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Influence of light components on the life attributes of an aphidophagous ladybird Propylea dissecta (Coleoptera: Coccinellidae)

Published online by Cambridge University Press:  09 August 2019

G. Mishra
Affiliation:
Ladybird Research Laboratory, Department of Zoology University of Lucknow, Lucknow 226 007, India
Omkar*
Affiliation:
Ladybird Research Laboratory, Department of Zoology University of Lucknow, Lucknow 226 007, India
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Abstract

The influence of two photoperiods (14L:10D and 24L:0D) and four wavelengths of light [white (control), blue (c. 475 ran), yellow (c. 570 nm) and red (c. 650nm)] on development and reproduction of the ladybird, Propylea dissecta (Mulsant), was investigated. The photoperiod of 14L:10D and the white-light wavelength recorded fastest development, maximum survival and reproduction. The developmental and reproductive Performance decreased in the order white > yellow > blue > red. The effect of the wavelength is probably due to the differential predatory response under different coloured arenas.

Résumé

Résumé

L'influence de deux photopériodes (14 h de lumière:10h d'obscurité et 24 h d'obscurité) et de quatre types de lumière: blanc (témoin), bleu (±475nm), jaune (±570nm) et rouge (±650nm) sur le développement et la reproduction de la coccinelle Propylea dissecta (Mulsant) a été étudiée. La photopériode de 14 h de lumière:10h d'obscurité et la lumière blanche ont permis un meilleur développement, des taux maxima de survie et de reproduction. Les performances de survie et de reproduction induites par la lumière diminuent dans l'ordre suivant blanc > jaune > bleu > rouge. L'effet de la longueur d'onde lumineuse résulte probablement de différences du comportement de prédation induites par les différentes couleurs.

Type
Research Article
Copyright
Copyright © ICIPE 2005

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References

Aarseth, K. A. and Schräm, T. A. (1999) Wavelength specific behaviour in Lepeophtheirus salmonis and Calanus finmarchkus (Crustacea: Copepoda) to ultraviolet and visiblc light in laboratory experiments. Marine Ecology 186, 211217.CrossRefGoogle Scholar
Ceryngier, P., Kindlmann, R., Havelka, J., Dostalkova, I., Brunhofer, V. and Hodek, I. (1992) Effect of food parasitisation photoperiod and tcmperature on gonads and sexual activities of males of Coccinella septempunctata (Coleoptera: Coccinellidae) in autumn. Acta Entomologia Bohemoslovaca 89, 97106.Google Scholar
Chocorosqui, V. R. and Panizzi, A. R. (2003) Photoperiod influence on the biology and phenological characteristics of Dichelops melacanthus (Dallas 1851) (Heteroptera: Pentatomidae). Brazilian Journal of Biology, 63, 655664.Google Scholar
Danks, H. V. (1987) Insect dormancy: an ecological perspective. In Biological Survey of Canada (terrestrial arthropods). National Museum of Natural Sciences, Ottawa. 439 pp.Google Scholar
Dimetry, N. Z. (1988) Orientation to light by the ladybird beetle, pp. 135140. In Ecology and Effcctiveness of Aphidophaga (Edited by Niemcyzk E. and Dixon A. F. G). SPB Acad. Publ., The Hague.Google Scholar
Dixon, A. F. G. (2000) Ladybird beetles and biological control. In Insect Predator-Prey Dynamics. Cambridge University Press, 257 pp.Google Scholar
Edery, I. (2000) Circadian rhythms in a nutshell. Physiological Genomics 3, 5974.Google Scholar
Ferran, A. and Larroque, M. M. (1977) Etüde des relations höte-predateur: La consommation et l’utilisation d’un puceron Myzus persicae Sulz, par les différents stades larvaires de la coccinelle Semiadalia undecimnotnta Sehn. (Col. Coccinellidae). Annales de Zoologie et Ecologie Animalc 9, 665691.Google Scholar
Giebultowicz, J. M. (1999) Insect circadian clocks: is it all in their head? Journal of Insect Physiology 45, 791800.Google Scholar
Harmon, J., Losey, J. E. and Ives, A. R. (1998) The roleof vision and colour in the close proximity foraging behaviour of four coccinellid species. Occologia 115, 287292.CrossRefGoogle Scholar
Hodek, I. and Honek, A. (1996) Ecology of Coccinellidae. Kluwer Academic Publishers, Dordrecht Boston London. 464 pp.CrossRefGoogle Scholar
Hodek, I. and Ruzicka, Z. (1979) Photoperiodic response in relation to diapause in Coccinella septempunctata (Coleoptera). Acta Entomologia Bohemoslovaca 76, 209218.Google Scholar
Ishida, H., Murai, T., Sonoda, S., Yoshida, H., Izumi, Y. and Tsumuki, H. (2003) Effects of temperature and photoperiod on development and oviposition of Frankliniella occidentalis (Pergande) (Thysanoptera: Thripidae). Applied Entomology and Zoology 38, 6568.CrossRefGoogle Scholar
Kurahashi, H. and Shudo, C. (2003) Photoperiodically induced delayed oogenesis in the blow fly Aldrkhina grahami (Diptera: Calliphoridae). Medical Entomology and Zoology 54, 275281.CrossRefGoogle Scholar
Macedo, L. P. M., Souza, B., Carvalho, C. F. and Ecole, C. C. (2003) Influence of the photoperiod on development and reproduetion of Chrysoperla externa (Hagen) (Neuroptera: Chrysopidae). Neotropical Entomology 32, 9196.Google Scholar
Miklosi, A., Gonda, Z., Osorio, D. and Farzin, A. (2002) The effects of the visual environment on responses to colour by domestic chicks. Journal of Comparative Physiology A. Sensory, Neural and Behavioural Physiology 188, 135140.CrossRefGoogle Scholar
Mills, N. J. (1982) Voracity cannibalism and coccinellid predation. Annals of Applied Biology 101, 144148.Google Scholar
Nakamura, K. (2003) Effect of photoperiod on development and growth in a pentatomid bug Dolycoris baccanim. Entomological Science 6, 1116.Google Scholar
Nakamura, K. and Numata, H. (2000) Photoperiodic control of the intensity of diapause and diapause development in the bean bug Riplortus clavatus (Heteroptera: Alydidae). European Journal of Entomology 97, 1923.CrossRefGoogle Scholar
Niijima, K. and Kawashita, T. (1982) Studies on the ovarian development in Coccinella septempunctata bruckii Mulsant. Bulletin ofthe Faculty of Agriculture, Tamagawa University 22, 713.Google Scholar
Niva, C. C. and Takeda, M. (2003) Effects of photoperiod temperature and melatonin on nymphal development, polyphenism and reproduetion in Halyomorpha halys (Heteroptera: Pentatomidae). Zoological Science 20, 963970.CrossRefGoogle Scholar
Omkar, and Pervez, A. (2000) Sexual dimorphism in Propylea dissecta (Mulsant) (Coleoptera: Coccinellidae). Journal of Aphidology 14, 139140.Google Scholar
Omkar, Mishra G. and Singh, K. (2004a) Effect of different wavelengths of light on the life attributes of two aphidophagous ladybirds. European Journal of Entomology (in press).Google Scholar
Phillips, C. J. C. and Lomas, C. A. (2001) The pereeption of color by cattle and its influence on behavior. Journal of Dairy Science 84, 807813.Google Scholar
Plautz, J. D., Kaneko, M., Hall, J. C. and Kay, S. A. (1997) Independent photoreeeptive circadian clocks throughout Drosophila. Science 278, 16321635.Google Scholar
Prayitno, D. S., Phillips, C. J. C. and Stokes, D. K. (1997) The effects of color and intensity of light on behavior and leg disorders in broiler chickens. Poultry Science 76, 16741681.CrossRefGoogle Scholar
Shpigel, M., McBride, S. C., Marciano, S. and Lupatsch, I. (2004) The effect of photoperiod and temperature on the reproduetion of European sea urchin Paracentrotus lividus. Aquaculture 232, 343355.Google Scholar
Silveira, L. C. P. and Bueno, V. H. P. (2003) Orius insidiosus (Say, 1832) (Heteroptera: Anthocoridae): Sensitivity to diapause-inducting photoperiods? Revista Brasileira de Entomologia 47, 631635.CrossRefGoogle Scholar
Taniguchi, N. and Tomioka, K. (2003) Duration of development and number of nymphal instars are differentially regulated by photoperiod in the cricket Modicogryllus siamensis (Orthoptera: Gryllidae). European Journal of Entomology 100, 275281.CrossRefGoogle Scholar
Tauber, M. J., Tauber, C. A. and Masaki, S. (1986) Seasonal Adaptation of Insects. Oxford University Press, Oxford. 411 pp.Google Scholar
Tokumaru, S. and Abe, Y. (2003) Effects of temperature and photoperiod on development and reproduetive potential of Liriomyza sativae, L. trifolii and L. bryoniae (Diptera: Agromyzidae). Japanese Journal of Applied Entomology and Zoology 47, 143152.Google Scholar
Torres, J., Hermoso, de Mendoza A. and Jacas, J. (2002) Influence of temperature and photoperiod on development of Asymmetrasca decedens (Paoli) (Homoptera: Cicadellidae). Boletin de Sanidad Vegetal, Piagas 28, 263272.Google Scholar
Urbaneja, A., Llácer, E., Garrido, A. and Jacas, J. A. (2001) Effect of variable photoperiod on development and survival of Cirrospilus sp. nr. Lynchus (Hymenoptera: Eulophidae) an ectoparasitoid of Phyllocnistis citrella (Lepidoptera: Gracillariidae). Florida Entomologist 84, 305307.Google Scholar