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Mixed light imaging system for recording bioluminescence behaviours

Published online by Cambridge University Press:  11 May 2009

Edith A. Widder
Affiliation:
Harbor Branch Oceanographic Institution, 5600 Old Dixie Highway, Fort Pierce, Florida 34946, USA

Extract

Video recordings of bioluminescence have depended on the use of image-intensified systems, which generally suffer from poor resolution and image persistence. These characteristics, coupled with the restriction that any illumination must be dimmer than the bioluminescence, have complicated efforts to record behaviours associated with bioluminescent displays. The Mixed Light Imaging System (Mlis), described here, uses (1) an intensified video camera, (2) an infra-red (IR) sensitive video camera (3) a dichroic beam splitter, (4) strobed IR illumination and (5) a video mixer to record stop-action images of organisms superimposed on intensified images of their bioluminescence. With the MLIS, behaviours associated with bioluminescent emissions, including rapid escape responses, were recorded from the mesopelagic copepods Euaugaptilus magnus and Gaussia princeps.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1992

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References

Alcaraz, M. & Strickler, J.R., 1988. Locomotion in copepods: pattern of movements and energetics of Cyclops. Hydrobiologia, 167/ 168, 409414.CrossRefGoogle Scholar
Bannister, N.J. & Herring, P.J., 1989. Distribution and structure of luminous cells in four marine copepods. Journal of the Marine Biological Association of the United Kingdom, 69, 523533.CrossRefGoogle Scholar
Barnes, A.T. & Case, J.F., 1972. Bioluminescence in the mesopelagic copepod, Gaussia princeps (T. Scott). Journal of Experimental Marine Biology and Ecology, 8, 5371.Google Scholar
Bowlby, M.R. & Case, J.F., 1991. Ultrastructure and neuronal control of luminous cells in the copepod Gaussia princeps. Biological Bulletin. Marine Biological Laboratory, Woods Hole, 180, 440446.CrossRefGoogle ScholarPubMed
Buck, J. B., 1978. Functions and evolutions of bioluminescence. In Bioluminescence in Action (ed. P.J., Herring), pp. 419460. London: Academic Press.Google Scholar
Buskey, E.J. & Swift, E. 1985. Behavioural responses of oceanic zooplankton to simulated bioluminescence. Biological Bulletin. Marine Biological Laboratory, Woods Hole, 168, 263275.CrossRefGoogle Scholar
David, C.N. & Conover, R.J., 1961. Preliminary investigation on the physiology and ecology of luminescence in the copepod Metridia lucens. Biological Bulletin. Marine Biological Laboratory, Woods Hole, 121, 92107.CrossRefGoogle Scholar
Herring, P.J., 1988. Copepod luminescence. Hydrobiologia, 167/ 168, 183195.CrossRefGoogle Scholar
Inoué, S., 1982. Simultaneous video display of fluorescence and polarized light, or DIC, microscope images in real time. Journal of Cell Biology, 95, 461A.Google Scholar
Inoué, S., 1986. Video Microscopy. New York: Plenum Press.Google Scholar
Morris, M.J., Gust, G. & Torres, J.J., 1985. Propulsion efficiency and cost of transport for copepods: a hydromechanical model of crustacean swimming. Marine Biology, 86, 283295.CrossRefGoogle Scholar
Reynolds, G.T., 1978. Application of photosensitive devices to bioluminescence studies. Photo-chemistry and Photobiology, 27, 405421.CrossRefGoogle Scholar
Strickler, J.R., 1977. Observation of swimming performances of planktonic copepods. Limnology and Oceanography, 22, 165170.CrossRefGoogle Scholar
Vogel, S., 1981. Life in moving fluids. Princeton: The University Press.Google Scholar