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Taxonomic and environmental variation of metabolite profiles in marine dinoflagellates of the genus Symbiodinium

  • SUNY Buffalo
  • SUNY College of Environmental Science and Forestry
  • National Oceanic and Atmospheric Administration

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

Microorganisms in terrestrial and marine ecosystems are essential to environmental sustainability. In the marine environment, invertebrates often depend on metabolic cooperation with their endosymbionts. Coral reefs, one of the most important marine ecosystems, are based on the symbiosis between a broad diversity of dinoflagellates of the genus Symbiodinium and a wide phyletic diversity of hosts (i.e., cnidarian, molluscan, poriferan). This diversity is reflected in the ecology and physiology of the symbionts, yet the underlying biochemical mechanisms are still poorly understood. We examined metabolite profiles of four cultured species of Symbiodinium known to form viable symbioses with reef-building corals, S. microadriaticum (cp-type A194), S. minutum (cp-type B184), S. psygmophilum (cp-type B224) and S. trenchii (cp-type D206). Metabolite profiles were shown to differ among Symbiodinium species and were found to be affected by their physiological response to growth in different temperatures and light regimes. A combined Random Forests and Bayesian analysis revealed that the four Symbiodinium species examined primarily differed in their production of sterols and sugars, including a C29 stanol and the two sterols C28Δ5 and C28Δ5,22, as well as differences in metabolite abundances of a hexose and inositol. Inositol levels were also strongly affected by changes in temperature.

Original languageEnglish
Pages (from-to)74-99
Number of pages26
JournalMetabolites
Volume5
Issue number1
DOIs
StatePublished - Feb 16 2015

Keywords

  • Bioinformatics and systems biology
  • Marine dinoflagellates
  • Metabolism and metabolomics
  • Metabolite profiling
  • Phototrophic algae
  • Random Forests analysis
  • Symbiodinium

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