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.

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.

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