Show simple item record

Muskellunge Spawning Site Selection in Northern Wisconsin Lakes and a GIS‐Based Predictive Habitat Model

dc.contributor.authorNohner, Joel K.
dc.contributor.authorDiana, James S.
dc.date.accessioned2018-02-05T16:28:28Z
dc.date.available2018-02-05T16:28:28Z
dc.date.issued2015-02
dc.identifier.citationNohner, Joel K.; Diana, James S. (2015). "Muskellunge Spawning Site Selection in Northern Wisconsin Lakes and a GIS‐Based Predictive Habitat Model." North American Journal of Fisheries Management 35(1): 141-157.
dc.identifier.issn0275-5947
dc.identifier.issn1548-8675
dc.identifier.urihttps://hdl.handle.net/2027.42/141160
dc.description.abstractSpawning habitat degradation has been linked to declines in naturally reproducing Muskellunge Esox masquinongy populations, and managers require efficient methods to identify and protect these habitats. We collected spawning habitat data from 28 lakes in northern Wisconsin to determine Muskellunge spawning habitat selection and to create a GIS‐based model for predicting the locations of spawning sites. Spawning site selection by Muskellunge may be more complex than previously thought. Muskellunge showed selection for spawning in habitats with a sheltered effective fetch and east‐facing shorelines. The strongest selection was for habitats with a combination of moderate slope, small flats, and concave bathymetric curvature. Muskellunge selected against steeply sloping shorelines; very large areas of shallow flats; developed shorelines; herbaceous wetlands; and complex‐leafed submersed aquatic vegetation. Lake trophic status appears to interact with other habit variables to determine spawning site selection; sites without submersed aquatic vegetation were more strongly selected in eutrophic lakes than in other lake types. A GIS model of spawning site selection was created using the machine learning program MaxEnt (Maximum Entropy Modeling). The model predicted that Muskellunge would spawn in areas with moderately sheltered effective fetches, moderate to small areas of shallow flats, away from outflowing streams, and (to a lesser extent) along shorelines facing east or west. The model was tested on novel lakes using area‐under‐the‐curve (AUC) analysis, in which values ranged from 0.5 (predictions no better than random) to 1.0 (perfect assignment). The mean AUCtest value (i.e., the expectation of model performance for a novel lake) was 0.637 (SD = 0.12). When the model was used to designate the best 20% of available spawning habitat area for Muskellunge in each lake (based on the relative probability of spawning), that area contained 32% of the spawning sites. The model provides an efficient method for management agencies and conservation groups to use in designating spawning habitat for conservation and in communicating with the public through spawning habitat maps.Received January 26, 2014; accepted October 7, 2014
dc.publisherTaylor & Francis
dc.publisherWiley Periodicals, Inc.
dc.titleMuskellunge Spawning Site Selection in Northern Wisconsin Lakes and a GIS‐Based Predictive Habitat Model
dc.typeArticleen_US
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelNatural Resources and Environment
dc.subject.hlbtoplevelScience
dc.description.peerreviewedPeer Reviewed
dc.description.bitstreamurlhttps://deepblue.lib.umich.edu/bitstream/2027.42/141160/1/nafm0141.pdf
dc.identifier.doi10.1080/02755947.2014.977471
dc.identifier.sourceNorth American Journal of Fisheries Management
dc.identifier.citedreferenceA. J., Rust, J. S. Diana, T. L. Margenau, and C. J. Edwards. 2002. Lake characteristics influencing spawning success of Muskellunge in northern Wisconsin lakes. North American Journal of Fisheries Management 22: Pages 834 – 841.
dc.identifier.citedreferenceW. B., Scott, and E. J. Crossman. 1973. Freshwater fishes of Canada. In Bulletins of the Fisheries Research Board of Canada Page 184.
dc.identifier.citedreferenceJ. M., Smith 1991. Wind‐wave generation on restricted fetches. U.S. Army Corps of Engineers, Waterways Experiment Station, Coastal Engineering Research Center, Miscellaneous Paper Pages 91 – 2, Vicksburg, Mississippi.
dc.identifier.citedreferenceR. F., Strand 1986. Identification of principal spawning areas and seasonal distribution and movements of Muskellunge in Leech Lake, Minnesota. Pages 62 – 73 in G. E. Hall, editor. Managing muskies. American Fisheries Society, Special Publication 15, Bethesda, Maryland.
dc.identifier.citedreferenceM. N., Tuanmu, A. Viña, G. J. Roloff, W. Liu, Z. Ouyang, H. Zhang, and J. Liu. 2011. Temporal transferability of wildlife habitat models: implications for habitat monitoring. Journal of Biogeography 38: Pages 1510 – 1523.
dc.identifier.citedreferenceWDNR (Wisconsin Department of Natural Resources). 1939–1978. Lake survey map series, 28 maps. WDNR, Madison.
dc.identifier.citedreferenceWDNR (Wisconsin Department of Natural Resources). 2007. Wisconsin open water from 1:24,000‐scale sources. WDNR, Madison.
dc.identifier.citedreferenceWDNR (Wisconsin Department of Natural Resources). 2009. Wisconsin Department of Natural Resources and Wisconsin aquatic gap mapping application. WDNR, Madison. Available: http://infotrek.er.usgs.gov/wdnrfish/.(April2009).
dc.identifier.citedreferenceR. G., Werner, R. Klindt, and B. Jonckheere. 1996. Vegetative characteristics of Muskellunge ( Esox masquinongy ) spawning and nursery habitat in the Thousand Islands section of the St. Lawrence River. Great Lakes Research Review 2: Pages 29 – 35.
dc.identifier.citedreferenceH., Westers, and R. R. Stickney. 1993. Northern Pike and Muskellunge. Pages 199 – 213 in R. R. Stickney, editor. Culture of nonsalmonid freshwater fishes, 2nd edition. CRC Press, Ann Arbor, Michigan.
dc.identifier.citedreferenceR. G., Wetzel 2001. Limnology, 3rd edition. Academic Press, San Diego, California.
dc.identifier.citedreferenceC. B., Yackulic, R. Chandler, E. F. Zipkin, J. A. Royle, J. D. Nichols, E. H. Campbell Grant, and S. Veran. 2013. Presence‐only modelling using MaxEnt: when can we trust the inferences ? Methods in Ecology and Evolution 4: Pages 236 – 243.
dc.identifier.citedreferenceA. C., Yost, S. L. Peterson, M. Gregg, and R. Miller. 2008. Predictive modeling and mapping sage grouse ( Centrocercus urophasianus ) nesting habitat using maximum entropy and a long‐term dataset from southern Oregon. Ecological Informatics 3: Pages 375 – 386.
dc.identifier.citedreferenceJ. A., Younk, and M. F. Cook. 1992. Applications of an angler diary for Muskellunge Esox masquinongy. Minnesota Department of Natural Resources, Investigational Report 420, St. Paul.
dc.identifier.citedreferenceJ. A., Younk, M. F. Cook, T. J. Goeman, and P. D. Spencer. 1996. Seasonal habitat use and movements of Muskellunge in the Mississippi River. Minnesota Department of Natural Resources, Investigational Report 449, St. Paul.
dc.identifier.citedreferenceJ. H., Zar 1999. Biostatistical analysis. Prentice‐Hall, New York.
dc.identifier.citedreferenceS. L., Zorn, T. L. Margenau, J. S. Diana, and C. J. Edwards. 1998. The influence of spawning habitat on natural reproduction of Muskellunge in Wisconsin. Transactions of the American Fisheries Society 127: Pages 995 – 1005.
dc.identifier.citedreferenceJ. D., Allan 1995. Stream ecology: structure and function of running waters. Springer Press, Dordrecht, The Netherlands.
dc.identifier.citedreferenceM. E., Baker, M. J. Wiley, M. L. Carlson, and P. W. Seelbach. 2003. A GIS model of subsurface water potential for aquatic resource inventory, assessment, and environmental management. Environmental Management 32: Pages 706 – 719.
dc.identifier.citedreferenceE. K., Balon 1975. Reproductive guilds of fishes: a proposal and definition. Journal of the Fisheries Research Board of Canada 32: Pages 821 – 864.
dc.identifier.citedreferenceT. H., Bean 1908. The muskalonge [sic] of the Ohio basin. Transactions of the American Fisheries Society 37: Pages 145 – 151.
dc.identifier.citedreferenceM. A., Bozek, T. M. Burri, and R. V. Frie. 1999. Diets of Muskellunge in northern Wisconsin lakes. North American Journal of Fisheries Management 19: Pages 258 – 270.
dc.identifier.citedreferenceP. A., Chambers 1987. Nearshore occurrence of submersed aquatic macrophytes in relation to wave action. Canadian Journal of Fisheries and Aquatic Sciences 44: Pages 1666 – 1669.
dc.identifier.citedreferenceD. L., Christensen, B. R. Herwig, D. E. Schindler, and S. R. Carpenter. 1996. Impacts of lakeshore residential development on coarse woody debris in north temperate lakes. Ecological Applications 6: Pages 1143 – 1149.
dc.identifier.citedreferenceR. E., Craig, and R. M. Black. 1986. Nursery habitat of Muskellunge in southern Georgian Bay, Lake Huron, Canada. Pages 79 – 86 in G. E. Hall, editor. Managing muskies. American Fisheries Society, Special Publication 15, Bethesda, Maryland.
dc.identifier.citedreferenceD. P., Crane, J. M. Farrell, and K. L. Kapuscinski. 2014. Identifying important micro‐habitat characteristics of Muskellunge spawning locations in the upper Niagara River. Journal of Great Lakes Research 40: Pages 325 – 335.
dc.identifier.citedreferenceE. J., Crossman 1990. Reproductive homing in Muskellunge, Esox masquinongy. Canadian Journal of Fisheries and Aquatic Sciences 47: Pages 1803 – 1812.
dc.identifier.citedreferenceK. W., Cummins 1962. An evaluation of some techniques for the collection and analysis of benthic samples with special emphasis on lotic waters. American Midland Naturalist 67: Pages 477 – 504.
dc.identifier.citedreferenceJ. M., Deleo 1993. Receiver operating characteristic laboratory (ROCLAB): software for developing decision strategies that account for uncertainty. Pages 318 – 25 in B. M. Ayyub, editor. Proceedings of the second international symposium on uncertainty modelling and analysis. Institute of Electrical and Electronics Engineers Press, College Park, Maryland.
dc.identifier.citedreferenceM. P., Dombeck 1979. Movement and behavior of the Muskellunge determined by radio‐telemetry. Wisconsin Department of Natural Resources Technical Bulletin Page 113.
dc.identifier.citedreferenceM. P., Dombeck, B. W. Menzel, and P. N. Hinz. 1984. Muskellunge spawning habitat and reproductive success. Transactions of the American Fisheries Society 113: Pages 205 – 216.
dc.identifier.citedreferenceM. P., Dombeck, B. W. Menzel, and P. N. Hinz. 1986. Natural Muskellunge reproduction in Midwestern lakes. Pages 122 – 134 in G. E. Hall, editor. Managing muskies. American Fisheries Society, Special Publication 15, Bethesda, Maryland.
dc.identifier.citedreferenceJ., Elith, C. H. Graham, and National Center for Ecological Analysis and Synthesis Species Distribution Modelling Group. 2006. Novel methods improve prediction of species’ distributions from occurrence data. Ecography 29: Pages 129 – 151.
dc.identifier.citedreferenceJ., Elith, S. J. Phillips, T. Hastie, M. Dudík, Y. E. Chee, and C. J. Yates. 2011. A statistical explanation of MaxEnt for ecologists. Diversity and Distributions 17: Pages 43 – 57.
dc.identifier.citedreferenceB., Farmer, and P. Chow‐Fraser. 2004. A conceptual model of Muskellunge spawning habitat. Undergraduate thesis. McMaster University, Hamilton, Ontario.
dc.identifier.citedreferenceJ. M., Farrell 2001. Reproductive success of sympatric Northern Pike and Muskellunge in an upper St. Lawrence River bay. Transactions of the American Fisheries Society 130: Pages 796 – 808.
dc.identifier.citedreferenceJ. M., Farrell, R. G. Werner, S. R. LaPan, and K. A. Claypoole. 1996. Egg distribution and spawning habitat of Northern Pike and Muskellunge in a St. Lawrence River marsh, New York. Transactions of the American Fisheries Society 125: Pages 127 – 131.
dc.identifier.citedreferenceA. H., Fielding, and J. F. Bell. 1997. A review of methods for the assessment of prediction errors in conservation presence/absence models. Environmental Conservation 24: Pages 38 – 49.
dc.identifier.citedreferenceJ., Fry, G. Xian, S. Jin, J. Dewitz, C. Homer, L. Yang, C. Barnes, N. Herold, and J. Wickham. 2011. Completion of the 2006 National Land Cover Database for the conterminous United States. Photogrammetric Engineering and Remote Sensing 77: Pages 858 – 864.
dc.identifier.citedreferenceF., Geiger, J. Bengtsson, F. Berendse, W. Weisser, M. Emmersond, M. Morales, P. Ceryngier, J. Liirah, T. Tscharntke, C. Winqvist, S. Eggers, R. Bommarco, T. Pãrt, V. Bretagnolle, M. Plantegenest, L. Clement, C. Dennisd, C. Palmerd, J. Oñate, I. Guerrero, V. Hawro, T. Aavik, C. Thies, A. Flohre, S. Hänke, C. Fischer, P. Goedhart, and P. Inchaust. 2010. Persistent negative effects of pesticides on biodiversity and biological control potential on European farmland. Basic and Applied Ecology 11: Pages 97 – 105.
dc.identifier.citedreferenceR. C., Haas 1978. The Muskellunge in Lake St. Clair. Pages 334 – 359 in R. L. Kendall, editor. A symposium on selected coolwater fishes of North America. American Fisheries Society, Special Publication 11, Bethesda, Maryland.
dc.identifier.citedreferenceP. A., Hernandez, C. H. Graham, L. L. Master, and D. L. Albert. 2006. The effect of sample size and species characteristics on performance of different species distribution modeling methods. Ecography 29: Pages 773 – 785.
dc.identifier.citedreferenceP. D., Inskip 1986. Negative associations between abundances of Muskellunge and Northern Pike: evidence and possible explanations. Pages 135 – 150 in G. E. Hall, editor. Managing muskies. American Fisheries Society, Special Publication 15, Bethesda, Maryland.
dc.identifier.citedreferenceV. S., Ivlev 1961. Experimental ecology of the feeding of fishes. Yale University Press, New Haven, Connecticut.
dc.identifier.citedreferenceF. H., Johnson 1961. Walleye egg survival during incubation on several types of bottom in Lake Winnibigoshish, Minnesota, and connecting waters. Transactions of the American Fisheries Society 90: Pages 312 – 322.
dc.identifier.citedreferenceK. L., Kapuscinski, and J. M. Farrell. 2014. Habitat factors influencing fish assemblages at Muskellunge nursery sites. Journal of Great Lakes Research 40 ( Supplement 2 ): Pages 135 – 147.
dc.identifier.citedreferenceLakeSat. 2001. Results of Wisconsin’s first statewide lake clarity mapping using Landsat satellite remote sensing. University of Wisconsin, Environmental Remote Sensing Center, Madison. Available: www.LakeSat.org.(August 2012).
dc.identifier.citedreferenceJ. M., Lobo, A. Jiménez‐Valverde, and R. Real. 2008. AUC: misleading measure of the performance of predictive distribution models. Global Ecology and Biogeography 17: Pages 145 – 151.
dc.identifier.citedreferenceT. L., Margenau 1992. Survival and cost‐effectiveness of stocked fall fingerling and spring yearling Muskellunge in Wisconsin. North American Journal of Fisheries Management 12: Pages 484 – 493.
dc.identifier.citedreferenceF. C., Menz, and D. P. Wilton. 1983. An economic study of the Muskellunge fishery in New York. New York Fish and Game Journal 30: Pages 12 – 29.
dc.identifier.citedreferenceC., Merow, M. J. Smith, and J. A. Silander Jr. 2013. A practical guide to MaxEnt for modeling species’ distributions: what it does, and why inputs and settings matter. Ecography 36: Pages 1058 – 1069.
dc.identifier.citedreferenceM. L., Miller, and B. W. Menzel. 1986. Movement, activity, and habitat use patterns of Muskellunge in west Okoboji Lake, Iowa. Pages 51 – 61 in G. E. Hall, editor. Managing muskies. American Fisheries Society, Special Publication 15, Bethesda, Maryland.
dc.identifier.citedreferenceL. M., Miller, S. W. Mero, and J. A. Younk. 2009. The genetic legacy of stocking Muskellunge in a northern Minnesota lake. Transactions of the American Fisheries Society 138: Pages 602 – 615.
dc.identifier.citedreferenceR., Monfette, S. Guénette, N. Dubuc, R. Fortin, and H. Fourneir. 1996. Northern Pike and Muskellunge spawning ecology and reproductive success in the lower Ottawa River. Pages 55 – 65 in S. J. Kerr and C. H. Olver, editors. Managing muskies in the 1990s. Ontario Ministry of Natural Resources, Southern Region Science and Technology Transfer Unit, Workshop Proceedings WP‐007, Kemptville.
dc.identifier.citedreferenceB. A., Murry, and J. M. Farrell. 2007. Quantification of native Muskellunge nursery habitat: influence of body size, fish community composition, and vegetation structure. Environmental Biology of Fishes 79: Pages 37 – 47.
dc.identifier.citedreferenceJ. K., Nohner 2009. Development of a GIS model to predict Muskellunge spawning habitat in northern Wisconsin lakes. Master’s thesis. University of Michigan, Ann Arbor.
dc.identifier.citedreferenceNWS (National Weather Service) and NCDC (National Climatic Data Center). 2009. Wind Rose data: 1973–2004. NWS and NCDC, Green Bay, Wisconsin.
dc.identifier.citedreferenceA. A., Oehmcke, L. Johnson, J. Klingbiel, and W. Wistrom. 1958. The Wisconsin Muskellunge: its life history, ecology, and management. Wisconsin Conservation Department, Publication 225, Madison.
dc.identifier.citedreferenceS. J., Phillips, R. P. Anderson, and R. E. Schapire. 2006. Maximum entropy modeling of species geographic distributions. Ecological Modelling 190: Pages 231 – 259.
dc.identifier.citedreferenceS. J., Phillips, and M. Dudík. 2008. Modeling species distributions with MaxEnt: new extensions and a comprehensive evaluation. Ecography 31: Pages 161 – 175.
dc.identifier.citedreferenceS. J., Phillips, M. Dudík, and R. E. Schapire. 2008. MaxEnt software for species habitat modeling, version 3.2.19. Available: http://www.cs.princeton.edu/~schapire/maxent/.(October2008).
dc.identifier.citedreferenceR. B., Pierce, J. A. Younk, and C. M. Tomcko. 2007. Expulsion of miniature radio transmitters along with eggs of Muskellunge and Northern Pike: a new method for locating critical spawning habitat. Environmental Biology of Fishes 79: Pages 99 – 109.
dc.identifier.citedreferenceM. R., Posa, and N. S. Sodhi. 2006. Effects of anthropogenic land use on forest birds and butterflies in Subic Bay, Philippines. Biological Conservation 129: Pages 256 – 270.
dc.identifier.citedreferenceJ. K., Raabe, and M. A. Bozek. 2012. Quantity, structure, and habitat selection of natural spawning reefs by Walleyes in a north temperate lake: a multiscale analysis. Transactions of the American Fisheries Society 141: Pages 1097 – 1108.
dc.identifier.citedreferenceJ., Rohweder, J. T. Rogala, B. L. Johnson, D. Anderson, S. Clark, C. Ferris, and R. Kip. 2008. Application of wind fetch and wave models for habitat rehabilitation and enhancement projects. U.S. Geological Survey, Open File Report 2008‐1200, Reston, Virginia.
dc.identifier.citedreferenceE., Roseman, W. W. Taylor, D. B. Hayes, R. C. Haas, R. L. Knight, and K. O. Paxton. 1996. Walleye egg deposition and survival on reefs in western Lake Erie (USA). Annales Zoologici Fennici 33: Pages 341 – 351.
dc.owningcollnameInterdisciplinary and Peer-Reviewed


Files in this item

Show simple item record

Remediation of Harmful Language

The University of Michigan Library aims to describe library materials in a way that respects the people and communities who create, use, and are represented in our collections. Report harmful or offensive language in catalog records, finding aids, or elsewhere in our collections anonymously through our metadata feedback form. More information at Remediation of Harmful Language.

Accessibility

If you are unable to use this file in its current format, please select the Contact Us link and we can modify it to make it more accessible to you.