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Updated: Sep 10, 2026

Measuring Phosphorus Release in Laboratory Microcosms for Water Quality Assessment
Published on: July 22, 2019
Intracellular phosphorus-pool reorganization and contrasting physiological tolerance in bloom-forming phytoplankton
Xian-Yang Zhang1, Yue-Tao Song1, Kai-Xuan Huang1
1Key Laboratory of Eutrophication and Red Tide Prevention of Guangdong Higher Education Institute, College of Life Science and Technology, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Jinan University, Guangzhou, 510632, China.
Abstract:
Coastal eutrophication can drive phosphate depletion during late-stage blooms, yet relationships between intracellular phosphorus (P) responses and physiological tolerance in bloom-forming phytoplankton remain poorly resolved. We conducted controlled phosphate-depletion experiments with the dinoflagellate Karenia mikimotoi and the diatom Skeletonema marinoi; bloom-associated particulate biomass from a Prorocentrum shikokuense bloom in the East China Sea provided ecological context. Both taxa showed significant decreases in cellular P quota under phosphate-depleted (Low-P) conditions. At the shared day-8 sampling point after dissolved inorganic phosphorus (DIP) depletion in Low-P cultures, NaOH-EDTA-extractable total cellular P was 43.4% lower in K. mikimotoi and 67.9% lower in S. marinoi than in phosphate-replete (High-P) cultures. After prolonged phosphate depletion (day 14), this pool in K. mikimotoi was 56.3% lower under Low-P than under High-P. Pooled solution 31P NMR profiles indicated lower concentration-corrected estimates for the orthophosphate region and the operationally combined pyrophosphate/polyphosphate-related region (Total polyP), together with higher relative contributions of organic P regions under Low-P. K. mikimotoi maintained comparatively stable photochemical efficiency (Fv/Fm) during prolonged Low-P exposure and showed continued changes in extractable P-pool composition, whereas S. marinoi exhibited marked photophysiological decline by day 8. Field samples from two stations differing in ambient DIP contained heterogeneous extractable P spectral regions but did not reproduce the laboratory relative organic-P enrichment. The results show that phosphate depletion contracts and reorganizes extractable intracellular P pools and support an association between P-pool management and species-specific physiological tolerance. This species-level contrast generates a testable hypothesis concerning differences in P-use strategies among bloom-forming functional types.
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