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Published on: March 24, 2023
Combined methods elucidate the multi-organ toxicity of cylindrospermopsin (CYN) on Daphnia magna
Zhongshi He1, Youxin Chen2, Da Huo2
1CAS Key Laboratory of Algal Biology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China; College of Advanced Agricultural Sciences, University of Chinese Academy of Sciences, Beijing, 100049, China.
Abstract:
Global water bodies are now at risk from inevitable cyanobacterial blooms and their production of multiple cyanotoxins, in particular cylindrospermopsin (CYN). However, research on the CYN toxicity and its molecular mechanisms is still limited, whilst the responses of aquatic species against CYN are uncovered. By integrating behavioral observations, chemical detections and transcriptome analysis, this study demonstrated that CYN exerted multi-organ toxicity to model species, Daphnia magna. The present study confirmed that CYN could cause protein inhibition by undermining total protein contents, and altered the gene expression related to proteolysis. Meantime, CYN induced oxidative stress by increasing reactive oxygen species (ROS) level, decreasing the glutathione (GSH) concentration, and interfered with protoheme formation process molecularly. Neurotoxicity led by CYN was solidly determined by abnormal swimming patterns, reduced acetylcholinesterase (AChE), and downward expression of muscarinic acetylcholine receptor (CHRM). Importantly, for the first time, this research determined CYN directly interfered with energy metabolism in cladocerans. CYN distinctively reduced filtration and ingestion rate by targeting on heart and thoracic limbs, which declined the energy intake, and could be further displayed by the reduction of motional strength and the trypsin concentration. These phenotypic alterations were supported by transcriptomic profile, including the down-regulation of oxidative phosphorylation and ATP synthesis. Moreover, CYN was speculated to trigger the self-defense responses of D. magna, known as "abandon-ship" by moderating lipid metabolism and distribution. This study, overall, comprehensively demonstrated the CYN toxicity and the responses of D. magna against it, which is of great significance to the advancements of CYN toxicity knowledge.
Insights
Cylindrospermopsin (CYN) causes multi-organ toxicity in Daphnia magna, affecting protein levels, oxidative stress, and neurotoxicity. This study reveals CYN
Area of Science:
- Environmental Toxicology
- Aquatic Ecotoxicology
- Molecular Biology
Background:
- Cyanobacterial blooms are increasing globally, posing risks through cyanotoxins like cylindrospermopsin (CYN).
- Limited research exists on CYN's toxicity mechanisms and aquatic organism responses.
- Understanding CYN effects on non-target aquatic species is crucial for risk assessment.
Purpose of the Study:
- To investigate the multi-organ toxicity of CYN in the model aquatic species, Daphnia magna.
- To elucidate the molecular mechanisms underlying CYN toxicity.
- To characterize the physiological and behavioral responses of Daphnia magna to CYN exposure.
Main Methods:
- Integrated behavioral observations, chemical detections, and transcriptome analysis.
- Quantified protein content, reactive oxygen species (ROS), and glutathione (GSH) levels.
- Assessed acetylcholinesterase (AChE) activity and gene expression related to neurotoxicity and energy metabolism.
Main Results:
- CYN induced multi-organ toxicity, including protein inhibition, oxidative stress, and neurotoxicity (altered swimming, reduced AChE).
- CYN directly interfered with energy metabolism by reducing filtration/ingestion rates and down-regulating oxidative phosphorylation and ATP synthesis.
- Daphnia magna exhibited a potential 'abandon-ship' self-defense response involving lipid metabolism modulation.
Conclusions:
- CYN exerts significant multi-organ toxicity in Daphnia magna, impacting crucial physiological processes.
- This study provides novel insights into the molecular mechanisms of CYN toxicity and aquatic organism defense.
- Findings are significant for advancing knowledge on cyanotoxin risks in aquatic ecosystems.

