Arabidopsis and the Genetic Potential for the Phytoremediation of Toxic Elemental and Organic Pollutants
- 1 January 2002
- journal article
- Published by BioOne in The Arabidopsis Book
- Vol. 1, e0032
- https://doi.org/10.1199/tab.0032
Abstract
In a process called phytoremediation, plants can be used to extract, detoxify, and/or sequester toxic pollutants from soil, water, and air. Phytoremediation may become an essential tool in cleaning the environment and reducing human and animal exposure to potential carcinogens and other toxins. Arabidopsis has provided useful information about the genetic, physiological, and biochemical mechanisms behind phytoremediation, and it is an excellent model genetic organism to test foreign gene expression. This review focuses on Arabidopsis studies concerning: 1) the remediation of elemental pollutants; 2) the remediation of organic pollutants; and 3) the phytoremediation genome. Elemental pollutants include heavy metals and metalloids (e.g., mercury, lead, cadmium, arsenic) that are immutable. The general goal of phytoremediation is to extract, detoxify, and hyperaccumulate elemental pollutants in above-ground plant tissues for later harvest. A few dozen Arabidopsis genes and proteins that play direct roles in the remediation of elemental pollutants are discussed. Organic pollutants include toxic chemicals such as benzene, benzo(a)pyrene, polychlorinated biphenyls, trichloroethylene, trinitrotoluene, and dichlorodiphenyltrichloroethane. Phytoremediation of organic pollutants is focused on their complete mineralization to harmless products, however, less is known about the potential of plants to act on complex organic chemicals. A preliminary survey of the Arabidopsis genome suggests that as many as 700 genes encode proteins that have the capacity to act directly on environmental pollutants or could be modified to do so. The potential of the phytoremediation proteome to be used to reduce human exposure to toxic pollutants appears to be enormous and untapped.Keywords
This publication has 143 references indexed in Scilit:
- Expression of a truncated tobacco NtCBP4 channel in transgenic plants and disruption of the homologous Arabidopsis CNGC1 gene confer Pb2+ toleranceThe Plant Journal, 2000
- Effects ofPinus sylvestrisroot growth and mycorrhizosphere development on bacterial carbon source utilization and hydrocarbon oxidation in forest and petroleum-contaminated soilsCanadian Journal of Microbiology, 2000
- Confirmation of Conjugation Processes during TNT Metabolism by Axenic Plant RootsEnvironmental Science & Technology, 1998
- Environmental Impact of the Chernobyl Accident: Mutagenesis in Bank Voles from SwedenInternational Journal of Radiation Biology, 1991
- Basic local alignment search toolJournal of Molecular Biology, 1990
- Three-dimensional structure of rabbit liver [Cd7]metallothionein-2a in aqueous solution determined by nuclear magnetic resonanceJournal of Molecular Biology, 1988
- Teratogenic effects of polychlorinated dibenzofurans in combination in miceToxicology and Applied Pharmacology, 1987
- Mutagenic, cytotoxic, and teratogenic effects of 2‐acetylaminofluorene and reactive metabolites in vitroTeratogenesis, Carcinogenesis, and Mutagenesis, 1984
- Studies on the chelation of aluminum for neurobiological applicationJournal of Inorganic Biochemistry, 1981
- Carcinogens are mutagens: A simple test systemMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 1975