Toxins from harmful algal blooms: How copper and iron render chalkophore a predictor of microcystin production

Publication date

2023-10-01

Authors

Li, Boling
Zhang, Xiaokai
Wu, Gongjie
Qin, Boqiang
Tefsen, BorisORCID 0000-0001-6668-217XISNI 0000000393653141
Wells, Mona

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Research on harmful algal blooms has focused on macronutrients, yet recent research increasingly indicates that understanding micronutrient roles is also important in the development of effective environmental management interventions. Here, we report results on metallophore production from mesocosms amended with copper and iron (enzymatic co-factors in photosynthetic electron transport) to probe questions of how cyanobacteria navigate the divide between copper nutrition, copper toxicity, and issues with iron bioavailability. These experiments utilized Microcystis, Chlorella and Desmodesmus spp., in mono- and mixed-cultures in lake water from a large, hypereutrophic lake (Taihu, China). To initiate experiments, copper and iron amendments were added to mesocosms containing algae that had been acclimated to achieve a state of copper and iron limitation. Mesocosms were analyzed over time for a range of analytes including algal growth parameters, algal assemblage progression, copper/iron concentrations and biomolecule production of chalkophore, siderophore and total microcystins. Community Trajectory Analysis and other multivariate methods were used for analysis resulting in our findings: 1) Microcystis spp. manage copper/iron requirements though a dynamically phased behavior of chalkophore/siderophore production according to their copper and iron limitation status (chalkophore correlates with Cu concentration, R2 = 0.99, and siderophore correlates with the sum of Cu and Fe concentrations, R2 = 0.98). 2) A strong correlation was observed between the production of chalkophore and the cyanobacterial toxin microcystin (R2 = 0.76)-Chalkophore is a predictor of microcystin production. 3) Based on our results and literature, we posit that Microcystis spp. produces microcystin in response to copper/iron availability to manage photosystem productivity and effect an energy-saving status. Results from this work underscore the importance of micronutrients in influencing harmful algal bloom progression and represents a major advance in understanding the ecological function for the cyanobacterial toxin microcystin as a hallmark of micronutrient limitation stress.

Keywords

Harmful Algal Bloom, Copper/analysis, Microcystins/analysis, Iron/analysis, Siderophores/analysis, Chlorella, Microcystis, Lakes/microbiology, Micronutrients/analysis

Citation

Li, B, Zhang, X, Wu, G, Qin, B, Tefsen, B & Wells, M 2023, 'Toxins from harmful algal blooms : How copper and iron render chalkophore a predictor of microcystin production', Water Research, vol. 244, 120490. https://doi.org/10.1016/j.watres.2023.120490