Polyethylene microplastics increase the toxicity of chlorpyrifos to the marine copepod Acartia tonsa

2020 ◽  
Vol 260 ◽  
pp. 114059 ◽  
Author(s):  
Juan Bellas ◽  
Irene Gil
Keyword(s):  
2017 ◽  
Vol 607-608 ◽  
pp. 87-94 ◽  
Author(s):  
Kamille Elvstrøm Krause ◽  
Khuong V. Dinh ◽  
Torkel Gissel Nielsen

2020 ◽  
pp. jeb.237297
Author(s):  
Dorsa Elmi ◽  
Donald R. Webster ◽  
David M. Fields

This study quantifies the behavioral response of a marine copepod (Acartia tonsa) to individual, small-scale, dissipative vortices that are ubiquitous in turbulence. Vortex structures were created in the laboratory using a physical model of a Burgers vortex with characteristics corresponding to typical dissipative vortices that copepods are likely to encounter in the turbulent cascade. To examine the directional response of copepods, vortices were generated with the vortex axis aligned in either horizontal or vertical directions. Tomographic particle image velocimetry was used to measure the volumetric velocity field of the vortex. Three-dimensional copepod trajectories were digitally reconstructed and overlaid on the vortex flow field to quantify A. tonsa’s swimming kinematics relative to the velocity field and to provide insight to the copepod behavioral response to hydrodynamic cues. The data show significant changes in swimming kinematics and an increase in relative swimming velocity and hop frequency with increasing vortex strength. Furthermore, in moderate-to-strong vortices, A. tonsa moved at elevated speed in the same direction as the swirling flow and followed spiral trajectories around the vortex, which would retain the copepod within the feature and increase encounter rates with other similarly behaving Acartia. While changes in swimming kinematics depended on vortex intensity, orientation of the vortex axis showed minimal significant effect. Hop and escape jump densities were largest in the vortex core, which is spatially coincident with the peak in vorticity suggesting that vorticity is the hydrodynamic cue that evokes these behaviors.


2021 ◽  
Vol 17 (7) ◽  
pp. 20210071
Author(s):  
James A. deMayo ◽  
Amanda Girod ◽  
Matthew C. Sasaki ◽  
Hans G. Dam

The ocean is undergoing warming and acidification. Thermal tolerance is affected both by evolutionary adaptation and developmental plasticity. Yet, thermal tolerance in animals adapted to simultaneous warming and acidification is unknown. We experimentally evolved the ubiquitous copepod Acartia tonsa to future combined ocean warming and acidification conditions (OWA approx. 22°C, 2000 µatm CO 2 ) and then compared its thermal tolerance relative to ambient conditions (AM approx. 18°C, 400 µatm CO 2 ). The OWA and AM treatments were reciprocally transplanted after 65 generations to assess effects of developmental conditions on thermal tolerance and potential costs of adaptation. Treatments transplanted from OWA to AM conditions were assessed at the F1 and F9 generations following transplant. Adaptation to warming and acidification, paradoxically, reduces both thermal tolerance and phenotypic plasticity. These costs of adaptation to combined warming and acidification may limit future population resilience.


Harmful Algae ◽  
2020 ◽  
Vol 98 ◽  
pp. 101890
Author(s):  
Ali H. Abdulhussain ◽  
Kathryn B. Cook ◽  
Andrew D. Turner ◽  
Adam M. Lewis ◽  
Mohamed A. Elsafi ◽  
...  

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