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Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates

Toxin production in marine microalgae was previously shown to be tightly coupled with cellular stoichiometry. The highest values of cellular toxin are in fact mainly associated with a high carbon to nutrient cellular ratio. In particular, the cellular accumulation of C-rich toxins (i.e., with C:N &g...

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Autores principales: Pinna, Adriano, Pezzolesi, Laura, Pistocchi, Rossella, Vanucci, Silvana, Ciavatta, Stefano, Polimene, Luca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4580455/
https://www.ncbi.nlm.nih.gov/pubmed/26397815
http://dx.doi.org/10.1371/journal.pone.0139046
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author Pinna, Adriano
Pezzolesi, Laura
Pistocchi, Rossella
Vanucci, Silvana
Ciavatta, Stefano
Polimene, Luca
author_facet Pinna, Adriano
Pezzolesi, Laura
Pistocchi, Rossella
Vanucci, Silvana
Ciavatta, Stefano
Polimene, Luca
author_sort Pinna, Adriano
collection PubMed
description Toxin production in marine microalgae was previously shown to be tightly coupled with cellular stoichiometry. The highest values of cellular toxin are in fact mainly associated with a high carbon to nutrient cellular ratio. In particular, the cellular accumulation of C-rich toxins (i.e., with C:N > 6.6) can be stimulated by both N and P deficiency. Dinoflagellates are the main producers of C-rich toxins and may represent a serious threat for human health and the marine ecosystem. As such, the development of a numerical model able to predict how toxin production is stimulated by nutrient supply/deficiency is of primary utility for both scientific and management purposes. In this work we have developed a mechanistic model describing the stoichiometric regulation of C-rich toxins in marine dinoflagellates. To this purpose, a new formulation describing toxin production and fate was embedded in the European Regional Seas Ecosystem Model (ERSEM), here simplified to describe a monospecific batch culture. Toxin production was assumed to be composed by two distinct additive terms; the first is a constant fraction of algal production and is assumed to take place at any physiological conditions. The second term is assumed to be dependent on algal biomass and to be stimulated by internal nutrient deficiency. By using these assumptions, the model reproduced the concentrations and temporal evolution of toxins observed in cultures of Ostreopsis cf. ovata, a benthic/epiphytic dinoflagellate producing C-rich toxins named ovatoxins. The analysis of simulations and their comparison with experimental data provided a conceptual model linking toxin production and nutritional status in this species. The model was also qualitatively validated by using independent literature data, and the results indicate that our formulation can be also used to simulate toxin dynamics in other dinoflagellates. Our model represents an important step towards the simulation and prediction of marine algal toxicity.
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spelling pubmed-45804552015-10-01 Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates Pinna, Adriano Pezzolesi, Laura Pistocchi, Rossella Vanucci, Silvana Ciavatta, Stefano Polimene, Luca PLoS One Research Article Toxin production in marine microalgae was previously shown to be tightly coupled with cellular stoichiometry. The highest values of cellular toxin are in fact mainly associated with a high carbon to nutrient cellular ratio. In particular, the cellular accumulation of C-rich toxins (i.e., with C:N > 6.6) can be stimulated by both N and P deficiency. Dinoflagellates are the main producers of C-rich toxins and may represent a serious threat for human health and the marine ecosystem. As such, the development of a numerical model able to predict how toxin production is stimulated by nutrient supply/deficiency is of primary utility for both scientific and management purposes. In this work we have developed a mechanistic model describing the stoichiometric regulation of C-rich toxins in marine dinoflagellates. To this purpose, a new formulation describing toxin production and fate was embedded in the European Regional Seas Ecosystem Model (ERSEM), here simplified to describe a monospecific batch culture. Toxin production was assumed to be composed by two distinct additive terms; the first is a constant fraction of algal production and is assumed to take place at any physiological conditions. The second term is assumed to be dependent on algal biomass and to be stimulated by internal nutrient deficiency. By using these assumptions, the model reproduced the concentrations and temporal evolution of toxins observed in cultures of Ostreopsis cf. ovata, a benthic/epiphytic dinoflagellate producing C-rich toxins named ovatoxins. The analysis of simulations and their comparison with experimental data provided a conceptual model linking toxin production and nutritional status in this species. The model was also qualitatively validated by using independent literature data, and the results indicate that our formulation can be also used to simulate toxin dynamics in other dinoflagellates. Our model represents an important step towards the simulation and prediction of marine algal toxicity. Public Library of Science 2015-09-23 /pmc/articles/PMC4580455/ /pubmed/26397815 http://dx.doi.org/10.1371/journal.pone.0139046 Text en © 2015 Pinna et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Pinna, Adriano
Pezzolesi, Laura
Pistocchi, Rossella
Vanucci, Silvana
Ciavatta, Stefano
Polimene, Luca
Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title_full Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title_fullStr Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title_full_unstemmed Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title_short Modelling the Stoichiometric Regulation of C-Rich Toxins in Marine Dinoflagellates
title_sort modelling the stoichiometric regulation of c-rich toxins in marine dinoflagellates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4580455/
https://www.ncbi.nlm.nih.gov/pubmed/26397815
http://dx.doi.org/10.1371/journal.pone.0139046
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