxicogenomics Database facilitates identification and understanding of chemical-gene-disease associations: arsenic as a case study

被引:64
作者
Davis, Allan P. [1 ]
Murphy, Cynthia G. [1 ]
Rosenstein, Michael C. [1 ]
Wiegers, Thomas C. [1 ]
Mattingly, Carolyn J. [1 ]
机构
[1] Mt Desert Isl Biol Lab, Dept Bioinformat, Salsbury Cove, ME 04672 USA
关键词
D O I
10.1186/1755-8794-1-48
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: The etiology of many chronic diseases involves interactions between environmental factors and genes that modulate physiological processes. Understanding interactions between environmental chemicals and genes/proteins may provide insights into the mechanisms of chemical actions, disease susceptibility, toxicity, and therapeutic drug interactions. The Comparative Toxicogenomics Database (CTD; http://ctd.mdibl.org) provides these insights by curating and integrating data describing relationships between chemicals, genes/proteins, and human diseases. To illustrate the scope and application of CTD, we present an analysis of curated data for the chemical arsenic. Arsenic represents a major global environmental health threat and is associated with many diseases. The mechanisms by which arsenic modulates these diseases are not well understood. Methods: Curated interactions between arsenic compounds and genes were downloaded using export and batch query tools at CTD. The list of genes was analyzed for molecular interactions, Gene Ontology (GO) terms, KEGG pathway annotations, and inferred disease relationships. Results: CTD contains curated data from the published literature describing 2,738 molecular interactions between 21 different arsenic compounds and 1,456 genes and proteins. Analysis of these genes and proteins provide insight into the biological functions and molecular networks that are affected by exposure to arsenic, including stress response, apoptosis, cell cycle, and specific protein signaling pathways. Integrating arsenic-gene data with gene-disease data yields a list of diseases that may be associated with arsenic exposure and genes that may explain this association. Conclusion: CTD data integration and curation strategies yield insight into the actions of environmental chemicals and provide a basis for developing hypotheses about the molecular mechanisms underlying the etiology of environmental diseases. While many reports describe the molecular response to arsenic, CTD integrates these data with additional curated data sets that facilitate construction of chemical-gene-disease networks and provide the groundwork for investigating the molecular basis of arsenic-associated diseases or toxicity. The analysis reported here is extensible to any environmental chemical or therapeutic drug.
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页数:12
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  • [1] How many transcription factors does it take to turn on the heme oxygenase-1 gene?
    Alam, Jawed
    Cook, Julia L.
    [J]. AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 2007, 36 (02) : 166 - 174
  • [2] Drinking-water arsenic exposure modulates gene expression in human lymphocytes from a US population
    Andrew, Angeline S.
    Jewe, David A.
    Mason, Rebecca A.
    Whitfleld, Michael L.
    Moore, Jason H.
    Karagas, Margaret R.
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 2008, 116 (04) : 524 - 531
  • [3] Gene Ontology: tool for the unification of biology
    Ashburner, M
    Ball, CA
    Blake, JA
    Botstein, D
    Butler, H
    Cherry, JM
    Davis, AP
    Dolinski, K
    Dwight, SS
    Eppig, JT
    Harris, MA
    Hill, DP
    Issel-Tarver, L
    Kasarskis, A
    Lewis, S
    Matese, JC
    Richardson, JE
    Ringwald, M
    Rubin, GM
    Sherlock, G
    [J]. NATURE GENETICS, 2000, 25 (01) : 25 - 29
  • [4] Modeling the probability of arsenic in groundwater in New England as a tool for exposure assessment
    Ayotte, Joseph D.
    Nolan, Bernard T.
    Nucklos, John R.
    Cantor, Kenneth P.
    Robinson, Gilpin R., Jr.
    Baris, Dalsu
    Hayes, Laura
    Kargas, Margaret
    Bress, Willian
    Silverman, Debra T.
    Lubin, Jay H.
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (11) : 3578 - 3585
  • [5] Arsenic in the environment: Biology and Chemistry
    Bhattacharya, Prosun
    Welch, Alan H.
    Stollenwerk, Kenneth G.
    McLaughlin, Mike J.
    Bundschuh, Jochen
    Panaullah, G.
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2007, 379 (2-3) : 109 - 120
  • [6] Environmental pollutants and breast cancer -: Epidemiologic studies
    Brody, Julia Green
    Moysich, Kirsten B.
    Humblet, Olivier
    Attfield, Kathleen R.
    Beehler, Gregory P.
    Rudel, Ruthann A.
    [J]. CANCER, 2007, 109 (12) : 2667 - 2711
  • [7] Progress in the epidemiological understanding of gene-environment interactions in major diseases: cancer
    Clavel, Jacqueline
    [J]. COMPTES RENDUS BIOLOGIES, 2007, 330 (04) : 306 - 317
  • [8] Arsenic as an endocrine disruptor: Arsenic disrupts retinoic acid receptor- and thyroid hormone receptor-mediated gene regulation and thyroid hormone-mediated amphibian tail metamorphosis
    Davey, Jennifer C.
    Nomikos, Athena P.
    Wungjiranirun, Manida
    Sherman, Jenna R.
    Ingram, Liam
    Batki, Cavus
    Lariviere, Jean P.
    Hamilton, Joshua W.
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 2008, 116 (02) : 165 - 172
  • [9] Arsenic as an endocrine disruptor:: Effects of arsenic on estrogen receptor-mediated gene expression in vivo and in cell culture
    Davey, Jennifer C.
    Bodwell, Jack E.
    Gosse, Julie A.
    Hamilton, Joshua W.
    [J]. TOXICOLOGICAL SCIENCES, 2007, 98 (01) : 75 - 86
  • [10] Environmental epigenomics in human health and disease
    Dolinoy, Dana C.
    Jirtle, Randy L.
    [J]. ENVIRONMENTAL AND MOLECULAR MUTAGENESIS, 2008, 49 (01) : 4 - 8