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Early Detection of Cyanobacterial Blooms and Associated Cyanotoxins using Fast Detection Strategy
Published on: February 25, 2021
Field-Scale Suppression of Cyanobacterial Blooms by Cationic Polymer-Modified Local Soil: Selective Inactivation
Ningyan Peng1, Yuanyuan Fang1, Ping Yang1
1Key Laboratory of Watershed Soil and Water Conservation, Technology Innovation Center for Ecological Water Engineering in Poyang Lake, Jiangxi Academy of Water Science and Engineering, Nanchang 330029, China.
Abstract:
Harmful cyanobacterial blooms require control strategies that suppress bloom-forming taxa while limiting effects on non-target primary producers and toxin-related risks. We developed a cationic polyquaternium (P126)-engineered local red-soil composite and evaluated its electrokinetic properties, taxon-dependent photophysiological effects, activity against colonial Microcystis, robustness to water chemistry, short-term Danio rerio responses, and field-scale performance. P126 modification reversed soil surface charge to the range of +20 to +33 mV across a pH range of 6.0-10.0, generating a strong electrostatic contrast with negatively charged cyanobacteria. At 10 mg L-1, the composite suppressed maximum photosystem II quantum yield (Fv/Fm) in Microcystis aeruginosa and Dolichospermum sp., with no statistically detectable effects on the four tested chlorophyte and diatom strains. For Microcystis colonies ≥ 500 μm, 20 mg L-1 of composite achieved >95% MTT-based inhibition within 24 h, versus < 15% for CuSO4. Suppression persisted across the tested pH and nutrient ranges but was attenuated by high humate concentrations. The maximum unfractionated-sample ELISA microcystin-equivalent signal was approximately 25% lower than with CuSO4; however, dissolved and particulate fractions were not resolved. No statistically detectable treatment-related differences in zebrafish hatching or larval length were observed up to 10.5 mg L-1. In a physically isolated sub-lake, composite application preceded a decline of more than three orders of magnitude in algal/cyanobacterial density and an increase in Secchi depth from approximately 0.25 to 1.2 m; Vallisneria natans was planted subsequently. These results provide laboratory evidence and field case-study observations consistent with electrostatically favored, selective bloom suppression, while residual-polymer fate, sediment effects, chronic toxicity, and multi-trophic responses require further evaluation.
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