Affiliation:
1. Laboratorio de Fisiología de Insectos, Departamento de Ciencias Biológicas, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, C1428EHA Buenos Aires, Argentina
2. Present address: ARL Division of Neurobiology, University of Arizona, PO Box 210077, Tucson, AZ 85721-0077, USA
Abstract
SUMMARY
We analysed dynamic changes in the ommatidial structure of the compound eyes of Triatoma infestans. This nocturnal insect possesses open-rhabdom eyes, in which a ring of six rhabdomeres from retinula cells 1–6 (R1–6) surrounds a central pair of rhabdomeres from retinula cells 7 and 8 (R7–8). Screening pigments are located in all the photoreceptors and in the primary (PPC) and secondary (SPC) pigment cells. During the day, pigments within R1–6 and the PPCs form a small ‘pupil’ above the rhabdom and pigments within R7–8 are clustered around the central rhabdomere, allowing light to reach only the central rhabdomere. At night, the ‘pupil’ widens, and pigments inside R7–8 concentrate in the proximal region of the cells, allowing light to reach the peripheral rhabdomeres. In addition, the distance between the cornea and the rhabdom decreases. These rhythmic changes adapt the sensitivity of the eye by controlling the amount of light reaching and travelling within the rhabdom. Furthermore, the rhythm persists under conditions of constant darkness (DD), i.e. it is controlled by an endogenous oscillator. Remarkably, there are differences in pigment movements between the retinula cells of a single ommatidium. The migration of pigments in R1–6 is regulated by a circadian input, while that in R7–8 is regulated by both direct light and circadian inputs. The rhythm vanishes under constant-light conditions (LL). In this species, the circadian rhythm of photonegative behaviour persists in both DD and LL conditions, suggesting that these two rhythms, in retinal morphology and visual behaviour, may be generated by different circadian oscillators.
Publisher
The Company of Biologists
Subject
Insect Science,Molecular Biology,Animal Science and Zoology,Aquatic Science,Physiology,Ecology, Evolution, Behavior and Systematics
Reference62 articles.
1. Aréchiga, H. and Rodríguez-Sosa, L. (1997). Coupling of environmental and endogenous factors in the control of rhythmic behaviour in decapod crustaceans. J. Mar. Biol. Ass. UK77, 17–29.
2. Aschoff, J. (1960). Exogenous and endogenous components in circadian rhythms. Cold Spring Harb. Symp. Quant. Biol.25, 11–28.
3. Aschoff, J. (1981). Free running and entrained circadian rhythms. In Biological Rhythms, Handbook of Behavioral Neurobiology, vol. IV (ed. J. Aschoff), pp. 81–93. New York: Plenum Press.
4. Autrum, H. (1981). Light and dark adaptation in invertebrates. In Comparative Physiology and Evolution of Vision in Invertebrates C, Invertebrate Visual Centers and Behaviour II, chapter 1 (ed. H. Autrum), pp. 1–91. Berlin: Springer-Verlag.
5. Barlow, R. B., Chamberlain, S. C. and Lehman, H. K. (1989). Circadian rhythms in invertebrate retina. In Facets of Vision, chapter 13 (ed. D. G. Stavenga and D. G. Hardie), pp. 257–280. Berlin, Heidelberg, New York: Springer-Verlag.
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