Juvenile Salmonid Use of Reconnected Tidal Freshwater Wetlands in Grays River, Lower Columbia River Basin

被引:38
作者
Roegner, G. Curtis [1 ]
Dawley, Earl W.
Russell, Micah [2 ]
Whiting, Allan [2 ]
Teel, David J. [3 ]
机构
[1] Natl Ocean & Atmospher Adm Fisheries, NW Fisheries Sci Ctr, Point Adams Biol Field Stn, Hammond, OR 97121 USA
[2] Columbia River Estuary Study Taskforce, Astoria, OR 97103 USA
[3] Natl Ocean & Atmospher Adm Fisheries, NW Fisheries Sci Ctr, Manchester Res Lab, Manchester, WA 98353 USA
关键词
CHINOOK SALMON; ONCORHYNCHUS-TSHAWYTSCHA; FRASER-RIVER; COHO SALMON; HABITAT; ESTUARY; FLOODPLAIN; MARSH; TRIBUTARIES; RESIDENCE;
D O I
10.1577/T09-082.1
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Degraded wetland systems with impaired hydraulic connections have resulted in diminished habitat opportunity for salmonid fishes and other native flora and fauna in the Pacific Northwest. Many of these lost habitats were once intertidal freshwater marshes and swamps. Restoration of these systems is effected in part by reestablishing tidal processes that promote connectivity, with a central goal of restoring rearing habitat for juvenile Pacific salmon Oncorhynchus spp. In the Grays River tidal freshwater system of Washington, we measured hydrologic changes that resulted from the removal of tide gates from diked pastureland and we determined the subsequent time series of salmonid abundance and size frequency in the restoring marshes. Dike breaching caused an immediate return of full semidiurnal tidal fluctuations to the pasturelands. Juvenile Pacific salmonids quickly expanded into this newly available habitat and used prey items that were presumably produced within the marshes. Habitat use varied by species and life history stage. Fry of chum salmon O. keta migrated rapidly through the system, whereas populations of Chinook salmon O. tshawytscha and coho salmon O. kisutch resided from March to at least July and were composed of fry, fingerlings, and (for coho salmon) yearlings. Based on salmon size at date and the timing of hatchery releases, we concluded that most salmon sampled in restored and reference sites were the progeny of natural spawners. However, the presence of adipose-fin-clipped Chinook salmon indicated that hatchery-raised fish originating outside the Grays River system also used the restoring wetland habitat. Because of extensive mixing of stocks through hatchery practices, genetic analyses did not provide additional insight into the origins of the Chinook salmon but did reveal that out-migrating juveniles were an admixed population composed of lower Columbia River ancestry and nonindigenous Rogue River stock. Restoration of tidal wetlands in the Columbia River estuary will improve overall ecosystem connectivity and reduce habitat fragmentation and may therefore increase survival of a variety of Pacific salmon stocks during migration.
引用
收藏
页码:1211 / 1232
页数:22
相关论文
共 68 条
  • [1] [Anonymous], 2005, NMFS NWFSC 66
  • [2] [Anonymous], 2005, CIVIL ENV ENG FACULT
  • [3] Baker C. F., 2008, THESIS OREGON STATE
  • [4] Bottom D.L., 2008, SALMON LIFE HIST HAB
  • [5] Patterns of Chinook salmon migration and residency in the Salmon River estuary (Oregon)
    Bottom, DL
    Jones, KK
    Cornwell, TJ
    Gray, A
    Simenstad, CA
    [J]. ESTUARINE COASTAL AND SHELF SCIENCE, 2005, 64 (01) : 79 - 93
  • [6] Ecology of juvenile chinook salmon in a small non-natal stream of the Yukon River drainage and the role of ice conditions on their distribution and survival
    Bradford, MJ
    Grout, JA
    Moodie, S
    [J]. CANADIAN JOURNAL OF ZOOLOGY, 2001, 79 (11) : 2043 - 2054
  • [7] Energy density of patagonian aquatic organisms and empirical predictions based on water content
    Ciancio, Javier E.
    Pascual, Miguel A.
    Beauchamp, David A.
    [J]. TRANSACTIONS OF THE AMERICAN FISHERIES SOCIETY, 2007, 136 (05) : 1415 - 1422
  • [8] Physical and functional responses to experimental marsh surface elevation manipulation in Coos Bay's South Slough
    Cornu, CE
    Sadro, S
    [J]. RESTORATION ECOLOGY, 2002, 10 (03) : 474 - 486
  • [9] DAWLEY EM, 1985, FNWC74 NMFS NOAA
  • [10] Diefenderfer HL, 2008, RESTORATION ECOLOGY, V17, P158