Related Experiment Video
Updated: Mar 9, 2026

Laboratory Protocol for Genetic Gut Content Analyses of Aquatic Macroinvertebrates Using Group-specific rDNA Primers
Published on: October 5, 2017
Harmful effects of Dinophysis to the ciliate Mesodinium rubrum: Implications for prey capture
Luiz L Mafra1, Satoshi Nagai2, Hajime Uchida2
1Centro de Estudos do Mar, Universidade Federal do Paraná, Cx. Postal 61, Pontal do Paraná, Paraná, 83255-976, Brazil.
Abstract:
Toxigenic Dinophysis spp. are obligate mixotrophic dinoflagellates that require a constant supply of prey-Mesodinium rubrum-to achieve long-term growth by means of kleptoplasty. Mesodinium rubrum is, however, a fast moving, jumping ciliate exhibiting an effective escape response from suspensivorous predators. In the present study, a series of laboratory experiments evaluating the motility and survival of M. rubrum in the presence of Dinophysis cells and/or substances contained in their culture medium was designed, in order to assess the mechanisms involved in prey capture by Dinophysis spp. Cell abundance of M. rubrum decreased in the presence of Dinophysis cf. ovum cells producing okadaic acid (OA; up to 7.94±2.67pgcell-1) and smaller amounts of dinophysistoxin-1 (DTX-1) and pectenotoxin-2 (PTX-2). Prey capture was often observed after the ciliate had been attached to adhesive "mucus traps", which only appeared in the presence of Dinophysis cells. Before being attached to the mucus traps, M. rubrum cells reduced significantly their swimming frequency (from ∼41 to 19±3 jumps min-1) after only 4h of initial contact with D. cf. ovum cells. M. rubrum survival was not affected in contact with purified OA, DTX-1 and PTX-2 solutions, but decreased significantly when the ciliate was exposed to cell-free or filtered culture medium from both D. cf. ovum and D. caudata, the latter containing moderate concentrations of free eicosapentaenoic acid and docosahexaenoic acid. The results thus indicate that Dinophysis combines the release of toxic compounds other than shellfish toxins, possibly free PUFAs, and a "mucus trap" to enhance its prey capture success by immobilizing and subsequently arresting M. rubrum cells.
Insights
Toxigenic Dinophysis dinoflagellates use a "mucus trap" and release compounds like PUFAs to immobilize and capture their prey, Mesodinium rubrum, enhancing survival and growth.
Area of Science:
- Marine biology
- Protistology
- Harmful algal blooms
Background:
- Toxigenic Dinophysis spp. are mixotrophic dinoflagellates relying on kleptoplasty for growth.
- Their prey, Mesodinium rubrum, is a motile ciliate with an effective escape response.
- Understanding Dinophysis prey capture mechanisms is crucial for bloom dynamics.
Purpose of the Study:
- To investigate the mechanisms Dinophysis spp. use to capture Mesodinium rubrum.
- To assess the role of toxins and other substances in prey capture.
- To evaluate the impact of Dinophysis on M. rubrum motility and survival.
Main Methods:
- Laboratory experiments exposing M. rubrum to Dinophysis cells and culture media.
- Quantification of okadaic acid (OA), dinophysistoxin-1 (DTX-1), and pectenotoxin-2 (PTX-2).
- Observation of M. rubrum motility, survival, and interaction with "mucus traps".
Main Results:
- M. rubrum abundance decreased in the presence of Dinophysis cf. ovum cells.
- M. rubrum reduced swimming activity and was captured after contact with "mucus traps".
- Survival decreased upon exposure to cell-free/filtered Dinophysis media, not purified toxins, suggesting PUFAs are involved.
Conclusions:
- Dinophysis spp. employ a dual strategy involving "mucus traps" and the release of compounds (potentially PUFAs) to capture M. rubrum.
- This strategy immobilizes and arrests the ciliate prey, aiding kleptoplasty.
- The findings shed light on the ecological interactions driving harmful algal blooms.
Related Concept Videos
Predator-Prey Interactions
Diversity of Protists II

