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1.
Toxicon ; 55(7): 1396-404, 2010 Jun 15.
Article in English | MEDLINE | ID: mdl-20184911

ABSTRACT

Within the last two decades, Prymnesium parvum (golden algae) has rapidly spread into inland waterways across the southern portion of North America and this organism has now appeared in more northerly distributed watersheds. In its wake, golden algae blooms have left an alarming trail of ecological devastation, namely massive fish kills, which are threatening the economic and recreational value of freshwater systems throughout the United States. To further understand the nature of this emerging crisis, our group investigated the chemical nature of the toxin(s) produced by P. parvum. We approached the problem using a two-pronged strategy that included analyzing both laboratory-grown golden algae and field-collected samples of P. parvum. Our results demonstrate that there is a striking difference in the toxin profiles for these two systems. An assemblage of potently ichthyotoxic fatty acids consisting primarily of stearidonic acid was identified in P. parvum cultures. While the concentration of the fatty acids alone was sufficient to account for the rapid-onset ichthyotoxic properties of cultured P. parvum, we also detected a second type of highly labile ichthyotoxic substance(s) in laboratory-grown golden algae that remains uncharacterized. In contrast, the amounts of stearidonic acid and its related congeners present in samples from recent bloom and fish kill sites fell well below the limits necessary to induce acute toxicity in fish. However, a highly labile ichthyotoxic substance, which is similar to the one found in laboratory-grown P. parvum cultures, was also detected. We propose that the uncharacterized labile metabolite produced by P. parvum is responsible for golden algae's devastating fish killing effects. Moreover, we have determined that the biologically-relevant ichthyotoxins produced by P. parvum are not the prymnesins as is widely believed. Our results suggest that further intensive efforts will be required to chemically define P. parvum's ichthyotoxins under natural bloom conditions.


Subject(s)
Chrysophyta/chemistry , Eutrophication , Fishes/physiology , Marine Toxins/toxicity , Alkalies , Animals , Biological Assay , Cell Line, Tumor , Cell Survival/drug effects , Chromatography, High Pressure Liquid , Esterases/chemistry , Fatty Acids/chemistry , Fatty Acids/metabolism , Fatty Acids, Unsaturated/chemistry , Fatty Acids, Unsaturated/metabolism , Humans , Hydrolysis , Spectrometry, Mass, Electrospray Ionization , Spectrophotometry, Ultraviolet
2.
Oecologia ; 143(4): 537-47, 2005 May.
Article in English | MEDLINE | ID: mdl-15791427

ABSTRACT

The role of stoichiometric food quality in influencing genotype coexistence and competitive interactions between clones of the freshwater microcrustacean, Daphnia pulex, was examined in controlled laboratory microcosm experiments. Two genetically distinct clones of D. pulex, which show variation in their ribosomal rDNA structure, as well as differences in a number of previously characterized growth-rate-related features (i.e., life-history features), were allowed to compete in two different arenas: (1) batch cultures differing in algal food quality (i.e., high vs. low carbon:phosphorus (C:P ratio) in the green alga, Scenedesmus acutus); (2) continuous flow microcosms receiving different light levels (i.e., photosynthetically active radiation) that affected algal C:P ratios. In experiment 1, a clear genotype x environment interaction was determined with clone 1 out-competing clone 2 under high nutrient (i.e., low food C:P) conditions, while the exact opposite pattern was observed under low nutrient (i.e., high C:P) conditions. In experiment 2, clone 1 dominated over clone 2 under high light (higher C:P) conditions, but clonal coexistence was observed under low light (low C:P) conditions. These results indicate that food (nutrient) quality effects (hitherto an often overlooked factor) may play a role in microevolutionary (genotypic) responses to changing stoichiometric conditions in natural populations.


Subject(s)
Animal Nutritional Physiological Phenomena , Competitive Behavior/physiology , Daphnia/physiology , Environment , Genetic Variation , Analysis of Variance , Animals , Carbon/metabolism , Chlorophyta/physiology , Daphnia/genetics , Genotype , Light , Phosphorus/metabolism , Population Dynamics
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