Hydrodynamic signal perception in the copepod Acartia tonsa

被引:172
作者
Kiorboe, T
Saiz, E
Visser, A
机构
[1] Danish Inst Fisheries & Marine Res, DK-2920 Charlottenlund, Denmark
[2] CSIC, Inst Ciencies Mar, E-08039 Barcelona, Spain
关键词
predator detection; threshold deformation rate; turbulence;
D O I
10.3354/meps179097
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Copepods may remotely detect predators from the velocity gradients these generate in the ambient water. Each of the different components and characteristics of a velocity gradient (acceleration, vorticity, longitudinal and shear deformation) can cause a velocity difference between the cope pod and the ambient water and may, therefore, be perceived by mechanoreceptory setae. We hypothesised that the threshold value for escape response to a particular component depends solely on the magnitude of the velocity difference (= signal strength) it generates. In experiments we isolated the different components and noted the minimum intensities to which the copepod Acartia tonsa responded. As hypothesised, threshold signal strengths due to longitudinal and shear deformation were similar, similar to 0.015 cm s(-1), and were invariant with developmental stage. The latter implies that the threshold deformation rate for response scales inversely with size, i.e. that large stages respond to lower fluid deformation rates than small stages and, hence, may detect predators at longer distances. Signals due to vorticity and acceleration did not elicit escape responses, even though their magnitude exceeded threshold signal strength due to deformation. We suggest that A. tonsa cannot distinguish such signals from those due to their own behaviour (sinking, swimming, passive reorientation due to gravity) because they cause a similar spatial distributions of the signal across the body. Reinterpretation of data from the literature revealed that threshold signal strength due to deformation varies by ca 2 orders of magnitude between copepods and exceeds the neurophysiological response threshold by more than a factor of 10. In contrast, threshold deformation rates vary much less, similar to 0.5 to 5 s(-1). Model calculations suggest that such threshold deformation rates are just sufficient to allow efficient predator detection while at the same time just below maximum turbulent deformation rates, thus preventing inordinate escapes.
引用
收藏
页码:97 / 111
页数:15
相关论文
共 35 条
[2]   FOOD SIZE SPECTRA, INGESTION AND GROWTH OF THE COPEPOD ACARTIA-TONSA DURING DEVELOPMENT - IMPLICATIONS FOR DETERMINATION OF COPEPOD PRODUCTION [J].
BERGGREEN, U ;
HANSEN, B ;
KIORBOE, T .
MARINE BIOLOGY, 1988, 99 (03) :341-352
[3]   GRAZING IN A TURBULENT ENVIRONMENT - BEHAVIORAL-RESPONSE OF A CALANOID COPEPOD, CENTROPAGES-HAMATUS [J].
COSTELLO, JH ;
STRICKLER, JR ;
MARRASE, C ;
TRAGER, G ;
ZELLER, R ;
FREISE, AJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1990, 87 (05) :1648-1652
[4]  
FIELDS D, 1993, B MAR SCI, V53, P84
[5]  
Fields D. M., 1996, ZOOPLANKTON SENSORY, V1, P323
[6]   The escape behavior of marine copepods in response to a quantifiable fluid mechanical disturbance [J].
Fields, DM ;
Yen, J .
JOURNAL OF PLANKTON RESEARCH, 1997, 19 (09) :1289-1304
[7]   Implications of the feeding current structure of Euchaeta rimana, a carnivorous pelagic copepod, on the spatial orientation of their prey [J].
Fields, DM ;
Yen, J .
JOURNAL OF PLANKTON RESEARCH, 1997, 19 (01) :79-95
[8]  
HAURY L R, 1980, Journal of Plankton Research, V2, P187, DOI 10.1093/plankt/2.3.187
[9]   Detection of infrasonic water oscillations by copepodids of Lepeophtheirus salmonis (Copepoda: Caligida) [J].
Heuch, PA ;
Karlsen, HE .
JOURNAL OF PLANKTON RESEARCH, 1997, 19 (06) :735-747
[10]   PARTICLE TRAJECTORIES IN A ROTATING CYLINDER - IMPLICATIONS FOR AGGREGATION INCUBATIONS [J].
JACKSON, GA .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 1994, 41 (03) :429-437