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Published on: July 24, 2018
Physiological changes and gene expression in the mixotrophic haptophyte, Prymnesium parvum, respond to mixed nitrogen
Fengmiao Li1, Hailong Huang2, Qinfei Zhang3
1National Engineering Research Center of Marine Biotechnology and Engineering Ningbo University, Ningbo, Zhejiang, 315211, PR China; Key Laboratory of Aquacultural Biotechnology, Ningbo University, Ministry of Education, Ningbo, Zhejiang, 315211, PR China; Key Laboratory of Marine Ecosystem Dynamics, Second Institute of Oceanography, Ministry of Natural Resources, Hangzhou, 310012, PR China.
Abstract:
Prymnesium parvum is a toxin-producing haptophyte that adapts to various conditions in aquaculture wastewater, using strategies like allelopathy, toxicity, and predation to survive. However, knowledge about physiological and genetic responses of P. parvum to mixed nitrogen sources in aquaculture wastewater is still limited. Here, we cultured P. parvum in simulated aquaculture wastewater nitrogen composition, and revealed physiological and gene expression responses of P. parvum to mixed nitrogen sources. Under high concentrations mixed nitrogen sources (8.83 × 103 μmol/L), P. parvum shows strong adaptability and competitiveness, predisposing it to harmful algal blooms (HABs) outbreaks. At low concentrations 8.83 × 101 μmol/L), it compensates by consuming other algae and producing toxins for defense. Transcriptomic data indicate that P. parvum upregulates nitrogen-related genes when transitioning from nitrate to mixed nitrogen, and downregulates them with increasing concentrations, significantly impacting glutamate metabolism and potentially enhancing direct ammonia conversion to l-glutamate, bypassing l-glutamine. Metabolic reprogramming in P. parvum may drive cell proliferation and HABs formation, with ecological consequences for aquaculture nitrogen dynamics.
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