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Updated: Feb 19, 2026

A Standardized Procedure for Monitoring Harmful Algal Blooms in Chile by Metabarcoding Analysis
Published on: August 26, 2021
Climate extremes intensify global lake eutrophication by increasing the stress resistance of harmful bloom-forming
Chenyu Wang1, Mengmeng Wang2, Mengjiao Xie1
1Key Laboratory of Aquatic Ecosystem Health in the Middle and Lower Reaches of Yangtze River, State Key Laboratory of Water Pollution Control and Green Resource Recycling, School of Environment, Nanjing University, Nanjing, China.
Abstract:
Lake eutrophication is increasingly shaped by climate extremes, but how short-lived events yield persistent blooms remains unclear. Using global satellite records and laboratory and field experiments, here we show that heatwaves and extreme precipitation drive bloom dynamics beyond gradual warming. In harmful bloom-forming algae (HBFA), heatwaves trigger oxidative stress that rapidly induces intracellular polyphosphate and stabilisomes, dense polyphosphate-rich organelles. As intracellular ballast, stabilisomes drive downward migration, enabling access to sediment-derived phosphorus while avoiding thermal stress; CO2 depletion elevates pH and reinforces a thermo-alkaline cascade amplification effect. Extreme precipitation delivers pulsed phosphorus inputs that are stored as intracellular polyphosphate, creating long-lived phosphorus reserves that prime later heatwaves. When precipitation pulses precede heatwaves, stabilisome formation, vertical migration, and bloom expansion are amplified, even in oligotrophic lakes. Compound climate extremes thus convert episodic disturbances into sustained ecological advantages, challenging nutrient-centric models and redefining bloom-risk prediction and management.
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