Discovery of Metabolic Signatures for Predicting Whole Organism Toxicology
Open Access
- 11 January 2010
- journal article
- research article
- Published by Oxford University Press (OUP) in Toxicological Sciences
- Vol. 115 (2), 369-378
- https://doi.org/10.1093/toxsci/kfq004
Abstract
Toxicological studies in sentinel organisms frequently use biomarkers to assess biological effect. Development of “omic” technologies has enhanced biomarker discovery at the molecular level, providing signatures unique to toxicant mode-of-action (MOA). However, these signatures often lack relevance to organismal responses, such as growth or reproduction, limiting their value for environmental monitoring. Our primary objective was to discover metabolic signatures in chemically exposed organisms that can predict physiological toxicity. Marine mussels (Mytilus edulis) were exposed for 7 days to 12 and 50 μg/l copper and 50 and 350 μg/l pentachlorophenol (PCP), toxicants with unique MOAs. Physiological responses comprised an established measure of organism energetic fitness, scope for growth (SFG). Metabolic fingerprints were measured in the same individuals using nuclear magnetic resonance–based metabolomics. Metabolic signatures predictive of SFG were sought using optimal variable selection strategies and multivariate regression and then tested upon independently field-sampled mussels from rural and industrialized sites. Copper and PCP induced rational metabolic and physiological changes. Measured and predicted SFG were highly correlated for copper (r2 = 0.55, P = 2.82 × 10−7) and PCP (r2 = 0.66, P = 3.20 × 10−6). Predictive metabolites included methionine and arginine/phosphoarginine for copper and allantoin, valine, and methionine for PCP. When tested on field-sampled animals, metabolic signatures predicted considerably reduced fitness of mussels from the contaminated (SFG = 6.0 J/h/g) versus rural (SFG = 15.2 J/h/g) site. We report the first successful discovery of metabolic signatures in chemically exposed environmental organisms that inform on molecular MOA and that can predict physiological toxicity. This could have far-reaching implications for monitoring impacts on environmental health.Keywords
This publication has 37 references indexed in Scilit:
- Mussel histopathology: effects of season, disease and speciesAquatic Biology, 2008
- NMR-Based Metabolic Profiling and Metabonomic Approaches to Problems in Molecular ToxicologyChemical Research in Toxicology, 2008
- Prediction and Classification of Drug Toxicity Using Probabilistic Modeling of Temporal Metabolic Data: The Consortium on Metabonomic Toxicology Screening ApproachJournal of Proteome Research, 2007
- The use and misuse of biomarkers in ecotoxicologyEnvironmental Toxicology and Chemistry, 2006
- Copper toxicity, oxidative stress, and antioxidant nutrientsToxicology, 2003
- A Deterministic Ecological Risk Assessment for Copper in European Saltwater EnvironmentsMarine Pollution Bulletin, 1999
- The contribution of anaerobic energy to gastropod crawling and a re-estimation of minimum cost of transport in the abalone, Haliotis kamtschatkana (Jonas)Journal of Experimental Marine Biology and Ecology, 1999
- Heavy Metal and Hydrocarbon Pollution in Recent Sediments from Southampton Water, Southern England: A Geochemical and Isotopic StudyEnvironmental Science & Technology, 1995
- Induction of biotransformation in the liver of eel (Anguilla anguilla L.) by sublethal exposure to dinitro-o-cresol: An ultrastructural and biochemical studyEcotoxicology and Environmental Safety, 1991
- Emergence and recovery response of phosphate metabolites and intracellular pH in intact Mytilus edulis as examined in situ by in vivo 31P-NMRBiochimica et Biophysica Acta (BBA) - Molecular Cell Research, 1991