Literature DB >> 19538551

15S-lipoxygenase metabolism in the marine diatom Pseudo-nitzschia delicatissima.

Giuliana D'Ippolito1, Nadia Lamari1, Marina Montresor2, Giovanna Romano3, Adele Cutignano1, Andrea Gerecht3, Guido Cimino1, Angelo Fontana1.   

Abstract

In recent years, oxylipins (lipoxygenase-derived oxygenated fatty acid products) have been reported in several bloom-forming marine diatoms. Despite increasing attention on the ecophysiological role of these molecules in marine environments, their biosynthesis is largely unknown in these microalgae. Biochemical methods, including tandem mass spectrometry, nuclear magnetic resonance and radioactive probes were used to identify structures, enzymatic activities and growth-dependent modulation of oxylipin biosynthesis in the pennate diatom Pseudo-nitzschia delicatissima. Three major compounds, 15S-hydroxy-(5Z,8Z,11Z,13E,17Z)-eicosapentaenoic acid (15S-HEPE), 15-oxo-5Z,9E,11E,13E-pentadecatetraenoic acid and 13,14-threo-13R-hydroxy-14S,15S-trans-epoxyeicosa-5Z,8Z,11Z,17Z-tetraenoic acid (13,14-HEpETE), were produced by three putative biochemical pathways triggered by eicosapentaenoic acid-dependent 15S lipoxygenase. Oxylipin production increases along the growth curve, with remarkable changes that precede the demise of the culture. At least one of the compounds, namely 15-oxoacid, is formed only in the stationary phase immediately before the collapse of the culture. Synthesis and regulation of phyco-oxylipins seem to correspond to a signaling mechanism that governs adaptation of diatoms along the growth curve until bloom termination. Factors triggering the process are unknown but synthesis of 15-oxoacid, constrained within a time-window of a few days just before the collapse of the culture, implies the involvement of a physiological control not directly dependent on distress or death of diatom cells.

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Year:  2009        PMID: 19538551     DOI: 10.1111/j.1469-8137.2009.02887.x

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  25 in total

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Review 4.  The relevance of marine chemical ecology to plankton and ecosystem function: an emerging field.

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5.  Molecular evidence of the toxic effects of diatom diets on gene expression patterns in copepods.

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Review 6.  Mass spectrometry-based metabolomics to elucidate functions in marine organisms and ecosystems.

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Review 7.  Low-Molecular-Weight Metabolites from Diatoms: Structures, Biological Roles and Biosynthesis.

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8.  Determination of Lipid Hydroperoxides in Marine Diatoms by the FOX2 Assay.

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9.  Glutathione S-Transferase (GST) Gene Diversity in the Crustacean Calanus finmarchicus--Contributors to Cellular Detoxification.

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10.  Specificity of lipoxygenase pathways supports species delineation in the marine diatom genus Pseudo-nitzschia.

Authors:  Nadia Lamari; Maria Valeria Ruggiero; Giuliana d'Ippolito; Wiebe H C F Kooistra; Angelo Fontana; Marina Montresor
Journal:  PLoS One       Date:  2013-08-27       Impact factor: 3.240

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