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RESEARCH ARTICLE

Interspecific differences in larval production and dispersal in non-migratory galaxiids: implications for metapopulation structure

Peter E. Jones A B and Gerard P. Closs A
+ Author Affiliations
- Author Affiliations

A Department of Zoology, University of Otago, Dunedin 9016, New Zealand.

B Corresponding author. Email: pelwynjones@hotmail.com

Marine and Freshwater Research 67(10) 1479-1492 https://doi.org/10.1071/MF14309
Submitted: 2 October 2014  Accepted: 29 April 2015   Published: 28 September 2015

Abstract

Metapopulation structure can strongly influence how species respond to extinction threats. Isolated populations are highly vulnerable to extirpation, whereas interconnected populations are generally more resilient to pressures. In fish with sedentary adults, population connectivity can depend on the movements of early life stages. The present study examined how previously identified interspecific differences in life history affect larval production and dispersal in a species-complex of non-migratory galaxiid fish. Consistent with a priori predictions, ‘fast’ life-history species (high size-relative fecundity, early maturation, small egg size) showed high abundance of potential recruits, whereas the larvae of ‘slow’ life-history species (low size-relative fecundity, late maturation, large egg size) were, on average, between six and nine times less abundant. The species with intermediate traits showed moderate larval abundance compared with other species. The small, poorly swimming larvae of a ‘fast’ life-history species dispersed over large spatial scales (up to over 12 km), whereas the larger, better-swimming larvae of a ‘slow’ life-history species showed minimal dispersal (<300 m). These findings suggest that the ‘fast’ life-history species are likely to follow a classic source–sink metapopulation structure, whereas ‘slow’ life-history species are more likely to form isolated population structures. The implications for how these species respond to pressures from invasive salmonids, a principal cause of their decline, are discussed.

Additional keywords: galaxias, larval dispersal, larval recruitment, population dynamics, species complex, stream fish.


References

Allibone, R. M. (1999). Impoundment and introductions: their impacts on native fish of the upper Waipori River, New Zealand. Journal of the Royal Society of New Zealand 29, 291–299.
Impoundment and introductions: their impacts on native fish of the upper Waipori River, New Zealand.Crossref | GoogleScholarGoogle Scholar |

Allibone, R. M., and Townsend, C. R. (1997a). Distribution of four recently discovered galaxiid species in the Taieri River, New Zealand: the role of macrohabitat. Journal of Fish Biology 51, 1235–1246.
Distribution of four recently discovered galaxiid species in the Taieri River, New Zealand: the role of macrohabitat.Crossref | GoogleScholarGoogle Scholar |

Allibone, R. M., and Townsend, C. R. (1997b). Reproductive biology, species status and taxonomic relationships of four recently discovered galaxiid fishes in a New Zealand river. Journal of Fish Biology 51, 1247–1261.
Reproductive biology, species status and taxonomic relationships of four recently discovered galaxiid fishes in a New Zealand river.Crossref | GoogleScholarGoogle Scholar |

Allibone, R. M., David, B. O., Hitchmough, R., Jellyman, D., Ling, N., Ravenscroft, P. J., and Waters, J. (2010). Conservation status of New Zealand freshwater fish, 2009. New Zealand Journal of Marine and Freshwater Research 44, 271–287.
Conservation status of New Zealand freshwater fish, 2009.Crossref | GoogleScholarGoogle Scholar |

Benzie, V. (1968). The life history of Galaxias vulgaris Stokell, with a comparison with G. maculatus attenuatus. New Zealand Journal of Marine and Freshwater Research 2, 628–653.
The life history of Galaxias vulgaris Stokell, with a comparison with G. maculatus attenuatus.Crossref | GoogleScholarGoogle Scholar |

Blaxter, J. H. S. (1986). Development of sense organs and behaviour of teleost fish with special reference to feeding and predator avoidance. Transactions of the American Fisheries Society 115, 98–114.
Development of sense organs and behaviour of teleost fish with special reference to feeding and predator avoidance.Crossref | GoogleScholarGoogle Scholar |

Bond, N. R., and Lake, P. S. (2003). Characterizing fish-habitat associations in streams as the first step in ecological restoration. Austral Ecology 28, 611–621.
Characterizing fish-habitat associations in streams as the first step in ecological restoration.Crossref | GoogleScholarGoogle Scholar |

Cadwallader, P. L. (1976a). Breeding biology of a non-diadromous galaxiid, Galaxias vulgaris Stokell, in a New Zealand river. Journal of Fish Biology 8, 157–177.
Breeding biology of a non-diadromous galaxiid, Galaxias vulgaris Stokell, in a New Zealand river.Crossref | GoogleScholarGoogle Scholar |

Cadwallader, P. L. (1976b). Home range and movements of the common river Galaxias, Galaxias vulgaris Stokell (Pisces: Salmoniformes), in the Glentui River, New Zealand. Australian Journal of Marine and Freshwater Research 27, 23–33.
Home range and movements of the common river Galaxias, Galaxias vulgaris Stokell (Pisces: Salmoniformes), in the Glentui River, New Zealand.Crossref | GoogleScholarGoogle Scholar |

Chambers, R. C., and Trippel, E. A. (1997). ‘Early Life History and Recruitment in Fish Populations.’ (Chapman and Hall: London.)

Closs, G. P., and Lake, P. S. (1996). Drought, differential mortality and the coexistence of a native and an introduced fish species in a south east Australian intermittent stream. Environmental Biology of Fishes 47, 17–26.
Drought, differential mortality and the coexistence of a native and an introduced fish species in a south east Australian intermittent stream.Crossref | GoogleScholarGoogle Scholar |

Copp, G. H., Faulkner, H., Doherty, S., Watkins, M. S., and Majecki, J. (2002). Diel drift behaviour of fish eggs and larvae, in particular barbel, Barbus barbus (L.), in an English chalk stream. Fisheries Management and Ecology 9, 95–103.
Diel drift behaviour of fish eggs and larvae, in particular barbel, Barbus barbus (L.), in an English chalk stream.Crossref | GoogleScholarGoogle Scholar |

Cushing, D. H. (1996). ‘Towards a Science of Recruitment in Fish Populations. Excellence in Ecology Series. (Ecology Institute: Oldendorf, Germany.)

Dexter, T., Bond, N., Hale, R., and Reich, P. (2014). Dispersal and recruitment of fish in an intermittent stream network. Austral Ecology 39, 225–235.
Dispersal and recruitment of fish in an intermittent stream network.Crossref | GoogleScholarGoogle Scholar |

Dias, P. M. (1996). Sources and sinks in population biology. Trends in Ecology & Evolution 11, 326–330.
Sources and sinks in population biology.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC3M7itFCrtQ%3D%3D&md5=3a3d0ec4f73b00c4a7b11cae35c7a26bCAS |

Fahrig, L., and Merriam, G. (1994). Conservation of fragmented populations. Conservation Biology 8, 50–59.
Conservation of fragmented populations.Crossref | GoogleScholarGoogle Scholar |

Fausch, K. D., Torgersen, C. E., Baxter, C. V., and Li, H. W. (2002). Landscapes to riverscapes: bridging the gap between research and conservation of stream fishes. Bioscience 52, 483–498.
Landscapes to riverscapes: bridging the gap between research and conservation of stream fishes.Crossref | GoogleScholarGoogle Scholar |

Fisher, R., Leis, J. M., Clark, D. L., and Wilson, S. K. (2005). Critical swimming speeds of late-stage coral reef fish larvae: variation within species, among species and between locations. Marine Biology 147, 1201–1212.
Critical swimming speeds of late-stage coral reef fish larvae: variation within species, among species and between locations.Crossref | GoogleScholarGoogle Scholar |

Gerking, S. D. (1959). The restricted movement of fish populations. Biological Reviews of the Cambridge Philosophical Society 34, 221–242.
The restricted movement of fish populations.Crossref | GoogleScholarGoogle Scholar |

Glova, G. J., Sagar, P. M., and Näslund, I. (1992). Interaction for food and space between populations of Galaxias vulgaris Stokell and juvenile Salmo trutta L. in a New Zealand stream. Journal of Fish Biology 41, 909–925.
Interaction for food and space between populations of Galaxias vulgaris Stokell and juvenile Salmo trutta L. in a New Zealand stream.Crossref | GoogleScholarGoogle Scholar |

Gordon, N. D., McMohon, T. A., Finlayson, B. L., Gippel, C. J., and Nathan, R. J. (2004). ‘Stream Hydrology: an Introduction for Ecologists’, 2nd edn. (Wiley: Chichester, UK.)

Green, K. (2008). Fragmented distribution of a rock climbing fish, the mountain Galaxias (Galaxias olidus), in the Snowy Mountains. Proceedings of the Linnean Society of New South Wales 129, 175–182.

Hanski, I., and Gilpin, M. (1991). Metapopulation dynamics: brief history and conceptual domain. Biological Journal of the Linnean Society. Linnean Society of London 42, 3–16.
Metapopulation dynamics: brief history and conceptual domain.Crossref | GoogleScholarGoogle Scholar |

Huey, J. A., Schmidt, D. J., Balcombe, S. R., Marshall, J. C., and Hughes, J. M. (2011). High gene flow and metapopulation dynamics detected for three species in a dryland river system. Freshwater Biology 56, 2378–2390.
High gene flow and metapopulation dynamics detected for three species in a dryland river system.Crossref | GoogleScholarGoogle Scholar |

Janáč, M., Šlapanský, L., Valová, Z., and Jurajda, P. (2013). Downstream drift of round goby (Neogobius melanostomus) and tubenose goby (Proterorhinus semilunaris) in their non-native area. Ecology Freshwater Fish 22, 430–438.
Downstream drift of round goby (Neogobius melanostomus) and tubenose goby (Proterorhinus semilunaris) in their non-native area.Crossref | GoogleScholarGoogle Scholar |

Jellyman, P. G., and McIntosh, A. R. (2008). The influence of habitat availability and adult density on non-diadromous galaxiid fry settlement in New Zealand. Journal of Fish Biology 72, 143–156.
The influence of habitat availability and adult density on non-diadromous galaxiid fry settlement in New Zealand.Crossref | GoogleScholarGoogle Scholar |

Jellyman, P. G., and McIntosh, A. R. (2010). Recruitment variation in a stream galaxiid fish: multiple influences on fry dynamics in a heterogeneous environment. Freshwater Biology 55, 1930–1944.
Recruitment variation in a stream galaxiid fish: multiple influences on fry dynamics in a heterogeneous environment.Crossref | GoogleScholarGoogle Scholar |

Jellyman, P. G., Booker, D. J., Crow, S. K., Bonnett, M. L., and Jellyman, D. J. (2013). Does one size fit all? An evaluation of length–weight relationships for New Zealand’s freshwater fish species. New Zealand Journal of Marine and Freshwater Research 47, 450–468.
Does one size fit all? An evaluation of length–weight relationships for New Zealand’s freshwater fish species.Crossref | GoogleScholarGoogle Scholar |

Johnston, T. A., Gaboury, M. N., Janusz, R. A., and Janusz, L. R. (1995). Larval fish drift in the Valley River, Manitoba: influence of abiotic and biotic factors, and relationships with future year-class strengths. Canadian Journal of Fisheries and Aquatic Sciences 52, 2423–2431.
Larval fish drift in the Valley River, Manitoba: influence of abiotic and biotic factors, and relationships with future year-class strengths.Crossref | GoogleScholarGoogle Scholar |

Jones, P. E. (2014). Interspecific life history variation in the Galaxias vulgaris complex: implications for interactions with invasive salmonids. Ph.D. Thesis, University of Otago, New Zealand.

Jones, P. E., and Closs, G. P. (2014). Interspecific differences in early life-history traits in a species complex of stream-resident galaxiids. Ecology of Freshwater Fish , .
Interspecific differences in early life-history traits in a species complex of stream-resident galaxiids.Crossref | GoogleScholarGoogle Scholar |

Jones, P. E., Senior, A., Allibone, R. M., and Closs, G. P. (2014). Life-history variation in a species complex of nonmigratory galaxiids. Ecology of Freshwater Fish , .
Life-history variation in a species complex of nonmigratory galaxiids.Crossref | GoogleScholarGoogle Scholar |

Jones, P. E., and Closs, G. P. (2015). Life history influences the vulnerability of New Zealand galaxiids to invasive salmonids. Freshwater Biology 60, 2127–2141.
Life history influences the vulnerability of New Zealand galaxiids to invasive salmonids.Crossref | GoogleScholarGoogle Scholar |

Koehn, J., and O’Connor, W. G. (1990). ‘Biological Information for Management of Native Freshwater Fish in Victoria.’ (Department of Conservation and Environment, Arthur Rylah Institute for Environmental Research: Melbourne.)

Koizumi, I., and Maekawa, K. (2004). Metapopulation structure of stream‐dwelling Dolly Varden charr inferred from patterns of occurrence in the Sorachi River basin, Hokkaido, Japan. Freshwater Biology 49, 973–981.
Metapopulation structure of stream‐dwelling Dolly Varden charr inferred from patterns of occurrence in the Sorachi River basin, Hokkaido, Japan.Crossref | GoogleScholarGoogle Scholar |

Kopf, S. M., Humphries, P., and Watts, R. J. (2014). Ontogeny of critical and prolonged swimming performance for the larvae of six Australian freshwater fish species. Journal of Fish Biology 84, 1820–1841.
Ontogeny of critical and prolonged swimming performance for the larvae of six Australian freshwater fish species.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC2cjhsVCqtw%3D%3D&md5=0641604b3e0e9ef1d280f3bba0e0d9bdCAS | 24814314PubMed |

Leprieur, F., Hickey, M. A., Arbuckle, C. J., Closs, G. P., Brosse, S., and Townsend, C. R. (2006). Hydrological disturbance benefits a native fish at the expense of an exotic fish. Journal of Applied Ecology 43, 930–939.
Hydrological disturbance benefits a native fish at the expense of an exotic fish.Crossref | GoogleScholarGoogle Scholar |

Levins, R. (1969). Some demographic and genetic consequences of environmental heterogeneity for biological control. Bulletin of the Entomological Society of America 15, 237–240.
Some demographic and genetic consequences of environmental heterogeneity for biological control.Crossref | GoogleScholarGoogle Scholar |

Lintermans, M. (2000). Recolonization by the mountain galaxias Galaxias olidus of a montane stream after the eradication of rainbow trout Oncorhynchus mykiss. Marine and Freshwater Research 51, 799–804.
Recolonization by the mountain galaxias Galaxias olidus of a montane stream after the eradication of rainbow trout Oncorhynchus mykiss.Crossref | GoogleScholarGoogle Scholar |

Lobón-Cerviá, J., and Rincón, P. A. (2004). Environmental determinants of recruitment and their influence on the population dynamics of stream‐living brown trout Salmo trutta. Oikos 105, 641–646.
Environmental determinants of recruitment and their influence on the population dynamics of stream‐living brown trout Salmo trutta.Crossref | GoogleScholarGoogle Scholar |

Mari, L., Casagrandi, R., Bertuzzo, E., Rinaldo, A., and Gatto, M. (2014). Metapopulation persistence and species spread in river networks. Ecology Letters 17, 426–434.
Metapopulation persistence and species spread in river networks.Crossref | GoogleScholarGoogle Scholar | 24460729PubMed |

McDowall, R. M. (2006). Crying wolf, crying foul, or crying shame: alien salmonids and a biodiversity crisis in the southern cool-temperate galaxioid fishes? Reviews in Fish Biology and Fisheries 16, 233–422.
Crying wolf, crying foul, or crying shame: alien salmonids and a biodiversity crisis in the southern cool-temperate galaxioid fishes?Crossref | GoogleScholarGoogle Scholar |

McDowall, R. M. (2010). ‘New Zealand Freshwater fishes: an Historical and Ecological Biogeography.’ (Springer: London.)

McIntosh, A. R. (2000). Habitat- and size-related variations in exotic trout impacts on native galaxiid fishes in New Zealand streams. Canadian Journal of Fisheries and Aquatic Sciences 57, 2140–2151.
Habitat- and size-related variations in exotic trout impacts on native galaxiid fishes in New Zealand streams.Crossref | GoogleScholarGoogle Scholar |

McIntosh, A. R., McHugh, P. A., Dunn, N. R., Goodman, J. M., Howard, S. W., Jellyman, P. G., O’Brien, L. K., Nyström, P., and Woodford, D. J. (2010). The impact of trout on galaxiid fishes in New Zealand. New Zealand Journal of Ecology 34, 195–206.

Miller, T. J., Crowder, L. B., Rice, J. A., and Marschall, E. A. (1988). Larval size and recruitment mechanisms in fishes: toward a conceptual framework. Canadian Journal of Fisheries and Aquatic Sciences 45, 1657–1670.
Larval size and recruitment mechanisms in fishes: toward a conceptual framework.Crossref | GoogleScholarGoogle Scholar |

Moore, S. J., Allibone, R. M., and Townsend, C. R. (1999). Spawning site selection by two galaxiid fishes, Galaxias anomalus and G. depressiceps, in tributaries of the Taieri River, South Island, New Zealand. New Zealand Journal of Marine and Freshwater Research 33, 129–139.
Spawning site selection by two galaxiid fishes, Galaxias anomalus and G. depressiceps, in tributaries of the Taieri River, South Island, New Zealand.Crossref | GoogleScholarGoogle Scholar |

Olin, M., Jutila, J., Lehtonen, H., Vinni, M., Ruuhijärvi, J., Estlander, S., and Rask, M. (2012). Importance of maternal size on the reproductive success of perch, Perca fluviatilis, in small forest lakes: implications for fisheries management. Fisheries Management and Ecology 19, 363–374.
Importance of maternal size on the reproductive success of perch, Perca fluviatilis, in small forest lakes: implications for fisheries management.Crossref | GoogleScholarGoogle Scholar |

Pavlov, D. S. (1994). The downstream migration of young fishes in rivers: mechanisms and distribution. Folia Zoologica 43, 193–208.

Pavlov, D. S., Mikheev, V. N., Lupandin, A. I., and Skorobogatov, M. A. (2008). Ecological and behavioural influences on juvenile fish migrations in regulated rivers: a review of experimental and field studies. Hydrobiologia 609, 125–138.
Ecological and behavioural influences on juvenile fish migrations in regulated rivers: a review of experimental and field studies.Crossref | GoogleScholarGoogle Scholar |

Petty, J. T., and Grossman, G. D. (2004). Restricted movement by mottled sculpin (Pisces: Cottidae) in a southern Appalachian stream. Freshwater Biology 49, 631–645.
Restricted movement by mottled sculpin (Pisces: Cottidae) in a southern Appalachian stream.Crossref | GoogleScholarGoogle Scholar |

Pianka, E. R. (1970). On r- and K- selection. American Naturalist 104, 592–597.
On r- and K- selection.Crossref | GoogleScholarGoogle Scholar |

Pulliam, H. R. (1988). Sources, sinks, and population regulation. American Naturalist 132, 652–661.
Sources, sinks, and population regulation.Crossref | GoogleScholarGoogle Scholar |

Raadik, T. A. (2011). Systematic revision of the mountain galaxias, Galaxias olidus Günther, 1866 species complex (Teleostei: Galaxiidae) in eastern Australia. Ph.D. Thesis, University of Canberra.

Raadik, T. A., Saddlier, S. R., and Koehn, J. D. (1996). Threatened fishes of the world: Galaxias fuscus Mack, 1936 (Galaxiidae). Environmental Biology of Fishes 47, 108.
Threatened fishes of the world: Galaxias fuscus Mack, 1936 (Galaxiidae).Crossref | GoogleScholarGoogle Scholar |

Raadik, T. A., Fairbrother, P. S., and Smith, S. J. (2010). ‘National Recovery Plan for the Barred Galaxias, Galaxias fuscus.’ (Department of Sustainability and Environment: Melbourne.)

Radinger, J., and Wolter, C. (2014). Patterns and predictors of fish dispersal in rivers. Fish and Fisheries 15, 456–473.
Patterns and predictors of fish dispersal in rivers.Crossref | GoogleScholarGoogle Scholar |

Reed, D. H. (2004). Extinction risk in fragmented habitats. Animal Conservation 7, 181–191.
Extinction risk in fragmented habitats.Crossref | GoogleScholarGoogle Scholar |

Reynolds, J. D. (2003). Life histories and extinction risk. In ‘Macroecology’. (Eds T. Blackburn and K. Gaston.) pp. 195–217. (Blackwell Publishing: Oxford, UK.)

Rieman, B. E., and Dunham, J. B. (2000). Metapopulations and salmonids: a synthesis of life history patterns and empirical observations. Ecology Freshwater Fish 9, 51–64.
Metapopulations and salmonids: a synthesis of life history patterns and empirical observations.Crossref | GoogleScholarGoogle Scholar |

Robinson, A. T., Clarkson, R. W., and Forrest, R. E. (1998). Dispersal of larval fishes in a regulated river tributary. Transactions of the American Fisheries Society 127, 772–786.
Dispersal of larval fishes in a regulated river tributary.Crossref | GoogleScholarGoogle Scholar |

Schlosser, I. J. (1998). Fish recruitment, dispersal, and trophic interactions in a heterogeneous lotic environment. Oecologia 113, 260–268.
Fish recruitment, dispersal, and trophic interactions in a heterogeneous lotic environment.Crossref | GoogleScholarGoogle Scholar |

Schludermann, E., Tritthard, M., Humphries, P., and Keckeis, H. (2012). Dispersal and retention of larval fish in a potential nursery habitat of a large temperate river: an experimental study. Canadian Journal of Fisheries and Aquatic Sciences 69, 1302–1315.
Dispersal and retention of larval fish in a potential nursery habitat of a large temperate river: an experimental study.Crossref | GoogleScholarGoogle Scholar |

Southwood, T. (1977). Habitat, the templet for ecological strategies? Journal of Animal Ecology 46, 336–365.
Habitat, the templet for ecological strategies?Crossref | GoogleScholarGoogle Scholar |

Stevens, V. M., Trochet, A., Van Dyck, H., Clobert, J., and Baguette, M. (2012). How is dispersal integrated in life histories: a quantitative analysis using butterflies. Ecology Letters 15, 74–86.
How is dispersal integrated in life histories: a quantitative analysis using butterflies.Crossref | GoogleScholarGoogle Scholar | 22070676PubMed |

Townsend, C. R., and Crowl, T. A. (1991). Fragmented population structure in a native New Zealand fish: an effect of introduced brown trout? Oikos 61, 347–354.
Fragmented population structure in a native New Zealand fish: an effect of introduced brown trout?Crossref | GoogleScholarGoogle Scholar |

Waters, J. M., Rowe, D. L., Burridge, C. P., and Wallis, G. P. (2010). Gene trees versus species trees: reassessing life-history evolution in a freshwater fish radiation. Systematic Biology 59, 504–517.
Gene trees versus species trees: reassessing life-history evolution in a freshwater fish radiation.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXht1Oqtb%2FN&md5=72a0ac83df179fce7353d6503a0505d1CAS | 20603441PubMed |

Winemiller, K. O., and Rose, K. A. (1992). Patterns of life-history diversification in North American fishes: implications for population regulation. Canadian Journal of Fisheries and Aquatic Sciences 49, 2196–2218.
Patterns of life-history diversification in North American fishes: implications for population regulation.Crossref | GoogleScholarGoogle Scholar |

Woodford, D. J., and McIntosh, A. R. (2010). Evidence of source-sink metapopulations in a vulnerable native galaxiid fish driven by introduced trout. Ecological Applications 20, 967–977.
Evidence of source-sink metapopulations in a vulnerable native galaxiid fish driven by introduced trout.Crossref | GoogleScholarGoogle Scholar | 20597283PubMed |

Woodford, D. J., and McIntosh, A. R. (2011). Location of demographic sources affects the distributions of a vulnerable native fish in invaded river networks. Freshwater Biology 56, 311–324.
Location of demographic sources affects the distributions of a vulnerable native fish in invaded river networks.Crossref | GoogleScholarGoogle Scholar |

Woodford, D. J., Cochrane, T. A., McHugh, P. A., and McIntosh, A. R. (2011). Modelling spatial exclusion of a vulnerable native fish by introduced trout in rivers using landscape features: a new tool for conservation management. Aquatic Conservation: Marine and Freshwater Ecosystems 21, 484–493.
Modelling spatial exclusion of a vulnerable native fish by introduced trout in rivers using landscape features: a new tool for conservation management.Crossref | GoogleScholarGoogle Scholar |

Zitek, A., Schmutz, S., Unfer, G., and Ploner, A. (2004). Fish drift in a Danube sidearm-system: I. Site-, inter- and intraspecific patterns. Journal of Fish Biology 65, 1319–1338.
Fish drift in a Danube sidearm-system: I. Site-, inter- and intraspecific patterns.Crossref | GoogleScholarGoogle Scholar |