Abstract
Many Alaskan freshwaters provide important spawning and nursery habitat for salmonid fishes. Pacific salmon are well known for their anadromous and semelparous natural history of rearing in the marine environment and returning to freshwater as adults to spawn once before dying in their natal habitat. Five species of anadromous Pacific salmon, Oncorhynchus nerka (sockeye or red salmon), O. kisutch (coho or silver salmon), O. gorbuscha (pink or humpback salmon), O. keta (chum or dog salmon), and O. tshawytscha (chinook or king salmon) spawn in Alaskan freshwaters. The time juvenile salmon reside in freshwater following emergence from the gravel as fry until smoltification (physiological preparation for migration to saltwater) depends on species and location. Because freshwater residence can range from virtually no time to several years, considerable variation in dependence on the freshwater habitat as a nursery environment exists. The sockeye salmon is the only Pacific salmon to have a juvenile stage that is usually dependent on a lacustrine habitat and a forage base of Zooplankton. Because lakes used for rearing by juvenile salmon are typically olig-otrophic, the productivity of sockeye lakes has been studied as a factor limiting sizes of salmon runs (see Chapter 8; and Burgner et al., 1969; Hyatt and Stockner, 1985; Stockner, 1981, 1987).
Preview
Unable to display preview. Download preview PDF.
Similar content being viewed by others
References
Anderson NH (1976) Carnivory by an aquatic detritivore, Clistoronia magnific (Trichoptera: Limnephilidae). Ecology 57:1081–1085.
Barnaby JT (1944) Fluctuations in abundance of red salmon, Oncorhxnchus nerka, (Walbaum), of the Karluk River, Alaska. Fish Bull 50:237–295.
Brickell DC, Goering JJ (1970) Chemical effects of salmon decomposition on aquatic ecosystems. In Murphy RS (Ed) First international symposium on water pollution control in cold climates. U.S. Government Printing Office. Washington, DC, 125–138.
Brusven MA, Scoggan AC (1969) Sarcophagus habits of Tricopteral larvae on dead fish. Entomol News 80:103–105.
Burgner RL, DiCostanzo CJ, Ellis RJ, et al. (1969) Biological studies and estimates of optimum escapements of sockeye salmon in the major river systems in southwestern Alaska. Fish Bull 67:405–459.
Cederholm CJ, Houston DB, Cole DL, Scarlett WJ (1989) Fate of coho salmon (Oncorhynchus kisutch) carcasses in spawning streams. Can J Fish Aquat Sci 46:1347–1355.
Claire EW, Phillips RW (1968) The stonefly Acroneuria pacifica as a potential predator on salmonid embryos. Trans Am Fish Soc 97:50–52.
Cline JD, Kaplan IR (1975) Isotopic fractionation of dissolved nitrate during denitrification in the eastern tropical North Pacific Ocean. Mar Chem 3:271–299.
Collie JS, Walters CJ (1987) Alternative recruitment models of Adams River sock-eye salmon, Oncorhynchus nerka. Can J Fish Aquat Sci 44:1551–1561.
DeNiro MJ, Epstein S (1981) Influence of diet on the distribution of nitrogen isotopes in animals. Geochim Cosmochim Acta 45:341–353.
Donaldson JR (1967) The phosphorus budget of Iliamna Lake, Alaska, as related to the cyclic abundance of sockeye salmon. Ph.D. thesis, University of Washington, Seattle.
Durbin AG, Nixon SW, Oviatt CA (1979) Effects of the spawning migration of the alewife, Alosa pseudoharengus, on freshwater ecosystems. Ecology 60:8–17.
Eggers DM, Rogers DE (1987) The cycle of runs of sockeye salmon (Oncorhynchus nerka) to the Kvichak River, Bristol Bay: Cyclic dominance or depensatory fishing? In Smith HD, Margolis L, Wood CC (Eds) Sockeye salmon (Oncorhynchus nerka) population and future management. Can Spec Publ Fish Aquat Sci 96:343–366.
Estep MLF, Vigg S (1985) Stable carbon and nitrogen isotope tracers of trophic dynamics in natural populations and fisheries of the Lahontan Lake system, Nevada. Can J Fish Aquat Sci 42:1712–1719.
Foerster RE (1968) The sockeye salmon, Oncorhynchus nerka, Fish Res Board Can Bull 162.
Fritz P, Fontes JC (1980) Introduction. In Fritz P, Fontes JC (Eds) Handbook of Isotope Geochemistry, Vol 1, The Terrestrial Environment, A. Elsevier, Amsterdam, 1–19.
Fry B (1988) Food web structure on Georges Bank from stable C, N, and S isotopic compositions. Limnol Oceanogr 33:1182–1190.
Fry B, Sherr EB (1984) δ13C measurements as indicators of carbon flow in marine and freshwater ecosystems. Contrib Mar Sci 27:13–47.
Gard R, Drucker B, Fagen R (1987) Differentiation of subpopulations of sockeye salmon (Oncorhynchus nerka), Karluk River system, Alaska. In Smith HD, Margolis L, Wood CC (Eds) Sockeye salmon (Oncorhynchus nerka) population and future management. Can Spec Publ Fish Aquat Sci 96:408–418.
Gross MR (1987) Evolution of diadromy in fishes. Am Fish Soc 1:14–25.
Gross MR, Coleman RM, McDowall RM (1988) Aquatic productivity and the evolution of diadromous fish migration. Science 239:1291–1293.
Home AJ, Galat DL (1985) Nitrogen fixation in an oligotrophic, saline desert lake: Pyramid Lake, Nevada. Limnol Oceanogr 30:1229–1239.
Hyatt KD, Stockner JG (1985) Responses of sockeye salmon (Oncorhynchus nerka) to fertilization of British Columbia coastal lakes. Can J Fish Aquat Sci 42: 320–331.
Johnson JH, Ringler NH (1979) The occurrence of blowfly larvae (Diptera: Calliphoridae) on salmon carcasses and their utilization as food by juvenile salmon and trout. Great Lakes Entomol 12:131–140.
Kline TC Jr (1991) The significance of marine-derived biogenic nitrogen in anadromous Pacific salmon freshwater food webs. Ph.D. thesis, University of Alaska Fairbanks.
Kline TC, Goering JJ, Mathisen OA, Poe PH, Parker PL, Scalan RS (1986) δ15N evidence for the transport of marine nitrogen into freshwater Pacific salmon habitats. Eos Trans AGU 67:989–990.
Kline TC Jr, Goering JJ, Mathisen OA, Poe PH, Parker PL (1990) Recycling of elements transported upstream by runs of Pacific salmon: I. δ15N and δ13C evidence in Sashin Creek, southeastern Alaska. Can J Fish Aquat Sci 47: 136–144.
Kline TC Jr, Goering JJ, Mathisen OA, Poe PH, Parker PL, Scalan RS (1993) Recycling of elements transported upstream by runs of Pacific salmon: II. δ15N and δ13C evidence in the Kvichak River watershed, Bristol Bay, southwestern Alaska. Can J Fish Aquat Sci 50:2350–2365.
Koenings JP, Burkett RD (1987a) Population characteristics of sockeye salmon (Oncorhynchus nerka) smolts relative to temperature regimes, euphotic volume, fry density, and forage base within Alaskan lakes. In Smith HD, Margolis L, Wood CC (Eds) Sockeye salmon (Oncorhynchus nerka) population and future management. Can Spec Publ Fish Aquat Sci 96:216–234.
Koenings JP, Burkett RD (1987b) An aquatic Rubic’s cube: Restoration of the Karluk Lake sockeye salmon (Oncorhynchus nerka). In Smith HD, Margolis L, Wood CC (Eds) Sockeye salmon (Oncorhynchus nerka) population and future management. Can Spec Publ Fish Aquat Sci 96:419–434.
Krohkin EM (1967) Influence of the intensity of passage of the sockeye salmon Oncorhynchus nerka (Wald.) on the phosphate content of spawning lakes. Izdanija “Nauka,” 15:26–31 [Trans from Russian (1968) by Fish Res Board Can Trans Ser 1273].
Kyle GB, Koenings JP, Barrett BM (1988) Density-dependent, trophic level responses to an introduced run of sockeye salmon (Oncorhynchus nerka) at Frazer Lake, Kodiak Island, Alaska. Can J Fish Aquat Sci 45:856–867.
Mathisen OA (1972) Biogenic enrichment of sockeye salmon lakes and stock productivity. Verh Int Verein Limnol 18:1089–1095.
Mathisen OA, Parker PL, Goering JJ, Kline TC, Poe PH, Scalan RS (1988) Recycling of marine elements transported into freshwater by anadromous salmon. Verh Int Verein Limnol 23:2249–2258.
Mclntyre JD, Reisenbichler RR, Emlen JM, Wilmot RL, Finn JE (1988) Predation of Karluk River sockeye salmon by coho salmon and char. Fish Bull 86:611–616.
Minagawa M, Wada E (1984) Stepwise enrichment of 15N along food chains: Further evidence and the relation between δ15N and animal age. Geochim Cosmochim Acta 48:1135–1140.
Minshall GW, Hitchcock E, Barnes JR (1991) Decomposition of rainbow trout (Oncorhynchus mykiss) carcasses in a forest stream ecosystem inhabited only by nonanadromous fish populations. Can J Fish Aquat Sci 48:191–195.
Mizutani H, Wada E (1988) Nitrogen and carbon isotope ratios in seabird rookeries and their ecological implications. Ecology 69:340–349.
Owens NJP (1987) Natural variations in 15N in the marine environment. Adv Mar Biol 24:389–451.
Payne JA (1965) A summer carion study of the baby pig Sus scrofa linnaeus. Ecology 46:592–602.
Peterson BJ, Howarth RW (1987) Sulfur, carbon and nitrogen isotopes used to trace organic matter flow in the salt-marsh estuaries of Sapelo Island, Georgia. Limnol Oceanogr 32:1195–1213.
Poe PH (1980) Effects of the 1976 volcanic ash fall on primary productivity in Iliamna Lake, Alaska, 1976-1978. M.S. thesis, University of Washington, Seattle.
Redfield AC, Ketchum BH, Richards FA (1963) The influence of organisms on the composition of sea-water. In Hill MN (Ed) The sea Vol 2. Interscience, New York, 26–77.
Richey JE, Perkins MA, Goldman CR (1975) Effects of kokanee salmon (Oncorhynchus nerka) decomposition on the ecology of a subalpine stream. J Fish Res Board Can 32:817–820.
Schoeninger MJ, DeNiro MJ, Tauber H (1983) Stable nitrogen isotope ratios of bone collagen reflect marine and terrestrial components of prehistoric human diet. Science 220:1381–1383.
Spencer CN, McClelland BR, Stanford JA (1991) Shrimp stocking, salmon collapse and eagle displacement. BioScience 41:11–21.
Stockner JG (1981) Whole-lake fertilization for the enhancement of sockeye salmon (Oncorhynchus nerka) in British Columbia, Canada. Verh Int Verein Limnol 21:293–299.
Stockner JG (1987) Lake fertilization: The enrichment cycle and lake sockeye salmon (Oncorhynchus nerka) production. Can Spec Publ Fish Aquat Sci 96:198–215.
Sugai SF, Burrell DC (1984) Transport of dissolved organic carbon, nutriens, and trace metals from the Wilson and Blossom rivers to Smeaton Bay, southeast Alaska. Can J Fish Aquat Sci 41:180–190.
Wada E, Hattori A (1991) Nitrogen in the sea: Forms, abundances, and rate processes. CRC Press, Boca Raton FL.
Wada E, Mizutani H, Minagawa M (1991) The use of stable isotopes for food web analysis. Crit Rev Food Sci Nutr 30:361–371.
Editor information
Editors and Affiliations
Rights and permissions
Copyright information
© 1997 Springer Science+Business Media New York
About this chapter
Cite this chapter
Kline, T.C., Goering, J.J., Piorkowski, R.J. (1997). The Effect of Salmon Carcasses on Alaskan Freshwaters. In: Milner, A.M., Oswood, M.W. (eds) Freshwaters of Alaska. Ecological Studies, vol 119. Springer, New York, NY. https://doi.org/10.1007/978-1-4612-0677-4_7
Download citation
DOI: https://doi.org/10.1007/978-1-4612-0677-4_7
Publisher Name: Springer, New York, NY
Print ISBN: 978-1-4612-6866-6
Online ISBN: 978-1-4612-0677-4
eBook Packages: Springer Book Archive
Keywords
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.


