A Comparison of Primary Production in Stream Ecosystems

1997; University of Chicago Press; Volume: 16; Issue: 1 Linguagem: Inglês

10.2307/1468241

ISSN

1937-237X

Autores

Gary A. Lamberti, Alan D. Steinman,

Tópico(s)

Soil and Water Nutrient Dynamics

Resumo

Previous articleNext article No AccessStream Organic Matter BudgetsA Comparison of Primary Production in Stream EcosystemsGary A. Lamberti and Alan D. SteinmanGary A. Lamberti and Alan D. SteinmanPDFPDF PLUS Add to favoritesDownload CitationTrack CitationsPermissionsReprints Share onFacebookTwitterLinkedInRedditEmail SectionsMoreDetailsFiguresReferencesCited by Volume 16, Number 1Mar., 1997 Article DOIhttps://doi.org/10.2307/1468241 Views: 47Total views on this site Citations: 111Citations are reported from Crossref Journal History This article was published in the Journal of the North American Benthological Society (1986-2011), which is continued by Freshwater Science (2012-present). Copyright 1997 The North American Benthological SocietyPDF download Crossref reports the following articles citing this article:Fernando R. Carvallo, Bradley A. Strickland, Sean K. Kinard, Brandi Kiel Reese, James Derek Hogan, Christopher J. 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McKnight The Hydroecology of an Ephemeral Wetland in the McMurdo Dry Valleys, Antarctica, Journal of Geophysical Research: Biogeosciences 124, no.1212 (Dec 2019): 3814–3830.https://doi.org/10.1029/2019JG005153Soma Das Sarkar, Malay Naskar, Pranab Gogoi, Rohan Kumar Raman, Ranjan Kumar Manna, Srikanta Samanta, Bimal Prasanna Mohanty, Basanta Kumar Das, Francois G. Schmitt Impact assessment of barge trafficking on phytoplankton abundance and Chl a concentration, in River Ganga, India, PLOS ONE 14, no.99 (Sep 2019): e0221451.https://doi.org/10.1371/journal.pone.0221451Philip Savoy, Alison P. Appling, James B. Heffernan, Edward G. Stets, Jordan S. Read, Judson W. Harvey, Emily S. Bernhardt Metabolic rhythms in flowing waters: An approach for classifying river productivity regimes, Limnology and Oceanography 64, no.55 (Mar 2019): 1835–1851.https://doi.org/10.1002/lno.11154Jacob M. Dyste, H. Maurice Valett Assessing stream channel restoration: the phased recovery framework, Restoration Ecology 27, no.44 (Mar 2019): 850–861.https://doi.org/10.1111/rec.12926Adam G. Yates, Joseph M. Culp, David G. Armanini, Donald J. Baird, Timothy D. Jardine, and Jessica M. Orlofske Enhancing bioassessment approaches: development of a river services assessment framework, Freshwater Science 38, no.11 (Feb 2019): 12–22.https://doi.org/10.1086/701674Francine H. Mejia, Alexander K. Fremier, Joseph R. Benjamin, J. Ryan Bellmore, Adrianne Z. Grimm, Grace A. Watson, Michael Newsom Stream metabolism increases with drainage area and peaks asynchronously across a stream network, Aquatic Sciences 81, no.11 (Dec 2018).https://doi.org/10.1007/s00027-018-0606-zElizabeth L. Nebgen, Kyle S. Herrman Effects of shading on stream ecosystem metabolism and water temperature in an agriculturally influenced stream in central Wisconsin, USA, Ecological Engineering 126 (Jan 2019): 16–24.https://doi.org/10.1016/j.ecoleng.2018.10.023Megumu Fujibayashi, Yoshie Miura, Reina Suganuma, Shinji Takahashi, Takashi Sakamaki, Naoyuki Miyata, So Kazama , Biomolecules 9, no.99 ( 2019): 487.https://doi.org/10.3390/biom9090487John R. Gardner, Martin W. Doyle Sediment–Water Surface Area Along Rivers: Water Column Versus Benthic, Ecosystems 21, no.88 (Mar 2018): 1505–1520.https://doi.org/10.1007/s10021-018-0236-2Jie Wang, Xiangming Xiao, Yao Zhang, Yuanwei Qin, Russell B. Doughty, Xiaocui Wu, Rajen Bajgain, Ling Du Enhanced gross primary production and evapotranspiration in juniper‐encroached grasslands, Global Change Biology 24, no.1212 (Oct 2018): 5655–5667.https://doi.org/10.1111/gcb.14441Courtney J. Reijo, Robert T. Hensley, and Matthew J. Cohen Isolating stream metabolism and nitrate processing at point-scales, and controls on heterogeneity, Freshwater Science 37, no.22 (Feb 2018): 238–250.https://doi.org/10.1086/697319W. Carl Saunders, Nicolaas Bouwes, Peter McHugh, Chris E. Jordan A network model for primary production highlights linkages between salmonid populations and autochthonous resources, Ecosphere 9, no.33 (Mar 2018): e02131.https://doi.org/10.1002/ecs2.2131Carla L. Atkinson, Daniel C. Allen, Lisa Davis, Zachary L. Nickerson Incorporating ecogeomorphic feedbacks to better understand resiliency in streams: A review and directions forward, Geomorphology 305 (Mar 2018): 123–140.https://doi.org/10.1016/j.geomorph.2017.07.016E. S. Bernhardt, J. B. Heffernan, N. B. Grimm, E. H. Stanley, J. W. Harvey, M. Arroita, A. P. Appling, M. J. Cohen, W. H. McDowell, R. O. Hall, J. S. Read, B. J. Roberts, E. G. Stets, C. B. Yackulic The metabolic regimes of flowing waters, Limnology and Oceanography 63, no.S1S1 (Oct 2017).https://doi.org/10.1002/lno.10726Lindsey K. Albertson, Valerie Ouellet, Melinda D. Daniels Impacts of stream riparian buffer land use on water temperature and food availability for fish, Journal of Freshwater Ecology 33, no.11 (Feb 2018): 195–210.https://doi.org/10.1080/02705060.2017.1422558Aline Ortega-Pieck, Alexander K. Fremier, Cailin Huyck Orr Agricultural influences on the magnitude of stream metabolism in humid tropical headwater streams, Hydrobiologia 799, no.11 (Apr 2017): 49–64.https://doi.org/10.1007/s10750-017-3204-5Thomas Fuß, Barbara Behounek, Amber J. Ulseth, Gabriel A. Singer Land use controls stream ecosystem metabolism by shifting dissolved organic matter and nutrient regimes, Freshwater Biology 62, no.33 (Jan 2017): 582–599.https://doi.org/10.1111/fwb.12887Matthew J. Kaylor, Dana R. Warren, and Peter M. Kiffney Long-term effects of riparian forest harvest on light in Pacific Northwest (USA) streams, Freshwater Science 36, no.11 (Dec 2016): 1–13.https://doi.org/10.1086/690624Laurel Genzoli and Robert O. Hall Jr Shifts in Klamath River metabolism following a reservoir cyanobacterial bloom, Freshwater Science 35, no.33 (Jun 2016): 795–809.https://doi.org/10.1086/687752Quenton M. Tuckett and Peter Koetsier Mid- and long-term effects of wildfire and debris flows on stream ecosystem metabolism, Freshwater Science 35, no.22 (Mar 2016): 445–456.https://doi.org/10.1086/686151S. Mažeika P. Sullivan, Katie Hossler, Christina M. Cianfrani Ecosystem Structure Emerges as a Strong Determinant of Food-Chain Length in Linked Stream–Riparian Ecosystems, Ecosystems 18, no.88 (Jul 2015): 1356–1372.https://doi.org/10.1007/s10021-015-9904-7Karoline Wagner, Katharina Besemer, Nancy R. Burns, Tom J. Battin, Mia M. Bengtsson Light availability affects stream biofilm bacterial community composition and function, but not diversity, Environmental Microbiology 17, no.1212 (Jul 2015): 5036–5047.https://doi.org/10.1111/1462-2920.12913Justin K. Reale, David J. Van Horn, Katherine E. Condon, and Clifford N. Dahm The effects of catastrophic wildfire on water quality along a river continuum, Freshwater Science 34, no.44 (Nov 2015): 1426–1442.https://doi.org/10.1086/684001Bradley J. Austin, Natalia Hardgrave, Ethan Inlander, Cory Gallipeau, Sally Entrekin, Michelle A. Evans-White Stream primary producers relate positively to watershed natural gas measures in north-central Arkansas streams, Science of The Total Environment 529 (Oct 2015): 54–64.https://doi.org/10.1016/j.scitotenv.2015.05.030Noel R. Swain, John D. Reynolds, James P. Meador Effects of Salmon-Derived Nutrients and Habitat Characteristics on Population Densities of Stream-Resident Sculpins, PLOS ONE 10, no.66 (Jun 2015): e0116090.https://doi.org/10.1371/journal.pone.0116090Monica Elisa Bleich, Maria Teresa Fernandez Piedade, Amanda Frederico Mortati, Thiago André Autochthonous primary production in southern Amazon headwater streams: Novel indicators of altered environmental integrity, Ecological Indicators 53 (Jun 2015): 154–161.https://doi.org/10.1016/j.ecolind.2015.01.040John D. Wehr, Robert G. Sheath Habitats of Freshwater Algae, (Jan 2015): 13–74.https://doi.org/10.1016/B978-0-12-385876-4.00002-5Jennifer N. Harding, John D. Reynolds Opposing forces: Evaluating multiple ecological roles of Pacific salmon in coastal stream ecosystems, Ecosphere 5, no.1212 (Dec 2014): art157.https://doi.org/10.1890/ES14-00207.1Gerard Carmona-Catot, Alejandra F. G. N. Santos, Pablo A. Tedesco, Emili García-Berthou Quantifying seasonality along a latitudinal gradient: from stream temperature to growth of invasive mosquitofish, Ecosphere 5, no.1010 (Oct 2014): art134.https://doi.org/10.1890/ES14-00163.1Jason J. Venkiteswaran, Sherry L. Schiff, Marcus B. Wallin, Ben Bond-Lamberty Large Carbon Dioxide Fluxes from Headwater Boreal and Sub-Boreal Streams, PLoS ONE 9, no.77 (Jul 2014): e101756.https://doi.org/10.1371/journal.pone.0101756Jennifer N. Harding, Joel M. S. Harding, John D. Reynolds Movers and shakers: nutrient subsidies and benthic disturbance predict biofilm biomass and stable isotope signatures in coastal streams, Freshwater Biology 59, no.77 (Mar 2014): 1361–1377.https://doi.org/10.1111/fwb.12351M. V. McPhee, D. C. Whited, K. V. Kuzishchin, J. A. Stanford The effects of riverine physical complexity on anadromy and genetic diversity in steelhead or rainbow trout Oncorhynchus mykiss around the Pacific Rim, Journal of Fish Biology 85, no.11 (Apr 2014): 132–150.https://doi.org/10.1111/jfb.12286Jhon Donato, Yaira Abuhatab, Sergi Sabater Epilithic biofilm metabolism during the high water flow period in an Andean neotropical stream, Hydrobiologia 728, no.11 (Jan 2014): 41–50.https://doi.org/10.1007/s10750-014-1804-xNoel R. Swain, Morgan D. Hocking, Jennifer N. Harding, John D. Reynolds, John Richardson Effects of salmon on the diet and condition of stream-resident sculpins, Canadian Journal of Fisheries and Aquatic Sciences 71, no.44 (Apr 2014): 521–532.https://doi.org/10.1139/cjfas-2013-0159John A. Downing Productivity of Freshwater Ecosystems and Climate Change, (Jul 2014): 221–229.https://doi.org/10.1007/978-94-007-5784-4_127Megan L. Fork, James B. Heffernan Direct and Indirect Effects of Dissolved Organic Matter Source and Concentration on Denitrification in Northern Florida Rivers, Ecosystems 17, no.11 (Sep 2013): 14–28.https://doi.org/10.1007/s10021-013-9705-9K.J. Collier, J.E. Clapcott, M.P. Hamer, R.G. Young Extent estimates and land cover relationships for functional indicators in non-wadeable rivers, Ecological Indicators 34 (Nov 2013): 53–59.https://doi.org/10.1016/j.ecolind.2013.04.010Hyun-Seon Shin, Nozomi Amahashi, Osamu Mitamura Trophic position and growth stages of Caddisfly (Stenopsyche marmorata Navas) larvae in the Echi River, Japan, Limnology 14, no.33 (Apr 2013): 283–291.https://doi.org/10.1007/s10201-013-0406-zS. Bizzi, Ben W. J. Surridge, David N. Lerner STRUCTURAL EQUATION MODELLING: A NOVEL STATISTICAL FRAMEWORK FOR EXPLORING THE SPATIAL DISTRIBUTION OF BENTHIC MACROINVERTEBRATES IN RIVERINE ECOSYSTEMS, River Research and Applications 29, no.66 (Feb 2012): 743–759.https://doi.org/10.1002/rra.2563Therese C. Frauendorf, Checo Colón-Gaud, Matt R. Whiles, Thomas R. Barnum, Karen R. Lips, Cathy M. Pringle, Susan S. Kilham Energy flow and the trophic basis of macroinvertebrate and amphibian production in a neotropical stream food web, Freshwater Biology 58, no.77 (Mar 2013): 1340–1352.https://doi.org/10.1111/fwb.12131S. Mažeika P. Sullivan1 Stream foodweb δ13C and geomorphology are tightly coupled in mountain drainages of northern Idaho, Freshwater Science 32, no.22 (Jul 2015): 606–621.https://doi.org/10.1899/12-101.1Robert M. Northington, Jackson R. Webster, Ernest F. Benfield, Beth M. Cheever, Barbara R. Niederlehner, Sarah C. Davis Ecosystem Function in Appalachian Headwater Streams during an Active Invasion by the Hemlock Woolly Adelgid, PLoS ONE 8, no.44 (Apr 2013): e61171.https://doi.org/10.1371/journal.pone.0061171Peter S. Levi, Jennifer L. Tank, Janine Rüegg, David J. Janetski, Scott D. Tiegs, Dominic T. Chaloner, Gary A. Lamberti Whole-Stream Metabolism Responds to Spawning Pacific Salmon in Their Native and Introduced Ranges, Ecosystems 16, no.22 (Nov 2012): 269–283.https://doi.org/10.1007/s10021-012-9613-4Ayron M. Strauch Interactions between soil, rainfall, and wildlife drive surface water quality across a savanna ecosystem, Ecohydrology 6, no.11 (Jan 2012): 94–103.https://doi.org/10.1002/eco.1246Matthew S. Kornis, Sapna Sharma, M. Jake Vander Zanden, Anthony Ricciardi Invasion success and impact of an invasive fish, round goby, in Great Lakes tributaries, Diversity and Distributions 19, no.22 (Sep 2012): 184–198.https://doi.org/10.1111/ddi.12001C. J. Davis, C. H. Fritsen, E. D. Wirthlin, J. C. Memmott HIGH RATES OF PRIMARY PRODUCTIVITY IN A SEMI-ARID TAILWATER: IMPLICATIONS FOR SELF-REGULATED PRODUCTION, River Research and Applications 28, no.1010 (Aug 2011): 1820–1829.https://doi.org/10.1002/rra.1573Caroline Chan, John F Heinbokel, John A Myers, Robert R Jacobs A dynamic model using monitoring data and watershed characteristics to project fish tissue mercury concentrations in stream systems, Integrated Environmental Assessment and Management 8, no.44 (Apr 2012): 709–722.https://doi.org/10.1002/ieam.1302Naoto F. Ishikawa, Hideyuki Doi, Jacques C. Finlay Global meta-analysis for controlling factors on carbon stable isotope ratios of lotic periphyton, Oecologia 170, no.22 (Mar 2012): 541–549.https://doi.org/10.1007/s00442-012-2308-xMargaret G. Forbes, Robert D. Doyle, J. Thad Scott, Jacob K. Stanley, Hui Huang, Barry A. Fulton, Bryan W. Brooks Carbon sink to source: longitudinal gradients of planktonic P:R ratios in subtropical reservoirs, Biogeochemistry 107, no.1-31-3 (Oct 2010): 81–93.https://doi.org/10.1007/s10533-010-9533-3Simon A. Townsend,* Ian T. Webster,† and Julia H. Schult‡ Metabolism in a groundwater-fed river system in the Australian wet/dry tropics: tight coupling of photosynthesis and respiration, Journal of the North American Benthological Society 30, no.33 (Jul 2015): 603–620.https://doi.org/10.1899/10-066.1Jacques C. Finlay Stream size and human influences on ecosystem production in river networks, Ecosphere 2, no.88 (Aug 2011): art87.https://doi.org/10.1890/ES11-00071.1V. Acuña,5 C. Vilches,6 and A. Giorgi7 As productive and slow as a stream can be—the metabolism of a Pampean stream, Journal of the North American Benthological Society 30, no.11 (Jul 2015): 71–83.https://doi.org/10.1899/09-082.1K. L. Page, R. C. Dalal Contribution of natural and drained wetland systems to carbon stocks, CO2, N2O, and CH4 fluxes: an Australian perspective, Soil Research 49, no.55 (Jan 2011): 377.https://doi.org/10.1071/SR11024Daniel J. McGarvey,1 John M. Johnston,2 and M. Craig Barber3 Predicting fish densities in lotic systems: a simple modeling approach, Journal of the North American Benthological Society 29, no.44 (Jul 2015): 1212–1227.https://doi.org/10.1899/09-094.1Jan J. Verspoor, Douglas C. Braun, John D. Reynolds Quantitative Links Between Pacific Salmon and Stream Periphyton, Ecosystems 13, no.77 (Sep 2010): 1020–1034.https://doi.org/10.1007/s10021-010-9371-0Elizabeth M. Hagen, Matthew E. McTammany, Jackson R. Webster, Ernest F. Benfield Shifts in allochthonous input and autochthonous production in streams along an agricultural land-use gradient, Hydrobiologia 655, no.11 (Aug 2010): 61–77.https://doi.org/10.1007/s10750-010-0404-7MELODY J. BERNOT, DANIEL J. SOBOTA, ROBERT O. HALL, PATRICK J. MULHOLLAND, WALTER K. DODDS, JACKSON R. WEBSTER, JENNIFER L. TANK, LINDA R. ASHKENAS, LEE W. COOPER, CLIFFORD N. DAHM, STANLEY V. GREGORY, NANCY B. GRIMM, STEPHEN K. HAMILTON, SHERRI L. JOHNSON, WILLIAM H. MCDOWELL, JUDITH L. MEYER, BRUCE PETERSON, GEOFFREY C. POOLE, H. MAURICE VALETT, CLAY ARANGO, JAKE J. BEAULIEU, AMY J. BURGIN, CHELSEA CRENSHAW, ASHLEY M. HELTON, LAURA JOHNSON, JEFF MERRIAM, B. R. NIEDERLEHNER, JONATHAN M. O'BRIEN, JODY D. POTTER, RICHARD W. SHEIBLEY, SUZANNE M. THOMAS, KYM WILSON Inter-regional comparison of land-use effects on stream metabolism, Freshwater Biology 55, no.99 (Jun 2010): 1874–1890.https://doi.org/10.1111/j.1365-2427.2010.02422.xJennifer L. Tank,3 Emma J. Rosi-Marshall,4 Natalie A. Griffiths,5 Sally A. Entrekin,6 and Mia L. Stephen7 A review of allochthonous organic matter dynamics and metabolism in streams, Journal of the North American Benthological Society 29, no.11 (Jul 2015): 118–146.https://doi.org/10.1899/08-170.1Mary E. Ogdahl, Vanessa L. Lougheed, R. Jan Stevenson, Alan D. Steinman Influences of Multi-Scale Habitat on Metabolism in a Coastal Great Lakes Watershed, Ecosystems 13, no.22 (Feb 2010): 222–238.https://doi.org/10.1007/s10021-009-9312-yJanet K. Lynch, Cory M. Beatty, Matthew P. Seidel, Laura J. Jungst, Michael D. DeGrandpre Controls of riverine CO 2 over an annual cycle determined using direct, high temporal resolution p CO 2 measurements, Journal of Geophysical Research 115, no.G3G3 (Aug 2010).https://doi.org/10.1029/2009JG001132CHAD W. HARGRAVE, KAITLEN P. GARY, SAMIR K. ROSADO Potential effects of elevated atmospheric carbon dioxide on benthic autotrophs and consumers in stream ecosystems: a test using experimental stream mesocosms, Global Change Biology 15, no.1111 (Nov 2009): 2779–2790.https://doi.org/10.1111/j.1365-2486.2009.01897.xEmma F. Betts, Jeremy B. Jones Impact of Wildfire on Stream Nutrient Chemistry and Ecosystem Metabolism in Boreal Forest Catchments of Interior Alaska, Arctic, Antarctic, and Alpine Research 41, no.44 (Nov 2009): 407–417.https://doi.org/10.1657/1938-4246-41.4.407John L. Sabo, Jacques C. Finlay, David M. Post Food Chains in Freshwaters, Annals of the New York Academy of Sciences 1162, no.11 (Apr 2009): 187–220.https://doi.org/10.1111/j.1749-6632.2009.04445.xHideyuki Doi Spatial patterns of autochthonous and allochthonous resources in aquatic food webs, Population Ecology 51, no.11 (Nov 2008): 57–64.https://doi.org/10.1007/s10144-008-0127-zJ. T. Kennedy, S. C. Whalen Seasonality and controls of phytoplankton productivity in the middle Cape Fear River, USA, Hydrobiologia 598, no.11 (Sep 2007): 203–217.https://doi.org/10.1007/s10750-007-9151-9Peter M. Davies, Stuart E. Bunn, Stephen K. Hamilton Primary Production in Tropical Streams and Rivers, (Jan 2008): 23–42.https://doi.org/10.1016/B978-012088449-0.50004-2Ben Gawne, Chester Merrick, David G. Williams, Gavin Rees, Rod Oliver, P. M. Bowen, Simon Treadwell, Gillian Beattie, Iain Ellis, Judy Frankenberg, Zygmunt Lorenz Patterns of primary and heterotrophic productivity in an arid lowland river, River Research and Applications 23, no.1010 (Jan 2007): 1070–1087.https://doi.org/10.1002/rra.1033Camille McNeely, Mary E. Power SPATIAL VARIATION IN CADDISFLY GRAZING REGIMES WITHIN A NORTHERN CALIFORNIA WATERSHED, Ecology 88, no.1010 (Oct 2007): 2609–2619.https://doi.org/10.1890/06-0796.1Jacques C. Finlay, Vance T. Vredenburg INTRODUCED TROUT SEVER TROPHIC CONNECTIONS IN WATERSHEDS: CONSEQUENCES FOR A DECLINING AMPHIBIAN, Ecology 88, no.99 (Sep 2007): 2187–2198.https://doi.org/10.1890/06-0344.1Gary A. Lamberti, Jack W. Feminella, Catherine M. Pringle Primary Producer-Consumer Interactionsce, (Jan 2007): 537–559.https://doi.org/10.1016/B978-012332908-0.50034-6Hideyuki Doi, Yasuhiro Takemon, Taichi Ohta, Yuko Ishida, Eisuke Kikuchi Effects of reach-scale canopy cover on trophic pathways of caddisfly larvae in a Japanese mountain stream, Marine and Freshwater Research 58, no.99 (Jan 2007): 811.https://doi.org/10.1071/MF07067Camille McNeely,* Sandra M. Clinton,† and Jacqueline M. Erbe‡ Landscape variation in C sources of scraping primary consumers in streams, Journal of the North American Benthological Society 25, no.44 (Jul 2015): 787–799.https://doi.org/10.1899/0887-3593(2006)025[0787:LVICSO]2.0.CO;2RODERICK L. OLIVER, CHESTER J. MERRICK Partitioning of river metabolism identifies phytoplankton as a major contributor in the regulated Murray River (Australia), Freshwater Biology 51, no.66 (Jun 2006): 1131–1148.https://doi.org/10.1111/j.1365-2427.2006.01562.xRobert Kent, Kenneth Belitz, Carmen A. Burton ALGAL PRODUCTIVITY AND NITRATE ASSIMILATION IN AN EFFLUENT DOMINATED CONCRETE LINED STREAM, Journal of the American Water Resources Association 41, no.55 (Oct 2005): 1109–1128.https://doi.org/10.1111/j.1752-1688.2005.tb03788.xMichael A. Chadwick, Alexander D. Huryn Effects of atmospheric N deposition on coarse organic matter in a headwater stream, Hydrobiologia 532, no.1-31-3 (Jan 2005): 167–179.https://doi.org/10.1007/s10750-004-9528-yVicenc Acuna, Adonis Giorgi, Isabel Munoz, Urs Uehlinger, Sergi Sabater Flow extremes and benthic organic matter shape the metabolism of a headwater Mediterranean stream, Freshwater Biology 49, no.77 (Jul 2004): 960–971.https://doi.org/10.1111/j.1365-2427.2004.01239.xDarren S. Ryder1 Response of epixylic biofilm metabolism to water level variability in a regulated floodplain river, Journal of the North American Benthological Society 23, no.22 (Sep 2015): 214–223.https://doi.org/10.1899/0887-3593(2004)023 2.0.CO;2Stuart E. Bunn, Peter M. Davies, Michelle Winning Sources of organic carbon supporting the food web of an arid zone floodplain river, Freshwater Biology 48, no.44 (Mar 2003): 619–635.https://doi.org/10.1046/j.1365-2427.2003.01031.xLaura G. Leff Stream Microbiology, (Jan 2003).https://doi.org/10.1002/0471263397.env290U. Uehlinger, R. Zah Organic Matter Dynamics, (Jan 2003): 199–215.https://doi.org/10.1007/978-94-017-0181-5_12N.F. Caraco, J.J. Cole The Importance of Organic Nitrogen Production in Aquatic Systems, (Jan 2003): 263–283.https://doi.org/10.1016/B978-012256371-3/50012-3John D. Wehr, Robert G. Sheath FRESHWATER HABITATS OF ALGAE, (Jan 2003): 11–57.https://doi.org/10.1016/B978-012741550-5/50003-9Olivier Dangles Functional plasticity of benthic macroinvertebrates: implications for trophic dynamics in acid streams, Canadian Journal of Fisheries and Aquatic Sciences 59, no.99 (Sep 2002): 1563–1573.https://doi.org/10.1139/f02-122Emma J. Rosi-Marshall, J. Bruce Wallace Invertebrate food webs along a stream resource gradient, Freshwater Biology 47, no.11 (Jan 2002): 129–141.https://doi.org/10.1046/j.1365-2427.2002.00786.xRainer Zah, Urs Uehlinger Particulate organic matter inputs to a glacial stream ecosystem in the Swiss Alps, Freshwater Biology 46, no.1212 (Jan 2002): 1597–1608.https://doi.org/10.1046/j.1365-2427.2001.00847.xJacques C. Finlay STABLE-CARBON-ISOTOPE RATIOS OF RIVER BIOTA:IMPLICATIONS FOR ENERGY FLOW IN LOTIC FOOD WEBS, Ecology 82, no.44 (Apr 2001): 1052–1064.https://doi.org/10.1890/0012-9658(2001)082[1052:SCIROR]2.0.CO;2S. Sabater, J. Armengol, E. Comas, F. Sabater, I. Urrizalqui, I. Urrutia Algal biomass in a disturbed Atlantic river: water quality relationships and environmental implications, Science of The Total Environment 263, no.1-31-3 (Dec 2000): 185–195.https://doi.org/10.1016/S0048-9697(00)00702-6J Chételat, F R Pick, A Morin, P B Hamilton Periphyton biomass and community composition in rivers of different nutrient status, Canadian Journal of Fisheries and Aquatic Sciences 56, no.44 (Apr 1999): 560–569.https://doi.org/10.1139/f98-197Niall Broekhuizen, John M. Quinn Influences of stream size and catchment land‐use on fine particulate organic matter retention in streams, New Zealand Journal of Marine and Freshwater Research 32, no.44 (Dec 1998): 581–590.https://doi.org/10.1080/00288330.1998.9516846M. Pusch, D. Fiebig, I. Brettar, H. Eisenmann, B. K. Ellis, L. A. Kaplan, M. A. Lock, M. W. Naegeli, W. Traunspurger The role of micro-organisms in the ecological connectivity of running waters, Freshwater Biology 40, no.33 (Nov 1998): 453–495.https://doi.org/10.1046/j.1365-2427.1998.00372.x J. R. Webster , and J. L. Meyer Stream Organic Matter Budgets: An Introduction, Journal of the North American Benthological Society 16, no.11 (Nov 2015): 3–13.https://doi.org/10.2307/1468223 J. R. Webster , and Judy L. Meyer Organic Matter Budgets for Streams: A Synthesis, Journal of the North American Benthological Society 16, no.11 (Nov 2015): 141–161.https://doi.org/10.2307/1468247 Walter K. Dodds Distribution of Runoff and Rivers Related to Vegetative Characteristics, Latitude, and Slope: A Global Perspective, Journal of the North American Benthological Society 16, no.11 (Nov 2015): 162–168.https://doi.org/10.2307/1468248

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