Eur. J. Entomol. 101 (3): 433-437, 2004 | DOI: 10.14411/eje.2004.062

The roles of insect cocoons in cold conditions

Hugh V. DANKS
Biological Survey of Canada (Terrestrial Arthropods), Canadian Museum of Nature, P.O. Box 3443, Station "D", Ottawa, ON K1P 6P4, Canada; e-mail: hdanks@mus-nature.ca

The cocoons characteristic of the prepupal and pupal stages of many insects vary widely in size, durability, structure, shape and colour, as well as in other features such as orientation and attachment to the substrate. In some species they vary seasonally. Most cocoons provide little direct insulation, although they may reduce the rate at which temperature changes, but many provide the mechanical protection required for overwintering beneath insulating substrates such as soil and snow. The cocoons of some terrestrial species prevent inoculative freezing by isolating the integument from ice crystals on the cocoon surface or its surroundings. In some aquatic species, cocoons appear to limit damage by providing mechanical protection during the freezing of surrounding water. Some cocoons help in the acquisition of solar heat: dark structures are especially effective because dark pigments absorb heat, and surrounding layers trap this heat. Insects are immobilized when it is cold and so cannot move in response to environmental threats, and protective cocoons made for winter tend to be more robust than their summer counterparts. Such cocoons protect against abrasion of the waterproof layer of the cuticle. In some species, robust cocoons or complex structures impede natural enemies. Cocoon silk has anti-bacterial and anti-fungal actions. Other cocoons are more or less waterproof. These and other features withstand simultaneous constraints in addition to cold. Therefore, cocoons enhance survival during cold conditions in many species. However, this conclusion is based on fragmentary evidence, and there has been relatively little explicit examination of the roles of cocoons during winter. Therefore, specific work is required to assess resistance to or enhancement of inoculative freezing, resistance to penetration by natural enemies and water, the roles of particular cocoon silks and silk constituents, and the quantitative contributions of cocoons to winter survival in nature.

Keywords: Cocoons, cold, freezing, silk, ice, heat gain

Received: August 22, 2003; Revised: March 30, 2004; Accepted: April 5, 2004; Published: September 20, 2004  Show citation

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DANKS, H.V. (2004). The roles of insect cocoons in cold conditions. EJE101(3), 433-437. doi: 10.14411/eje.2004.062
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References

  1. Akai H. 1977: Anti-bacterial function of natural silk materials. Int. J. Wild Silkmoth Silk 3: 79-81
  2. Bartell D.P., Sanborn J.R. & Wood K.A. 1976: Insecticide penetration of cocoons containing diapausing and non-diapausing Bathyplectes curculionis, an endoparasite of the alfalfa weevil. Environ. Entomol. 5: 659-661 Go to original source...
  3. Bosch J. & Vicens N. 2002: Body size as an estimator of production costs in a solitary bee. Ecol. Entomol. 27: 129-137 Go to original source...
  4. Canard M. & Vannier G. 1992: Adaptations of preimaginal stages of Nineta pallida (Schneider) to frost and heat (Insecta: Neuroptera: Chrysopidae). In Canard M., Aspoeck H. & Mansell M.W. (eds): Current Research in Neuropterology. Proc. 4th Int. Symp. Neuropt. Sacco Press, Toulouse, pp. 75-85
  5. Craig C.L. 1994: Limits to learning: effects of predator pattern and colour on perception and avoidance-learning by prey. Anim. Behav. 47: 1087-1099 Go to original source...
  6. Craig C.L. 1997: Evolution of arthropod silks. Annu. Rev. Entomol. 42: 231-267 Go to original source...
  7. Craig C.L., Bernard G.D. & Coddington J.A. 1994: Evolutionary shifts in the spectral properties of spider silks. Evolution 48: 287-296 Go to original source...
  8. Craig C.L., Weber R.S. & Bernard G.D. 1996: Evolution of predator-prey systems: spider foraging plasticity in response to the visual ecology of prey. Am. Nat. 147: 205-229 Go to original source...
  9. Danks H.V. 1971: Overwintering of some north temperate and arctic Chironomidae. II. Chironomid biology. Can. Entomol. 103: 1875-1910 Go to original source...
  10. Danks H.V. 1987: Insect Dormancy: An Ecological Perspective. Biological Survey of Canada (Terrestrial Arthropods), Ottawa, 439 pp
  11. Danks H.V. 1991: Winter habitats and ecological adaptations for winter survival. In Lee R.E. Jr. & Denlinger D.L. (eds): Insects at Low Temperature. Chapman & Hall, New York, London, pp. 231-259 Go to original source...
  12. Danks H.V. 2000: Dehydration in dormant insects. J. Insect Physiol. 46: 837-852 Go to original source...
  13. Danks H.V. 2002: Modification of adverse conditions by insects. Oikos 99: 10-24 Go to original source...
  14. Danks H.V. & Jones J.W. 1978: Further observations on winter cocoons in Chironomidae (Diptera). Can. Entomol. 110: 667-669 Go to original source...
  15. Dash A.K., Nayak B.K. & Dash M.C. 1992: The effect of different foodplants on cocoon crop performance in the Indian tasar silkworm Antheraea mylitta Drury (Lepidoptera: Saturniidae). J. Res. Lepid. 31: 127-131 Go to original source...
  16. Doira H., Fujii H., Kawaguchi Y., Banno Y. & Shimada T. 1997: Mutations of Bombyx mori. In Silkworm genome database,http://www.ab.a.u-tokyo.ac.jp/bioresource/shimada/mutants.html Donovan B.J. 1991: Life cycle of Sphecophaga vesparum Curtis (Hymenoptera: Ichneumonidae), a parasitoid of some vespid wasps. N. Z. J. Zool. 18: 181-192 Go to original source...
  17. Fedie R., Z M. & Sehnal F. 2002: The silk of Lepidoptera. J. Insect Biotechnol. Sericol. 71: 1-15
  18. Gardiner B.O.C. 1982: A silkmoth rearer's handbook, 3rd ed. Amateur Entomologist 12. 255 pp
  19. Goto S.G., Tagawa M. & Kimura M.T. 1997: The effect of age, sex and diapause on desiccation tolerance in Drosophila triauraria (Diptera, Drosophilidae). Jpn. J. Entomol. 65: 362-368
  20. Grodhaus G. 1980: Aestivating chironomid larvae associated with vernal pools. In Murray D.A. (ed.): Chironomidae. Ecology, Systematics, Cytology and Physiology. Proc. 7th Int. Symp. on Chironomidae, Dublin 1979. Pergamon Press, Oxford, pp. 315-322 Go to original source...
  21. Gross P. 1993: Insect behavioral and morphological defenses against parasitoids. Annu. Rev. Entomol. 38: 251-273 Go to original source...
  22. Halpern M., Gasith A. & Broza M. 2002: Does the tube of a benthic chironomid larva play a role in protecting its dweller against chemical toxicants? Hydrobiologia 470(1-3): 49-55 Go to original source...
  23. Hieber C.S. 1992: Spider cocoons and their suspension systems as barriers to generalist and specialist predators. Oecologia 91: 530-535 Go to original source...
  24. Hauer F.R. & Stanford J.A. 1982: Bionomics of Dicosmoecus gilvipes (Trichoptera: Limnephilidae) in a large western montane river. Am. Midl. Nat. 108: 81-87 Go to original source...
  25. Ishay J.S., Benshalom-Shimony T., Ben-Shalom A. & Kristianpoller N. 1992: Photovoltaic effects in the oriental hornet Vespa orientalis. J. Insect Physiol. 38: 37-48 Go to original source...
  26. Kevan P.G. 1973: Flowers, insects and pollination ecology in the Canadian high arctic. Polar Rec. 16: 667-674 Go to original source...
  27. Kevan P.G. 1975: Sun-tracking solar furnaces in high arctic flowers: Significance for pollination and insects. Science 189: 723-726 Go to original source...
  28. Kevan P.G. 1989: Thermoregulation in arctic insects and flowers: adaptation and co-adaptation in behaviour, anatomy, and physiology. In Mercer J.B. (ed.): Thermal Physiology. Elsevier Science Publishers B.V. (Biomedical Division), Amsterdam, pp. 747-753
  29. Kevan P.G. 1990: Sexual differences in temperatures of blossoms on a dioecious plant, Salix arctica: significance for life in the arctic. Arct. Alp. Res. 22: 283-289 Go to original source...
  30. Kevan P.G., Jensen T.S. & Shorthouse J.D. 1982: Body temperatures and behavioral thermoregulation of high arctic woolly-bear caterpillars and pupae (Gynaephora rossii, Lymantriidae: Lepidoptera) and the importance of sunshine. Arct. Alp. Res. 14: 125-136 Go to original source...
  31. Kornijow R. 1992: Seasonal migration by larvae of an epiphytic chironomid. Freshwater Biol. 27: 85-89 Go to original source...
  32. Kukal O. 1991: Behavioral and physiological adaptations to cold in a freeze-tolerant arctic insect. In Lee R.E. Jr. & Denlinger D.L. (eds): Insects at Low Temperature. Chapman & Hall, New York, pp. 276-300 Go to original source...
  33. Kurioka A. & Yamazaki M. 2002: Purification and identification of flavonoids from the yellow green cocoon shell (Sasamayu) of the silkworm, Bombyx mori. Biosci. Biotechnol. Biochem. 66: 1396-1399 Go to original source...
  34. Lyon B.E. & Cartar R.V. 1996: Functional significance of the cocoon in two arctic Gynaephora moth species. Proc. R. Soc. Lond. (Ser. B, Biol. Sci.) 263: 1159-1163 Go to original source...
  35. Mello M.L.S. & Garafalo C.A. 1986: Structural dimorphism in the cocoons of a solitary bee, Lithurgus corumbae (Hymenoptera, Megachilidae) and its adaptive significance. Zool. Anz. 217: 195-206
  36. Murase N., Ruike M., Matsunaga N., Hayakawa M., Kaneko Y. & Ono Y. 2001: Spider silk has an ice nucleation activity. Naturwissenschaften 88: 117-118 Go to original source...
  37. Nentwig W. 1987: Ecophysiology of Spiders. Springer-Verlag, New York, 448 pp Go to original source...
  38. Nirmala X., Kodrik D., Z M. & Sehnal F. 2001a: Insect silk contains both a Kunitz-type and a unique Kazal-type proteinase inhibitor. Eur. J. Biochem. 268: 2064-2073 Go to original source...
  39. Nirmala X., Mita K., Vanisree V., Z M. & Sehnal F. 2001b: Identification of four small molecular mass proteins in the silk of Bombyx mori. Insect Mol. Biol. 10: 437-445 Go to original source...
  40. Nowbahari B. & Thibout E. 1990: The cocoon and humidity in the development of Acrolepiopsis assectella (Lepidoptera) pupae: consequences in adults. Physiol. Entomol. 15: 363-368 Go to original source...
  41. Otto C. 1983: Behavioural and physiological adaptations to a variable habitat in two species of case-making caddis larvae using different food. Oikos 41: 188-194 Go to original source...
  42. Peigler R.S. 1993: Wild silks of the world. Am. Entomol. 39: 151-161 Go to original source...
  43. Ring R.A. & Danks H.V. 1994: Desiccation and cryoprotection: overlapping adaptations. CryoLetters 15: 181-190
  44. Rosner S. & Fuehrer E. 1996: Zur Uberwinterungstrategie der kleinen Fichtenblattwespe, Pristiphora abietina Christ. (Hym., Tenthredinidae). J. Appl. Entomol. 120: 225-230 Go to original source...
  45. Roubik D.W. & Michener C.D. 1980: The seasonal cycle and nests of Epicharis zonata, a bee whose cells are below the wet-season water table (Hymenoptera, Anthophoridae). Biotropica 12: 56-60 Go to original source...
  46. Sagne J.C. & Canard M. 1984: Les limites de la resistance au froid et a l'immersion des prenymphes en diapause de Chrysopa perla (L.) (Neuroptera Chrysopidae). Neuroptera Int. 3: 73-78
  47. Sakagami S.F., Tanno K., Tsutsui H. & Honma K. 1985: The role of cocoons in overwintering of the soybean pod borer Leguminivora glycinivorella (Lepidoptera: Tortricidae). J. Kans. Entomol. Soc. 58: 240-247
  48. Sehnal F. & Akai H. 1990: Insect silk glands: their types, development and function, and effects of environmental factors and morphogenetic hormones on them. Int. J. Insect Morphol. Embryol. 19: 79-132 Go to original source...
  49. Seymour J.E. & Jones R.E. 2000: Humidity-terminated diapause in the tropical braconid parasitoid Microplitis demolitor. Ecol. Entomol. 25: 481-485 Go to original source...
  50. Shaw M.R. & Quicke D.L.J. 2000: The biology and early stages of Acampsis alternipes (Nees), with comments on the relationships of the Sigalphinae (Hymenoptera: Braconidae). J. Nat. Hist. 34: 611-628 Go to original source...
  51. Stevens D.J., Hansell M.H., Freel J.A. & Monaghan P. 1999: Developmental trade-offs in caddis flies: Increased investment in larval defence alters adult resource allocation. Proc . R. Soc. Lond. (Ser. B, Biol. Sci.) 266: 1049-1054 Go to original source...
  52. Tagawa J. 1996: Function of the cocoon of the parasitoid wasp, Cotesia glomerata L. (Hymenoptera: Braconidae): protection against desiccation. Appl. Entomol. Zool. 31: 99-103 Go to original source...
  53. Tsujimoto K., Takagi H., Takahashi M., Yamada H. & Nakamori S. 2001: Cryoprotective effect of the serine-rich repetitive sequence in silk protein sericin. J. Biochem. 129: 979-986 Go to original source...
  54. Vollrath F. & Knight D.P. 2001: Liquid crystalline spinning of spider silk. Nature 410: 541-548 Go to original source...
  55. Williams C.M., Adkisson P.L. & Walcott P. 1965: Physiology of insect diapause. XV. The transmission of photoperiod signals to the brain of the oak silkworm, Antheraea pernyi. Biol. Bull. Mar. Biol. Lab. Woods Hole 128: 497-507 Go to original source...
  56. Zamora-Munoz C. & Svensson B.W. 1996: Survival of caddis larvae in relation to their case material in a group of temporary and permanent pool. Freshwater Biol. 36: 23-31 Go to original source...

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