{"id":10,"date":"2017-10-23T13:13:56","date_gmt":"2017-10-23T13:13:56","guid":{"rendered":"http:\/\/sites.warnercnr.colostate.edu\/kanno\/?page_id=10"},"modified":"2026-01-18T17:03:11","modified_gmt":"2026-01-18T17:03:11","slug":"publications","status":"publish","type":"page","link":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"<div class=\"wpb-content-wrapper\"><p>[vc_row][vc_column][vc_column_text]<u><strong><span style=\"font-size: large\"><a href=\"http:\/\/scholar.google.com\/citations?user=6mlcODQAAAAJ&amp;hl=en\"><span style=\"color: #d00505\">Google Scholar<\/span><\/a><br \/>\n<a href=\"https:\/\/www.researchgate.net\/profile\/Yoichiro_Kanno\"><span style=\"color: #e60909\">ResearchGate<\/span><\/a><\/span><\/strong><\/u><\/p>\n<p>[\/vc_column_text][\/vc_column][\/vc_row][vc_row][vc_column width=&#8221;1\/2&#8243;][vc_single_image image=&#8221;40&#8243; img_size=&#8221;large&#8221; style=&#8221;vc_box_shadow_3d&#8221;][\/vc_column][vc_column width=&#8221;1\/2&#8243;][vc_single_image image=&#8221;41&#8243; img_size=&#8221;large&#8221; alignment=&#8221;right&#8221; style=&#8221;vc_box_shadow_3d&#8221;][\/vc_column][\/vc_row][vc_row][vc_column][vc_column_text css=&#8221;&#8221;]<\/p>\n<p style=\"text-align: center\"><u>2026<\/u><\/p>\n<p>Paul, B., K.C. Pregler, S. Kim, and <strong>Y. Kanno<\/strong>. 2026. A multispecies, multiseason evaluation of body condition effects on fish survival in a coolwater stream. <strong><em>Transactions of the American Fisheries Society<\/em>.<\/strong><\/p>\n<p>Futamura, R., K. Morita, J. Uchida, A. Okuda, <strong>Y. Kanno<\/strong>, and O. Kishida. 2026. Costs of size increase prior to oceanic migration inferred from predation-caused wounds in an anadromous fish. <strong><em>Journal of Ethology <\/em><\/strong>44:87-96. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2026\/01\/Futamura-et-al.-2026-Predation-costs-of-smolt-size-increase-prior-to-oceanic-migration.pdf\">[PDF]<\/a><\/p>\n<p>Stack, T., A.C. Harris, M.P. Fairchild, S.J. Oyler-McCance, J.A. Fike, D.L. Winkelman, and <strong>Y. Kanno<\/strong>. 2026. Riverscape genetics of non-native brook trout to inform native cutthroat trout conservation. <strong><em>Transactions of the American Fisheries Society <\/em><\/strong>155:26-40. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2026\/01\/Taylor-et-al.-2026-non-native-brook-trout-riverscape-genetics.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2025<\/u><\/p>\n<p>Lu, X., <strong>Y. Kanno<\/strong>, A.P. Wheeler, and J.M. Rash. 2025. Stream temperature rise and future stocked trout management in North Carolina. <em><strong>North American Journal of Fisheries Management <\/strong><\/em>45:532-539. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/08\/Lu-et-al.-2025-stream-temp-rise-an-future-trout-stocking-in-NC.pdf\">[PDF]<\/a><\/p>\n<p>Lu, X., A. Kaplan, <strong>Y. Kanno<\/strong>, G.P. Valentine, J.M. Rash, and M.B. Hooten. 2025. Stochastic spatial stream networks for scalable inferences of riverscape processes. <em><strong>Spatial Statistics <\/strong><\/em>68:100902. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/07\/Lu_etal_25_SS.pdf\">[PDF]<\/a><\/p>\n<p>Platis, N.M., <strong>Y. Kanno<\/strong>, B.P. Rose, and B.M. Johnson. 2025. Variation in relationships of delta<sup>13<\/sup>C and delta<sup>15<\/sup>N between lethal and nonlethal samples in fishes. <em><strong>North American Journal of Fisheries Management <\/strong><\/em>45:578-592. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/08\/Platis-et-al.-2025-fin-vs-tissue-stable-isotopes.pdf\">[PDF]<\/a><\/p>\n<p>Futamura, R., K. Morita, <strong>Y. Kanno<\/strong>, A. Terui, and O. Kishida. 2025. Annual variation in riverscape habitat use by a diadromous fish before oceanic migration. <em><strong>Journal of Zoology<\/strong><\/em> 326:320-328. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/08\/Futamura-et-al.-2025-Annual-variation-in-riverscape-habitat-use-by-masu-salmon-smolt.pdf\">[PDF]<\/a><\/p>\n<p>Hasegawa, R., Y. Otsuki, Y. Uemura, C. Furusawa, M. Naka, <strong>Y. Kanno<\/strong>, and I. Koizumi. 2025. Positive feedback between parasite infection and poor host condition reduces host survival in the wild. <strong><em>Functional Ecology <\/em><\/strong>39:723-736. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/03\/Hasegawa-et-al.-2025-Positive-feedback-between-parasite-infection-and-poor-host-body-condition.pdf\">[PDF]<\/a><\/p>\n<p>Svatos, E.C., F.R. Carvallo, M.K. ter KuileMiller, J.L. Gray, J.L. Trujillo, S.B. Weinstein, M.P. Fairchild, <strong>Y. Kanno<\/strong>, and D.L. Preston. 2025. Effects of wildfire on interactions among nematode parasites, mayfly hosts, and trout predators. <em><strong>Freshwater Biology <\/strong><\/em>70:e70015. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/02\/Svatos-et-al.-2025-Wildfire-parasites-mayfly-and-trout.pdf\">[PDF]<\/a><\/p>\n<p>Lu, X., <strong>Y. Kanno<\/strong>, G.P. Valentine, M.A. Kulp, and M.B. Hooten. 2025. Regularized latent trajectory models for space-time population dynamics. <strong><em>Journal of Agricultural, Biological, and Environmental Statistics <\/em><\/strong>30:683-699. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/08\/Lu-et-al.-2025-regulaterized-latent-trajectory-model-for-brook-trout.pdf\">[PDF]<\/a><\/p>\n<p>Brown, A.L., T.R. Hackett, B.K. Lynch, B.P. Rose, B.M. Johnson, and <strong>Y. Kanno<\/strong>. 2025. Length at age of mottled sculpin in a regulated high-elevation river. <strong><em>Aquaculture, Fish and Fisheries <\/em><\/strong>5:e70030. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/12\/Brown-et-al.-2025-Length-at-age-of-sculpin-in-Blue-River.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, N.M. Clark, K.C. Pregler, and S. Kim. 2025. Integrated analysis of marked and count data to characterize fine-scale stream fish movement. <strong><em>Oecologia<\/em><\/strong>\u00a0207:25 <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2025\/01\/Kanno-et-al.-2025-IPM-for-fine-scale-stream-fish-movement.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2024<\/u><\/p>\n<p>Stack, T., M.P. Fairchild, R. Geiger, S.J. Oyler-McCance, J.A. Fike, C.M. Kennedy, D.L. Winkelman, and <strong>Y. Kanno<\/strong>. 2024. A genetic assessment of natural barriers for isolating a proposed greenback cutthroat trout reintroduction area. <strong><em>North American Journal of Fisheries Management<\/em><\/strong>\u00a044:1062-1072. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/11\/Taylor-et-al.-2024-PHP-barrier-assessment.pdf\">[PDF]<\/a><\/p>\n<p>Hosoki, T.K., N.M. Clark, R. Futamura, S. Moriyama, O. Kishida, and <strong>Y. Kanno<\/strong>. 2024. A comparison of sex-specific markers for two wild masu salmon populations in Hokkaido, Japan. <em><strong>Aquaculture, Fish and Fisheries <\/strong><\/em>4:e194. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/07\/Hosoki-et-al.-2024-sex-specific-markers-for-masu-salmon.pdf\">[PDF]<\/a><\/p>\n<p>Platis, N.M., <strong>Y. Kanno<\/strong>, B.M. Johnson, and B.P. Rose. 2024. Seasonal trophic niche width and overlap of mottled sculpin and brown trout in a regulated high-elevation river. <em><strong>Ecology of Freshwater Fish\u00a0<\/strong><\/em>33:e12793. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/10\/Platis-et-al.-2024-brown-trout-and-sculpin-seasonal-trophic-niche-width-and-overlap.pdf\">[PDF]<\/a><\/p>\n<p>Lewis, S.T., J.D. Salerno, J.S. Sanderson, and <strong>Y. Kanno<\/strong>. 2024. An experimental test of intra- and inter-specific competition between invasive western mosquitofish (<em>Gambusis affinis<\/em>) and native plains topminnow (<em>Fundulus sciadicus<\/em>). <em><strong>Freshwater Biology <\/strong><\/em>69:1131-1143. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/07\/Lewis-et-al.-2024-mosquitofish-and-topminnow-competition.pdf\">[PDF]<\/a><\/p>\n<p>Valentine, G.P., X. Lu, C.A. Dolloff, C.N. Roghair, J.M. Rash, M.B. Hooten, and <strong>Y. Kanno<\/strong>. 2024. Landscape influences on thermal sensitivity and predicted spatial variability among brook trout streams in the southeastern USA. <em><strong>River Research and Applications <\/strong><\/em>40:1242-1255. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/09\/Valentine-et-al.-2024-brook-trout-thermal-refugia-in-southeast-USA.pdf\">[PDF]<\/a><\/p>\n<p>Lu, X., <strong>Y. Kanno<\/strong>, G.P. Valentine, J.M. Rash, and M.B. Hooten. 2024. Using multi-scale spatial models of dendritic ecosystems to infer abundance of a stream salmonid. <em><strong>Journal of Applied Ecology <\/strong><\/em>61:1703-1715. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/07\/Lu-et-al.-2024-multi-scale-spatial-models-for-NC-brook-trout.pdf\">[PDF]<\/a><\/p>\n<p>Fausch, K.D., K. Morita, J. Tsuboi, <strong>Y. Kanno<\/strong>, S. Yamamoto, D. Kishi, J.B. Dunham, I. Koizumi, K. Hasegawa, M. Inoue, T. Sato, and S. Kitano. 2024. The past, present, and a future for native charr in Japan. <em><strong>Ichthyological Research <\/strong><\/em>71:461-485. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/11\/Fausch-et-al-2024-Japanese-native-charr-review.pdf\">[PDF]<\/a><\/p>\n<p>Valentine, G.P., X. Lu, E.S. Childress, C.A. Dolloff, N.P. Hitt, M.A. Kulp, B.H. Letcher, K.C. Pregler, J.M. Rash, M.B. Hooten, and <strong>Y. Kanno<\/strong>. 2024. Spatial asynchrony and cross-scale climate interactions in populations of a coldwater stream fish. <strong><em>Global Change Biology <\/em><\/strong>30:e17029. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2024\/02\/Valentine-et-al.-2024-brook-trout-spatial-asynchrony.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2023<\/u><\/p>\n<p>Pregler, K.C., X. Lu, G.P. Valentine, S. Kim, and <strong>Y. Kanno<\/strong>. 2023. Temperature variation generates interspecific synchrony but spatial asynchrony in survival for freshwater fish communities. <strong><em>Ecology and Evolution <\/em><\/strong>13:e10700. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/11\/Pregler-et-al.-2023-interspecific-synchrony-but-spatial-asynchrony-in-fish-communities.pdf\">[PDF]<\/a><\/p>\n<p>Shi, W., Z. Zhou, B.H. Letcher, N.P. Hitt, <strong>Y. Kanno<\/strong>, R. Futamura, O. Kishida, K. Morita, and S. Li. 2023. Aging contrast: A contrastive learning framework for fish re-identification across seasons and years. <em><strong>Australian Joint Conference on Artificial Intelligence <\/strong><\/em>AI2023:252-264. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/12\/FishAI_AJCAI_2023-2.pdf\">[PDF]<\/a><\/p>\n<p>Preston, D.L., J.L. Trujillo, M.P. Fairchild, R.R. Morrison, K.D. Fausch, and<strong> Y. Kanno<\/strong>. 2023. Short-term effects of wildfire on high elevation stream-riparian food webs. <strong><em>Oikos <\/em><\/strong>2023:e09828. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/08\/Preston-et-al.-2023-short-term-wildfire-and-high-elevation-food-webs.pdf\">[PDF]<\/a><\/p>\n<p>Ma, C., R.R. Morrison, D.C. White, J. Roberts, and<strong> Y. Kanno<\/strong>. 2023. Climate change impacts on native cutthroat trout habitat in Colorado streams. <strong><em>River Research and Applications <\/em><\/strong>39:970-986. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/06\/Ma-et-al.-2023-climate-change-impacts-on-trout-habitat-in-Colorado.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y., <\/strong>M.L. Locklear, N.M. Platis, and S.T. Lewis. 2023. Body condition metrics explain fish movement in experimental streams. <strong><b><i>Journal of Zoology <\/i><\/b><\/strong>320:18-28. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/05\/Kanno-et-al.-2023-Body-condition-metrics-and-fish-movement.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, S. Kim, and K.C. Pregler. 2023. Sub-seasonal correlation between growth and survival in three sympatric aquatic ectotherms. <b><i>Oikos\u00a0<\/i><\/b>2023:e09685. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2023\/03\/Kanno-et-al.-2023-Sub\u2010seasonal-growth-survival-correlation-1.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2022<\/u><\/p>\n<p>Tsuboi, J., K. Morita, Y. Koseki, S. Endo, G. Sahashi, D. Kishi, T. Kikko, D. Ishizaki, M. Nunokawa, and<strong> Y. Kanno. <\/strong>2022. Small giants: tributaries rescue spatially structured populations from extirpation in a highly fragmented stream. <strong><em>Journal of Applied Ecology<\/em><\/strong> 59:1997-2009. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/08\/Tsuboi-et-al.-2022-small-giants.pdf\">[PDF]<\/a> Tsuboi &amp; Kanno are joint first authors.<\/p>\n<p>Harris, A.C., S.J. Oyler-McCance, J.A. Fike, M.P. Fairchild, C.M. Kennedy, H.J. Crockett, D.L. Winkelman, and<strong> Y. Kanno. <\/strong>2022. Population genetics reveals bidirectional fish movement across the Continental Divide via an interbasin water transfer. <em><strong>Conservation Genetics <\/strong><\/em>23:839-851. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/08\/Harris-et-al.-2022-trout-movement-across-Continental-Divide.pdf\">[PDF]<\/a><\/p>\n<p>Wenger, S. J., E.S. Stowe, K.B. Gido, M.C. Freeman, <strong>Y. Kanno<\/strong>, N.R. Franssen, J.D. Olden, N.L., Poff, A.W. Walters, P.M. Bumpers, M.C. Mims, M.B. Hooten, and X. Lu. 2022. Simple statistical models can be sufficient for testing hypotheses with population time series data. <em><strong>Ecology and Evolution\u00a0<\/strong><\/em>12:e9339. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/10\/Wenger-et-al.-2022-Simple-statistical-models-for-population-time-series-data.pdf\">[PDF]<\/a><\/p>\n<p>Freeman, M.C., K.R. Bestgen, D. Carlisle, E.A. Frimpong, N.R. Franssen, K.B. Gido, E. Irwin, <strong>Y. Kanno<\/strong>, C. Luce, S.K. McKay, M.C. Mims, J.D. Olden, N.L. Poff, D.L. Propst, L. Rack, A.H. Roy, E.S. Stowe, A. Walters, and S.J. Wenger. 2022. Toward improved understanding of streamflow effects on freshwater fishes. <em><strong>Fisheries<\/strong><\/em> 47(7):290-298. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/07\/Freeman-et-al.-2022-stream-flow-effects-on-fishes.pdf\">[PDF]<\/a><\/p>\n<p>Kim, S., M.B. Hooten, T.L. Darden, and <strong>Y. Kanno<\/strong>. 2022. Linking male reproductive success to effort within and among nests in a co-breeding stream fish.\u00a0<span style=\"color: #000000\"><em><strong>Ethology<\/strong><\/em> 128:489-498. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/05\/Kim-et-al.-2022-BHC-reproductive-effort-and-success.pdf\">[PDF]<\/a><\/span><\/p>\n<p>Futamura, R., K. Morita, <strong>Y. Kanno<\/strong>, and O. Kishida. 2022. Size-selective mortality occurs in smolts during a seaward migration, but not in river residents, in masu salmon (<em>Oncorhynchus masou<\/em>). <em><strong>Environmental Biology of Fishes<\/strong><\/em> 105:1833-1843. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/12\/Futamura-et-al.-2022-masu-smolt-size-selective-mortality.pdf\">[PDF]<\/a><\/p>\n<p>Futamura, R., K. Morita, <strong>Y. Kanno<\/strong>, S. Kumikawa, Y. Matsuoka, A. Okuda, H. Sugiyama, H. Takahashi, J. Uchida, and O. Kishida. 2022. Size-dependent growth tactics of a partially migratory fish before migration. <em><strong>Oecologia <\/strong><\/em><span style=\"color: #000000\">198:371-379. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/03\/Futamura-et-al.-2022-Size-dependent-growth-tactics-of-masu-salmon.pdf\">[PDF]<\/a><\/span><\/p>\n<p>Uno, H., M. Yokoi, K. Fukushima, <strong>Y. Kanno<\/strong>, O. Kishida, W. Mamiya, R. Sakai, and S. Utsumi. 2022. Spatially variable hydrological and biological processes shape diverse post-flood aquatic communities. <span style=\"color: #000000\"><strong><em>Freshwater Biology\u00a0<\/em><\/strong>67:549-563. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/02\/Uno-et-al.-2022-post-snowmelt-community-dynamics.pdf\">[PDF]<\/a><\/span><\/p>\n<p>Kazyak, D.C., B.A. Lubinski, M.A. Kulp, K.C. Pregler, A.R. Whiteley, E. Hallerman, J.A. Coombs, <strong>Y. Kanno<\/strong>, J.M. Rash, R.P. Morgan, J. Habera, J. Henegar, T.C. Weathers, M.T. Sell, A. Rabern, D. Rankin, and T.L. King. 2022. Population genetics of brook trout (<em>Salvelinus fontinalis<\/em>) in the southern Appalachian Mountains. <em><strong>Transactions of the American Fisheries Society<\/strong><\/em> 151<span style=\"color: #000000\">:127-149.<\/span> [<strong><em>Featured Paper<\/em><\/strong>] <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/03\/Kazyak-et-al.-2022-bkt-pop-gen-in-southern-appalachian-mtn.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, A.C. Harris, O. Kishida, S. Utsumi, and H. Uno. 2022. Complex effects of body length and condition on within-tributary movement and emigration in stream salmonids. <b><i>Ecology of Freshwater Fish <\/i><\/b>31<span style=\"color: #000000\">:317-329. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2022\/03\/Kanno-et-al.-2021-drivers-of-multi-scale-movement.pdf\">[PDF]<\/a><\/span><\/p>\n<p style=\"text-align: center\"><u>2021<\/u><\/p>\n<p>Terui, A., S. Kim, K.C. Pregler, and <strong>Y. Kanno<\/strong>. 2021. Non-random dispersal in sympatric stream fishes: influences of natural disturbance and body size. <strong><em>Freshwater Biology <\/em><\/strong>65:1865-1875. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2021\/09\/Terui-et-al.-2021-Non-random-dispersal-in-sympatric-stream-fishes.pdf\">[PDF]<\/a><\/p>\n<p>Fitzgerald, K.A., M.R. Haworth, K.R. Bestgen, C.J. Farrell, S. Utsumi, O. Kishida, H. Uno, and <strong>Y. Kanno<\/strong>. 2021. Hatch timing of two subarctic salmonids in a stream network estimated by otolith increments. <strong><em>Fisheries Management and Ecology <\/em><\/strong>28:507-515. [<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2021\/11\/Fitzgerald-et-al.-2021-charr-and-masu-daily-otolith-increments.pdf\">PDF<\/a>]<\/p>\n<p>Ciepiela, L.R., R.M. Fitzpatrick, S.T. Lewis, and <strong>Y. Kanno<\/strong>. 2021. Behavioral interactions between a native and an invasive fish species in a thermally heterogeneous experimental chamber. <em><strong>Fishes\u00a0<\/strong><\/em>6:75. [<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2021\/12\/Ciepiela-et-al.-2021-MSQ-NRD-thermal-chamber.pdf\">PDF]<\/a><\/p>\n<p>Fausch, K.D., S. Nakano, S. Kitano, <strong>Y. Kanno<\/strong>, and S. Kim. 2021. Interspecific social dominance networks reveal mechanisms promoting coexistence in sympatric charrs in Hokkaido, Japan. <strong><em>Journal of Animal Ecology <\/em><\/strong>90:515-527. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2021\/05\/Fausch-et-al.-2021-social-dominance-and-coexistence.pdf\">[PDF]<\/a><\/p>\n<p>Harris, A.C., R.D. Hanks, J.M. Rash, D.W. Goodfred, and <strong>Y. Kanno<\/strong>. 2021. Standard weight equation for brook trout in southern Appalachian Mountains streams. <strong><em>Journal of Fish and Wildlife Management <\/em><\/strong>12:183-189. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2021\/07\/Harris-et-al.-2021-bkt-Ws-equation-for-southern-Appalachia.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2020<\/u><\/p>\n<p>Kim, S., K.C. Pregler, E.L. Cushman, T.L. Darden, and <strong>Y. Kanno<\/strong>. 2020. Behavior outweighs body size in mediating male reproductive success in a nest-building fish, bluehead chub. <strong><em>Behavioral Ecology and Sociobiology <\/em><\/strong>74:148<em>. <\/em><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/11\/Kim-et-al.-2020-Behavior-outweights-body-size-in-male-chub-repro-success.pdf\" target=\"\" rel=\"noopener noreferrer\">[PDF]<\/a> Kim &amp; Kanno are joint first authors.<\/p>\n<p>Nathan, L.R., <strong>Y. Kanno<\/strong>, B.H. Letcher, A.B. Welsh, A.R. Whiteley, and J.C. Vokoun. 2020. Evaluation of genetic structuring within GIS-derived brook trout management units. <strong><em>Transactions of the American Fisheries Society <\/em><\/strong>149:681-694. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/11\/Nathan-et-al.-2020-EBTJV-patch-eval.pdf\" target=\"\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p>Tsuboi, J., K. Morita, Y. Koseki, S. Endo, G. Sahashi, D. Kishi, T. Kikko, D. Ishizaki, M. Nunokawa, and<strong> Y. Kanno. <\/strong>2020. Spatial covariation of fish population vital rates in a stream network. <strong><em>Oikos <\/em><\/strong>129:924-937. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Tsuboi-et-al.-2020-spatial-cov-of-survival-and-growth-in-a-stream-network.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, N. Yui, W. Mamiya, R. Sakai, Y. Yabuhara, T. Miyazaki, S. Utsumi, O. Kishida, and H. Uno. 2020. A multistate mark-recapture approach to characterize stream fish movement at multiple spatial scales. <b><i>Canadian Journal of Fisheries and Aquatic Sciences <\/i><\/b>77:1090-1100. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Kanno-et-al.-2020-multistate-CJS-for-multiscale-movement.pdf\">[PDF]<\/a><\/p>\n<p>Kim, S., B.K. Peoples, and <strong>Y. Kanno<\/strong>. 2020. Diverse reproductive patterns of bluehead chub (<em>Nocomis leptocephalus<\/em>) and their relationships with nest size and interactions with an associate, yellowfin shiner (<em>Notropis lutipinnis<\/em>). <b><i>Environmental Biology of Fishes <\/i><\/b>103:783-794. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Kim-et-al.-2020-BHC-nest-size-and-YFS-interaction.pdf\">[PDF]<\/a><\/p>\n<p>Nakano, S., K.D. Fausch, I. Koizumi, <strong>Y. Kanno<\/strong>, Y. Taniguchi, S. Kitano, and Y. Miyake. 2020. Evaluating a pattern of ecological character displacement: charr jaw morphology and diet diverge in sympatry versus allopatry across catchments in Hokkaido, Japan. <em><strong>Biological Journal of the Linnean Society<\/strong><\/em> 129:356-378. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Nakano-et-al.-2020-charr-ecol-character-displacement.pdf\">[PDF]<\/a><\/p>\n<p>Cushman, E.L., K.L. Kanapeckas M\u00e9tris, <strong>Y. Kanno<\/strong>, K.C. Pregler, B.K. Peoples, and T.L. Darden. 2020. Optimization of a suite of microsatellite markers for <em>Nocomis leptocephalus<\/em> (bluehead chub) and genetic characterization of two populations in South Carolina. <em><strong>Southeastern Naturalist <\/strong><\/em>19:192-204. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Cushman-et-al.-2020-BHC-microsat-marker-panel.pdf\">[PDF]<\/a><\/p>\n<p>Kim, S., and <strong>Y. Kanno<\/strong>. 2020. Spawning periodicity and synchrony of bluehead chub (<em>Nocomis leptocephalus<\/em>) and a nest associate, yellowfin shiner (<em>Notropis lutipinnis<\/em>), across local streams. <b><i>Ecology of Freshwater Fish <\/i><\/b>29:299-310. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2020\/09\/Kim-and-Kanno-2020-BHC-spawning-periodicity.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2019<\/u><\/p>\n<p>Pregler, K.C., R.D. Hanks, E. Childress, N.P. Hitt, D.J. Hocking, B.H. Letcher, T. Wagner, and <strong>Y. Kanno<\/strong>. 2019. State-space analysis of power to detect regional brook trout population trends over time. <b><i>Canadian Journal of Fisheries and Aquatic Sciences <\/i><\/b>76:2145-2155. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2019\/10\/Pregler-et-al.-2019-bkt-power-analysis.pdf\">[PDF]<\/a><\/p>\n<p>Budy, P., K.B. Rogers, <strong>Y. Kanno<\/strong>, B. Penaluna, N.P. Hitt, G.P. Thiede, J. Dunham, C. Mellison, W.L. Somer, and P. Trotter. 2019. Distribution and status of trout and char in North America. Pages 193-250 <em>in<\/em> J.L. Kershner, J.E. Williams, R.E. Gresswell, and J. Lobon-Cervia (Editors), <strong><em>Trout and Char of the World<\/em><\/strong>. American Fisheries Society, Bethesda, MD.<\/p>\n<p>Vine, J., <strong>Y. Kanno<\/strong>, S.C. Holbrook, W.C. Post, and B.K. Peoples. 2019. Using side-scan sonar and N-mixture modeling to estimate Atlantic sturgeon spawning migration abundance. <em><strong>North American Journal of Fisheries Management <\/strong><\/em>39:939-950. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2019\/10\/Vine-et-al.-2019-side-scan-and-Nmix.pdf\">[PDF]<\/a><\/p>\n<p>Silknetter, S.,\u00a0<strong>Y. Kanno<\/strong>, K.L. Kanapeckas M\u00e9tris, E. Cushman, T.L. Darden, and B.K. Peoples. 2019. Mutualism or parasitism: partner abundance affects host fitness in a fish reproductive interaction. <b><i>Freshwater Biology <\/i><\/b>64:175-182. <a href=\"http:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/12\/Silknetter-et-al.-2018-associate-density-affects-host-fitness.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2018<\/u><\/p>\n<p>Pregler, K.C.,\u00a0<strong>Y. Kanno<\/strong>, D. Rankin, J.A. Coombs, and A.W. Whiteley. 2018. Characterizing genetic integrity of rear-edge trout populations in the southern Appalachians. <b><i>Conservation Genetics\u00a0<\/i><\/b>19:1487-1503. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/11\/Pregler-et-al-2018-bkt-genetics-in-SC.pdf\">[PDF]<\/a><\/p>\n<p>Blum, A.G.,\u00a0<strong>Y. Kanno<\/strong>, and B.H. Letcher. 2018. Seasonal streamflow extremes are key drivers of brook trout young-of-the-year abundance.\u00a0<strong><em>Ecosphere <\/em><\/strong>9(8):e02356. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/08\/Blum-et-al-2018-Flow-extremes-affect-BKT-YOY-abundance.pdf\">[PDF]<\/a><\/p>\n<p>Hanks, R.D.,\u00a0<strong>Y. Kanno<\/strong>, and J.M. Rash. 2018. Can single-pass electrofishing replace three-pass depletion for population trend detection?\u00a0<strong><em>Transactions of the American Fisheries Society <\/em><\/strong>147:729-739. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/08\/Hanks-et-al-2018-TAFS-single-pass-power.pdf\">[PDF]<\/a><\/p>\n<p>Mycko, S.A., <strong>Y. Kanno<\/strong>, and J.M. Bettinger. 2018. Using angling and electric fishing to estimate smallmouth bass abundance in a river. <strong><em>Fisheries Management and Ecology <\/em><\/strong>25:77-84.<strong><em>\u00a0<\/em><\/strong><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/01\/Mycko-et-al-2018-bass-angling-e-fishing.pdf\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2017<\/u><\/p>\n<p>Kelly, B.B., J.B. Cary, A.D. Smith, K.C. Pregler, S. Kim, and\u00a0<strong>Y. Kanno<\/strong>. 2017. Detection efficiency of a portable PIT antenna for two small-bodied fishes in a Piedmont stream.\u00a0<strong><em>North American Journal of Fisheries Management <\/em><\/strong>37:1362-1369. <a href=\"http:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/Kelly-et-al.-2017-portable-PIT-antenna-efficiency.pdf\">[PDF]<\/a><\/p>\n<p>Cary, J.B., J.L. Holbrook, M.E. Reed, T.B. Austin, M.S. Steffensen, S. Kim, K.C. Pregler, and\u00a0<strong>Y. Kanno<\/strong>. 2017. Survival of upper Piedmont stream fishes implanted with an 8-mm passive integrated transponder tag.\u00a0<strong><em>Transactions of the American Fisheries Society\u00a0<\/em><\/strong>146:1223-1232.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/cary_et_al_2017_survival_of_piedmond_fish_with_8mm_pit_tags.pdf\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, M.A. Kulp, S.E. Moore, and G.D. Grossman. 2017. Native brook trout and invasive rainbow trout respond differently to seasonal weather variation: spawning timing matters.\u00a0<strong><em>Freshwater Biology\u00a0<\/em><\/strong>62:868-879.\u00a0<span style=\"color: #2a2a2a\"><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2017_btk_vs_rbt_seasonal_weather.pdf\">[PDF]<\/a><\/span><\/p>\n<p>Nathan, L.R.,\u00a0<strong>Y. Kanno<\/strong>, and J.C. Vokoun. 2017. Population demographics influence genetic responses to fragmentation: a demogenetic assessment of the &#8216;one migrant per generation&#8217; rule of thumb.\u00a0<em><strong>Biological Conservation<\/strong><\/em>\u00a0210:261-272.\u00a0<span style=\"color: #2a2a2a\"><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/nathan_et_al._2017_trout_demogenetic_model___barriers.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/span><\/p>\n<p style=\"text-align: center\"><u>2016<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, M.A. Kulp, and S.E. Moore. 2016. Recovery of native brook trout populations following the eradication of nonnative rainbow trout in southern Appalachian Mountains streams.\u00a0<strong><em>North American Journal of Fisheries Management\u00a0<\/em><\/strong>36:1325-1335.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2016_great_smoky_brook_trout_recovery.pdf\">[PDF]<\/a><\/p>\n<p>Barrett, K., C. Guyer, S.T. Samoray, and\u00a0<strong>Y. Kanno<\/strong>. 2016. Stream and riparian habitat use by anurans along a forested gradient in western Georgia, USA.\u00a0<em><strong>Copeia\u00a0<\/strong><\/em>104:570-576.\u00a0<span style=\"color: #2a2a2a\"><a href=\"https:\/\/kannofish.weebly.com\/uploads\/2\/5\/1\/7\/25178052\/barrett_et_al_2016_copeia_anuran_occ.pdf\">[<\/a><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/barrett_etal_2016_copeia_anuran_occ.pdf\">PDF<\/a><a href=\"https:\/\/kannofish.weebly.com\/uploads\/2\/5\/1\/7\/25178052\/barrett_et_al_2016_copeia_anuran_occ.pdf\">]<\/a><\/span><\/p>\n<p><strong>Kanno, Y.<\/strong>, K.C. Pregler, N.P. Hitt, B.H.\u00a0Letcher, D.J. Hocking, and J.E.B. Wofford. 2016. Seasonal temperature and precipitation regulate brook trout young-of-the-year abundance and population dynamics.\u00a0<strong><em>Freshwater Biology\u00a0<\/em><\/strong>61:88-99.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2018\/06\/Kanno-et-al.-2016-FWB-bkt-yoy-and-weather.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p>O&#8217;Bryan, C.J., J.A. Homyack, R.F. Baldwin,\u00a0<strong>Y. Kanno<\/strong>, and A.L. Harrison. 2016. Novel habitat use supports population maintenance in a reconfigured landscape.\u00a0<strong><em>Ecosphere\u00a0<\/em><\/strong>7(3):e01228\u00a0<span style=\"color: #070606\"><a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/obryan_et_al-2016-ecosphere.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/span><\/p>\n<p style=\"text-align: center\"><u>2015<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, B.H. Letcher, N.P. Hitt, D.A. Boughton, J.E.B. Wofford, and E.F. Zipkin. 2015. Seasonal weather patterns drive population vital rates and persistence in a stream fish.\u00a0<strong><em>Global Change Biology<\/em><\/strong><strong><em>\u00a0<\/em><\/strong>21:1856-1870.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2015_gcb_brook_trout.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, B.H.\u00a0Letcher, A.L. Rosner, K.P. O&#8217;Neil, and K.H. Nislow. 2015.\u00a0Environmental factors affecting brook trout occurrence in headwater stream segments.\u00a0<strong><em>Transactions of the American Fisheries Society<\/em><\/strong><strong><em>\u00a0<\/em><\/strong>144:373-382.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al_2015_ct_bkt_occ.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2014<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, B.H. Letcher, J.C. Vokoun, and E.F. Zipkin. 2014. Spatial variability in adult brook trout (<em>Salvelinus fontinalis<\/em>) survival within two intensively surveyed headwater stream networks.\u00a0<strong><em>Canadian Journal of Fisheries and Aquatic Sciences\u00a0<\/em><\/strong>71:1010-1019. <a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2014_ct_bkt_survival_variation.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p>Zipkin, E.F., J.T. Thorson, K. See, H.J. Lynch, E.H.C. Grant,\u00a0<strong>Y. Kanno<\/strong>, R.B. Chandler, B.H. Letcher, and J.A. Royle. 2014. Modeling structured population dynamics using data from unmarked individuals.\u00a0<em><strong>Ecology<\/strong><\/em>\u00a095:22-29.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/zipkin_et_al._2014_ecology_multistate_pop_model.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p>Beauchene, M., M. Becker, C.J. Bellucci, N. Hagstrom, and\u00a0<strong>Y. Kanno<\/strong>. 2014. Defining summer thermal thresholds of fish community transitions in Connecticut streams.\u00a0<strong><em>North American Journal of Fisheries Management\u00a0<\/em><\/strong>34:119-131.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/beauchene_et_al._2014_ct_temp_threhold-1.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, B.H. Letcher, J.A. Coombs, K.H. Nislow, and A.R. Whiteley. 2014. Linking movement and reproductive history of brook trout to assess habitat connectivity in a heterogeneous stream network.\u00a0<em><strong>Freshwater Biology<\/strong><\/em>\u00a059:142-154.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al_2014_bkt_habitat_connectivity.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, and B.H. Letcher. 2014. Paired stream-air temperature measurements reveal fine-scale thermal heterogeneity within headwater brook trout stream networks.\u00a0<strong><em>River Research and Applications<\/em><\/strong>\u00a030:745-755.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al_2014_rra_paired_str_air_temp.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2013<\/u><\/p>\n<p>DiStefano, R.J., T.R. Black, S.S. Herleth-King,\u00a0<strong>Y. Kanno<\/strong>, and H.T. Mattingly. 2013. Life histories of two populations of the imperiled crayfish\u00a0<em>Orconectes<\/em>(<em>Procericambarus<\/em>)\u00a0<em>williamsi<\/em>\u00a0(Decapoda: Cambaridae) in southwestern Missouri, USA.\u00a0<em><strong>Journal of Crustacean Biology<\/strong><\/em>\u00a033: 15-24.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/distefano_et_al._2013_williams_crayfish.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2012<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, W.T. Russ, C.J. Sutherland, and S.B. Cook. 2012. Prioritizing aquatic conservation areas using spatial patterns and partitioning of fish community diversity in a near-natural temperate basin.\u00a0<strong><em>Aquatic Conservation: Marine and Freshwater Ecosystems<\/em><\/strong>\u00a022: 799-812.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2012_fish_comm_diversity_partitioning.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, K.E. Holsinger, and B.H. Letcher. 2012. Estimating size-specific brook trout abundance in continuously sampled headwater streams using Bayesian mixed models with zero inflation and overdispersion.\u00a0<strong><em>Ecology of Freshwater Fish<\/em><\/strong>\u00a021: 404-419.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2012_brook_trout_abundance_models.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, C.U. Schmidt, S.B. Cook, and H.T. Mattingly. 2012. Variation in microhabitat use of the threatened spotfin chub (<em>Erimonax monachus<\/em>) among stream sites and seasons.\u00a0<strong><em>Ecology of Freshwater Fish<\/em><\/strong>\u00a021: 363-374.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2012_spotfin_chub.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>2011<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, and B.H. Letcher. 2011. Fine-scale population structure and riverscape genetics of brook trout (<em>Salvelinus fontinalis<\/em>) distributed continuously along headwater channel networks.\u00a0<strong><em>Molecular Ecology<\/em><\/strong>\u00a020: 3711-3729.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2011_mec_brook_trout.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, and B.H. Letcher. 2011. Sibship reconstruction for inferring mating systems, dispersal and effective population size in headwater brook trout (<em>Salvelinus fontinalis<\/em>) populations.\u00a0<strong><em>Conservation Genetics<\/em><\/strong>\u00a012: 619-628.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2011_conserv_genet.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p style=\"text-align: center\"><u>\u200b2010 and earlier<\/u><\/p>\n<p><strong>Kanno, Y.<\/strong>, and J.C. Vokoun. 2010. Evaluating effects of water withdrawals and impoundments on fish assemblages in southern New England streams, USA.\u00a0<strong><em>Fisheries Management and Ecology<\/em><\/strong>\u00a017: 272-283.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_and_vokoun_2010_withdrawal_impact.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, and M. Beauchene. 2010. Development of dual fish multi-metric indices of biological condition for streams with characteristic thermal gradients and low species richness.\u00a0<strong><em>Ecological Indicators<\/em><\/strong>\u00a010: 565-571.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al._2010_dual_mmi.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, J.C. Vokoun, D.D. Dauwalter, R.M. Hughes, A.T. Herlihy, T.R. Maret, and T.M. Patton. 2009. Influence of rare species on electrofishing distance when estimating species richness of stream and river reaches.\u00a0<strong><em>Transactions of the American Fisheries Society<\/em><\/strong>\u00a0138: 1240-1251.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/kanno_et_al_2009_electrofishing_distance.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p><strong>Kanno, Y.<\/strong>, and J.C. Vokoun. 2008. Biogeography of stream fishes in Connecticut: defining faunal regions and assemblage types.\u00a0<em><strong>Northeastern Naturalist<\/strong><\/em>15: 557-576.\u00a0<a href=\"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-content\/uploads\/sites\/112\/2017\/11\/stream_fish_biogeography_kanno_and_vokoun_2008.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">[PDF]<\/a><\/p>\n<p>Bourret, S.J., R.W. Tingley, III,\u00a0<strong>Y. Kanno<\/strong>, and J.C. Vokoun. 2008. Maximum daily consumption and specific daily metabolic demand of juvenile flathead catfish.\u00a0<em><strong>Journal of Freshwater Ecology<\/strong><\/em>\u00a023: 413-419.<\/p>\n<p><strong>Kanno, Y.<\/strong>, and J. MacMillan. 2004. Developing an index of sustainable coldwater streams using fish community attributes in River Philip, Nova Scotia.\u00a0<em><strong>Proceedings of the Nova Scotian Institute of Science<\/strong><\/em>\u00a042: 319-338.<\/p>\n<p><strong>Kanno, Y.<\/strong>, and K. Beazley. 2004. Freshwater fish considerations for aquatic conservation systems planning in Nova Scotia.\u00a0<em><strong>Proceedings of the Nova Scotian Institute of Science<\/strong><\/em>\u00a042: 375-391.[\/vc_column_text][\/vc_column][\/vc_row]<\/p>\n<\/div>","protected":false},"excerpt":{"rendered":"<p>[vc_row][vc_column][vc_column_text]Google Scholar ResearchGate [\/vc_column_text][\/vc_column][\/vc_row][vc_row][vc_column width=&#8221;1\/2&#8243;][vc_single_image image=&#8221;40&#8243; img_size=&#8221;large&#8221; style=&#8221;vc_box_shadow_3d&#8221;][\/vc_column][vc_column width=&#8221;1\/2&#8243;][vc_single_image image=&#8221;41&#8243; img_size=&#8221;large&#8221; alignment=&#8221;right&#8221; style=&#8221;vc_box_shadow_3d&#8221;][\/vc_column][\/vc_row][vc_row][vc_column][vc_column_text css=&#8221;&#8221;] 2026 Paul, B., K.C. Pregler, S. Kim, and Y. Kanno. 2026. A multispecies, multiseason evaluation of body condition effects on fish survival in a coolwater stream. Transactions of the American Fisheries Society. Futamura, R., K. Morita, J. Uchida, A. Okuda, Y. [&hellip;]<\/p>\n","protected":false},"author":144,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-10","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/pages\/10","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/users\/144"}],"replies":[{"embeddable":true,"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/comments?post=10"}],"version-history":[{"count":207,"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/pages\/10\/revisions"}],"predecessor-version":[{"id":810,"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/pages\/10\/revisions\/810"}],"wp:attachment":[{"href":"https:\/\/sites.warnercnr.colostate.edu\/kanno\/wp-json\/wp\/v2\/media?parent=10"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}