Abstract
Understanding the migratory community dynamics of river networks is important for maintaining lotic system integrity. River animals migrate to their preferred habitats in spatiotemporally heterogeneous river environments. Spring-fed habitats are uniquely characterized by stable temperature and flow regimes, which create suitable spawning habitats for the chum salmon Oncorhynchus keta. O. keta exhibits “run up” to its birthplace for spawning, especially during floods. Because the eggs deposited by this anadromous fish are nutritious and actively consumed by freshwater animals, the location and timing of O. keta spawning events affect the spatiotemporal accumulation of mobile consumers. In this study, we examined changes in temporal population density in spawning O. keta and a mobile consumer (juvenile O. masou masou) in a lowland, spring-fed tributary in northern Japan during a 48.5-mm autumn rainfall event. In both species, population density increased, and then decreased, after the rainfall event. In O. keta, these changes were closely associated with rainfall intensity, whereas in O. masou masou the peak was delayed until 3 days after the rainfall event. A comparison of the gut contents of O. masou masou sampled from a spring-fed tributary and an adjacent non-spring-fed tributary indicated greater consumption of O. keta eggs in the spring-fed tributary. These results suggested that preferential migration of O. keta into spring-fed tributaries for spawning induces subsequent accumulation of juvenile O. masou masou, in turn increasing O. keta egg consumption. These findings improve our understanding of community dynamics during floods in a heterogeneous river network environment.



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Armstrong JB, Schindler DE, Ruff CP, Brooks GT, Bentley KE, Torgersen CE (2013) Diel horizontal migration in streams: Juvenile fish exploit spatial heterogeneity in thermal and trophic resources. Ecology 94:2066–2075
Bailey CJ, Andersson LC, Arbeider M, Bradford K, Moore JW (2019) Salmon egg subsidies and interference competition among stream fishes. Environ Biol Fish 102:915–926
Banks JW (1969) A review of the literature on the upstream migration of adult Salmonids. J Fish Biol 1:85–136
Elosegi A, Díez J, Mutz M (2010) Effects of hydromorphological integrity on biodiversity and functioning of river ecosystems. Hydrobiologia 657:199–215
Geist DR, Hanrahan TP, Arntzen EV, Mc Michael GA, Murray CJ, Chien YJ (2002) Physicochemical characteristics of the hyporheic zone affect redd site selection by chum salmon and fall chinook salmon in the Columbia River. N Am J Fish Manage 22:1077–1085
Kobayashi T (1968) Some observation on the natural spawning ground of chum and pink salmon in Hokkaido. Sci Rep Hokkaido Salmon Hatch 22:7–13 (in Japanese with English abstract)
Koizumi I, Kanazawa Y, Tanaka Y (2013) The fishermen were right: experimental evidence for tributary refuge hypothesis during floods. Zool Sci 30:375–379
Koshino Y, Kudo H, Kaeriyama M (2013) Stable isotope evidence indicates the incorporation into Japanese catchments of marine-derived nutrients transported by spawning Pacific Salmon. Freshw Biol 58:1864–1877
LaMoreaux PE, Tanner JT (2001) Springs and Bottled Waters of the World. Springer-Verlag, Berlin, Germany
Legendre P (2007) One-way anova with permutation test. http://adn.biol.umontreal.ca/~numericalecology/Rcode/. Accessed 5 February 2021
Lusardi RA, Bogan MT, Moyle PB, Dahlgren RA (2016) Environment shapes invertebrate assemblage structure differences between volcanic spring-fed and runoff rivers in northern California. Freshw Sci 35:1010–1022
Makiguchi Y, Liao LY, Konno Y, Nii H, Nakano K, Gwo JC, Onozato H, Huang YS, Ueda H (2009) Site fidelity of and habitat use by the Formosan landlocked salmon (Oncorhynchus masou formosanus) during typhoon season in Chichiawan stream, Taiwan as assessed by nano-tag radio telemetry. Zool Stud 48:460–467
Masuda H, Amaoka K, Araga C, Uyeno T, Yoshino T (1984) The Fishes of the Japanese Archipelago. Tokai University Press, Tokyo, Japan
Mattson RA, Epler JH, Hein MK (1995) Description of benthic communities in Karst, spring-fed streams of northern central Florida. J Kansas Entomol Soc 68:18–41
Milligan PA, Rublee WO, Cornett DD, Johnston RAC (1984) The distribution and abundance of chum salmon (Oncorhynchus keta) in the upper Yukon River basin as determined by a radio-tagging and spaghetti tagging program: 1982–1983. Canadian Technical Report of Fisheries and Aquatic Sciences 1351
Miyazaki Y (2017) Fishes of Shubuto River System, Second Edition. Biodiversity Council of Shiribeshi Region, Hokkaido, Japan. (in Japanese)
Miyazaki Y, Terui A (2016) Difference in habitat use between the two related goby species of Gymnogobius opperiens and Gymnogobius urotaenia: a case study in the Shubuto River System, Hokkaido, Japan. Ichthyol Res 63:317–323
Ogle D, Wheeler P, Dinno A (2020) Package ‘FSA’. https://cran.r-project.org/web/packages/FSA/. Accessed 5 February 2021
R Core Team (2021) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org/. Accessed 5 February 2021
Reiss M, Martin P, Gerecke R, von Fumetti S (2016) Limno-ecological characteristics and distribution patterns of spring habitats and invertebrates from the Lowlands to the Alps. Environ Earth Sci 75:1033
Sakai M, Iwabuchi K, Bauman D (2021) Unique habitat and macroinvertebrate assemblage structures in spring-fed stream: a comparison among clastic lowland tributaries and mainstreams in northern Japan. Community Ecol. https://doi.org/10.1007/s42974-021-00048-5
Sakai M, Natuhara Y, Fukushima K, Naito R, Miyashita H, Kato M, Gomi T (2013) Responses of macroinvertebrate communities to 4 years of deer exclusion in first- and second-order streams. Freshw Sci 32:563–575
Sear DA, Armitage PD, Dawson FH (1999) Groundwater dominated rivers. Hydrol Process 13:255–276
Sun Y, Takemon Y, Yamashiki Y (2020) Freshwater spring indicator taxa of benthic invertebrates. Ecohydrol Hydrobiol 20:622–631
Walton SE, Nunn AD, Probst WN, Bolland JD, Acreman M, Cowx IG (2017) Do fish go with the flow? The effects of periodic and episodic flow pulses on 0+ fish biomass in a constrained lowland river. Ecohydrology 10:1777
Ward JV, Tockner K, Schiemer F (1999) Biodiversity of floodplain river ecosystems: ecotones and connectivity. Regul Rives Res Manage 15:125–139
Zippin C (1956) An evaluation of the removal method of estimating animal populations. Biometrics 12:163–189
Acknowledgements
A portion of this study was supported by JSPS KAKENHI Grant Numbers 26292181 and 19K20491, and Kuromatsunai Biodiversity Conservation Research Grant (2017). Dr. Izumi Washitani provided invaluable comments on earlier drafts of the manuscript. We thank the field assistance by Dr. Kosei Takahashi, Mr. Hitoshi Saito, Kengo Ebihara and Katsuya Iwabuchi. The all fish investigations were conducted with the permission of Hokkaido Prefecture. The authors have no competing interests.
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Sakai, M., Wakiya, R. & Hoshi, G. Flood-induced interspecific interactions in spring-fed tributary as an ecosystem function of heterogeneous river networks. Landscape Ecol Eng 17, 555–561 (2021). https://doi.org/10.1007/s11355-021-00465-8
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DOI: https://doi.org/10.1007/s11355-021-00465-8