Have a personal or library account? Click to login
Does salinity affect body proportions and “size/mass” ratios of highly halotolerant Baeotendipes noctivagus larvae (Diptera, Chironomidae)? Cover

Does salinity affect body proportions and “size/mass” ratios of highly halotolerant Baeotendipes noctivagus larvae (Diptera, Chironomidae)?

Open Access
|Dec 2019

References

  1. Anufriieva, E., Hołyńska, M. & Shadrin, N. (2014). Current invasions of Asian Cyclopid species (Copepoda: Cyclopidae) in Crimea, with taxonomical and zoogeographical remarks on the hypersaline and freshwater fauna. Ann. Zool. 64(1): 109–130.
  2. Anufriieva, E. & Shadrin, N. (2014a). Resting stages of crustaceans in the Crimean hypersaline lakes (Ukraine) and their ecological role. Acta Geol. Sin. 88: 46–49.
  3. Anufriieva, E.V., & Shadrin, N.V. (2014b). Factors determining the average body size of geographically separated Arctodiaptomus salinus (Daday, 1885) populations. Zoological Research 35(2): 132–141.
  4. Anufriieva, E.V. & Shadrin, N.V. (2015). Morphometric variability of Arctodiaptomus salinus (Copepoda) in the Mediterranean-Black Sea region. Zoological Research 36(6): 328–336.
  5. Anufriieva, E.V., Vdodovich, I.V. & Shadrin, N.V. (2018). First data on predation of Eucypris mareotica (Crustacea, Ostracoda) in hypersaline waters. Food Webs 16: e00090.
  6. Armitage, P.D., Pinder, L.C. & Cranston, P. (1995). The Chironomidae: Biology and ecology of non-biting midges. London: Chapman & Hall.
  7. Balushkina, E.V. (1987). The functional significance of chironomid larvae in inland water bodies. Leningrad: Nauka. (In Russian).
  8. Balushkina, E.V., Golubkov, S.M., Golubkov, M.S., Litvinchuk, L.F. & Shadrin, N.V. (2009). Effect of abiotic and biotic factors on the structural and functional organization of the saline lake ecosystems in Crimea. Zh. Obshchei Biol. 70(6): 504–514. (In Russian).
  9. Belmonte, G., Moscatello, S., Batogova, E.A., Pavlovskaya, T., Shadrin, N.V. et al. (2012). Fauna of hypersaline lakes of the Crimea (Ukraine). Thalassia Salentina 34: 11–24.
  10. Belyakov, V.P., Anufriieva, E.V., Bazhora, A.I. & Shadrin, N.V. (2018). Effect of salinity on chironomid larvae (Diptera, Chironomidae) in hypersaline lakes of Crimea. Biology Bulletin 45(10): 1211–1218.
  11. Biswas, J.K., Rana, S., Bhakta, J.N. & Jana, B.B. (2009). Bioturbation potential of chironomid larvae for the sediment-water phosphorus exchange in simulated pond systems of varied nutrient enrichment. Ecol. Eng. 35: 1444–1453.
  12. Cartier, V., Claret, C., Garnier, R. & Franquet, E. (2011). How salinity affects life cycle of a brackish water species, Chironomus salinarius Kieffer (Diptera: Chironomidae). J. Exp. Mar. Biol. Ecol. 405(1): 93–98.
  13. Donald, G.L. & Paterson, C.G. (1977). Effect of preservation on wet weight biomass of chironomid larvae. Hydrobiologia 53(1): 75–80.
  14. Fonseca, A.L. & Rocha, O. (2004). Laboratory cultures of the native species Chironomus xanthus Rempel, 1939 (Diptera-Chironomidae). Acta Limnologica Brasiliensia 16(2): 153–161.
  15. Goldberg, A.D., Allis, C.D. & Bernstein, E. (2007). Epigenetics: a landscape takes shape. Cell 128: 635–638.
  16. Graham, A.A. & Burns, C.W. (1983). Production and ecology of benthic chironomid larvae (Diptera) in Lake Hayes, New Zealand, a warm-monomictic eutrophic lake. Internationale Revue der gesamten Hydrobiologie und Hydrographie 68(3): 351–377.
  17. Hirvenoja, M. (1973). Revision der Gattung Cricotopus van der Wulp und ihrer Verwandten (Diptera, Chironomidae). Ann. Zool. Fenn. 10: 1–363.
  18. Huston, M.A. & DeAngelis, D.L. (1987). Size bimodality in monospecific populations: a critical review of potential mechanisms. Am. Nat. 129: 678–707.
  19. Khlebovich, V.V. & Aladin, N.V. (2010). The salinity factor in animal life. Her. Russ. Acad. Sci. 80: 299–304.
  20. Kokkinn, M.J. (1990). Is the rate of embryonic development a predictor of overall development rate in Tanytarsus barbitarsis Freeman (Diptera: Chironomidae)? Australian Journal of Marine and Freshwater Research 41(5): 575–579.
  21. Kravtsova, L.S. (2007). The relationships between the body mass and its linear sizes in larvae of three Chironomidae species (Diptera) from the lake Baikal littoral. Zoologichesky Zhurnal 86(11): 1398–1401. (In Russian).
  22. Maier, K.J., Kosalwat, P. & Knight, A.W. (1990). Culture of Chironomus decorus (Diptera: Chironomidae) and the effect of temperature on its life history. Environ. Entomol. 19(6): 1681–1688.
  23. Makarchenko, E.A. & Makarchenko, M.A. (1999). Chironomidae. Non-biting midges. In S.J. Tsalolikhin (Ed.), Key to Freshwater Invertebrates of Russia and Adjacent Lands. V. 4. Higher Insects. Diptera (pp. 210–295). St. Petersburg: Zoological Institute RAS. (In Russian).
  24. Menzie, C.A. (1981). Production ecology of Cricotopus sylvestris (Fabricius) (Diptera: Chironomidae) in a shallow estuarine cove. Limnol. Oceanogr. 26(3): 467–481.
  25. Miyasaka, H., Genkai-Kato, M., Miyake, Y., Kishi, D., Katano, I. et al. (2008). Relationships between length and weight of freshwater macroinvertebrates in Japan. Limnology 9(1): 75–80.
  26. Muehlbauer, J.D., Collins, S.F., Doyle, M.W. & Tockner, K. (2014). How wide is a stream? Spatial extent of the potential “stream signature” in terrestrial food webs using meta-analysis. Ecology 95(1): 44–55.
  27. Müller, P.H., Neuman, P. & Storm, R. (1979). Tafeln der Mathematischen Statistik. Leipzig: VEB Fachbuchverlag.
  28. Nolte, U. & Hoffmann, T. (1992). Fast life in cold water: Diamesa incallida (Chironomidae). Ecography 15(1): 25–30.
  29. Pankratova, V. (1970). Larvae and pupae of Mosquitoes of the subfamily Orthocladiinae in the fauna of the USSR (Diptera, Chironomidae = Tendipedidae). Leningrad: Nauka. (In Russian).
  30. Pankratova, V. (1983). Larvae and pupae of Mosquitoes of the subfamily Chironominae in the fauna of the USSR (Diptera, Chironomidae = Tendipedidae) Leningrad: Nauka. (In Russian).
  31. Rech, K.C., Guereschi, R.M., Torres, K.H. & Nuñer, A.P.D.O. (2014). Subsidies for production of Chironomus calligraphus larvae (Chironomidae, Diptera) in the laboratory. Invertebr. Reprod. Dev. 58(3): 199–206.
  32. Schütz, S.A. & Füreder, L. (2018). Unexpected patterns of chironomid larval size in an extreme environment: a highly glaciated, alpine stream. Hydrobiologia 820(1): 49–63.
  33. Shadrin, N.V. & Anufriieva, E.V. (2013). Climate change impact on the marine lakes and their Crustaceans: The case of marine hypersaline Lake Bakalskoye (Ukraine). Turk. J. Fish. Aquat. Sc. 13: 603–611.
  34. Shadrin, N.V., Anufriieva, E.V., Belyakov, V.P. & Bazhora, A.I. (2017). Chironomidae larvae in hypersaline waters of the Crimea: diversity, distribution, abundance and production. The European Zoological Journal 84(1): 61–72.
  35. Shadrin, N.V., Anufriieva, E.V., Kipriyanova, L.M., Kolesnikova, E.A., Latushkin, A.A. et al. (2018). The political decision caused the drastic ecosystem shift of the Sivash Bay (the Sea of Azov). Quatern. Int. 475: 4–10.
  36. Shadrin, N.V., Belyakov, V.P., Bazhora, A.I. & Anufriieva, E.V. (2019). The role of salinity as an environmental filtering factor in the determination of the Diptera taxonomic composition in the Crimean waters. Knowl. Manag. Aquat. Ec. 420: 3.
  37. Stoffels, R.J., Karbe, S. & Paterson, R.A. (2003). Length-mass models for some common New Zealand littoral-benthic macroinvertebrates, with a note on within-taxon variability in parameter values among published models. New Zeal. J. Mar. Fresh. Res. 37(2): 449–460.
  38. Swanson, S.M. & Hammer, U.T. (1983). Production of Cricotopus ornatus (Meigen) (Diptera: Chironomidae) in Waldsea Lake, Saskatchewan. Hydrobiologia 105(1): 155–163.
  39. Toderash, I.K. (1984). Functional importance of chironomids in reservoir ecosystems of Moldova. Kishinev (Chisinau): Shtiintsa Publisher. (In Russian).
  40. Waddington, CH. (1940). Organisers & Genes. Cambridge: Cambridge University Press.
  41. Wiederholm, T. (1983). Chironomidae of the Holarctic Region: Keys and diagnoses. Part 1. Larvae. Entomologica Scandinavica 19: 457.
  42. Williams, W.D. (1998). Salinity as a determinant of the structure of biological communities in the salt lakes. Hydrobiologia 381: 191–201.
DOI: https://doi.org/10.2478/ohs-2019-0028 | Journal eISSN: 1897-3191 | Journal ISSN: 1730-413X
Language: English
Page range: 305 - 315
Submitted on: Mar 23, 2019
|
Accepted on: Jun 17, 2019
|
Published on: Dec 10, 2019
Published by: University of Gdańsk
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Nickolai V. Shadrin, Victor P. Belyakov, Alexandra I. Bazhora, Elena V. Anufriieva, published by University of Gdańsk
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.