Chemical ecology

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Information for Authority record

Name (Hebrew)
אקולוגיה כימית
Name (Latin)
Chemical ecology
Name (Arabic)
علم البيئة الكيميائية
Other forms of name
Chemoecology
See Also From tracing topical name
Ecology
Metabolites
MARC
MARC

Other Identifiers

Wikidata: Q700919
Library of congress: sh 91002611
Sources of Information
  • Work cat.: Metcalf, R.L. Plant kairomones in insect ecology and control, 1992:p. 1 (chemical ecology, defined by its International Society, "is the study of structure, function, and biosynthesis of natural products; their importance at all levels of ecological organization; their evolutionary origin, and their application to social needs.")
  • CAB thes.
  • McGraw-Hill encyc. sci. tech.
  • Semiochemicals:p. 13 (chemical ecology)
  • LC database, May 20, 1991(chemical ecology)
  • Chemoecology : an international journal emphasizing evolutionary approaches to chemical ecology, Mar. 1990.

Wikipedia description:

Chemical ecology is a vast and interdisciplinary field utilizing biochemistry, biology, ecology, and organic chemistry for explaining observed interactions of living things and their environment through chemical compounds (e.g. ecosystem resilience and biodiversity). Early examples of the field trace back to experiments with the same plant genus in different environments, interaction of plants and butterflies, and the behavioral effect of catnip. Chemical ecologists seek to identify the specific molecules (i.e. semiochemicals) that function as signals mediating community or ecosystem processes and to understand the evolution of these signals. The chemicals behind such roles are typically small, readily-diffusible organic molecules that act over various distances that are dependent on the environment (i.e. terrestrial or aquatic) but can also include larger molecules and small peptides. In practice, chemical ecology relies on chromatographic techniques, such as thin-layer chromatography, high performance liquid chromatography, gas chromatography, mass spectrometry (MS), and absolute configuration utilizing nuclear magnetic resonance (NMR) to isolate and identify bioactive metabolites. To identify molecules with the sought-after activity, chemical ecologists often make use of bioassay-guided fractionation. Today, chemical ecologists also incorporate genetic and genomic techniques to understand the biosynthetic and signal transduction pathways underlying chemically mediated interactions.

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