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Local nutrient regimes determine site-specific environmental triggers of cyanobacterial and microcystin variability in urban lakes

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Abstract. Toxic cyanobacterial blooms in urban lakes present serious health hazards to humans and animals and require effective management strategies. In the management of toxic cyanobacteria blooms, understanding the roles of environmental factors is crucial. To date, a range of environmental factors have been proposed as potential triggers for the spatiotemporal variability of cyanobacterial biomass and microcystins in freshwater systems. However, the environmental triggers of cyanobacteria and microcystin variability remain a subject of debate due to contrasting findings. This issue has raised the question if the environmental triggers are site-specific and unique between water bodies. In this study, we investigated the site-specificity of environmental triggers for cyanobacterial bloom and cyanotoxins dynamics. Our study suggests that cyanobacterial dominance and cyanobacterial microcystin content variability were significantly correlated to phosphorus and iron concentrations. However, the correlations between phosphorus and iron with cyanobacterial biomass and microcystin variability were not consistent between lakes, thus suggesting a site specificity of these environmental factors. The discrepancies in the correlations could be explained by differences in local nutrient concentration and the cyanobacterial community in the systems. The findings of this study suggest that identification of site-specific environmental factors under unique local conditions is an important strategy to enhance positive outcomes in cyanobacterial bloom control measures.
Title: Local nutrient regimes determine site-specific environmental triggers of cyanobacterial and microcystin variability in urban lakes
Description:
Abstract.
Toxic cyanobacterial blooms in urban lakes present serious health hazards to humans and animals and require effective management strategies.
In the management of toxic cyanobacteria blooms, understanding the roles of environmental factors is crucial.
To date, a range of environmental factors have been proposed as potential triggers for the spatiotemporal variability of cyanobacterial biomass and microcystins in freshwater systems.
However, the environmental triggers of cyanobacteria and microcystin variability remain a subject of debate due to contrasting findings.
This issue has raised the question if the environmental triggers are site-specific and unique between water bodies.
In this study, we investigated the site-specificity of environmental triggers for cyanobacterial bloom and cyanotoxins dynamics.
Our study suggests that cyanobacterial dominance and cyanobacterial microcystin content variability were significantly correlated to phosphorus and iron concentrations.
However, the correlations between phosphorus and iron with cyanobacterial biomass and microcystin variability were not consistent between lakes, thus suggesting a site specificity of these environmental factors.
The discrepancies in the correlations could be explained by differences in local nutrient concentration and the cyanobacterial community in the systems.
The findings of this study suggest that identification of site-specific environmental factors under unique local conditions is an important strategy to enhance positive outcomes in cyanobacterial bloom control measures.

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