Access the full text.
Sign up today, get DeepDyve free for 14 days.
T. Jickells, E. Buitenhuis, K. Altieri, A. Baker, D. Capone, R. Duce, F. Dentener, K. Fennel, M. Kanakidou, J. LaRoche, Kitack Lee, P. Liss, J. Middelburg, J. Moore, G. Okin, A. Oschlies, M. Sarin, S. Seitzinger, J. Sharples, Ashutosh Singh, P. Suntharalingam, M. Uematsu, L. Zamora, L. Zamora (2017)
A reevaluation of the magnitude and impacts of anthropogenic atmospheric nitrogen inputs on the oceanGlobal Biogeochemical Cycles, 31
C. Savenkoff, A. Vézina, Peter Smith, G. Han (2001)
Summer Transports of Nutrients in the Gulf of St. Lawrence Estimated by Inverse ModellingEstuarine Coastal and Shelf Science, 52
Anna Malagó, F. Bouraoui, B. Grizzetti, A. Roo (2019)
Modelling nutrient fluxes into the Mediterranean SeaJournal of Hydrology. Regional Studies, 22
J. Gan, Zhongming Lu, M. Dai, Anson Cheung, Hongbin Liu, P. Harrison (2010)
Biological response to intensified upwelling and to a river plume in the northeastern South China Sea: A modeling studyJournal of Geophysical Research, 115
N. Walker (1996)
Satellite assessment of Mississippi River plume variability: Causes and predictabilityRemote Sensing of Environment, 58
S. Nixon (2003)
Replacing the Nile: Are Anthropogenic Nutrients Providing the Fertility Once Brought to the Mediterranean by a Great River?, 32
(2022)
The Authors. Remote Sensing in Ecology and Conservation
S. Motoda, T. Kawamura, A. Taniguchi (1978)
Differences in productivities between the Great Australian Bight and the Gulf of Carpentaria, 46
W. Ritter, S. Chitikela (2020)
The Mississippi River Basin Nitrogen Problem: Past History and Future Challenges to Solve It
Eunjee Lee, A. Livino, Shin‐Chan Han, Ke Zhang, J. Briscoe, J. Kelman, P. Moorcroft (2018)
Land cover change explains the increasing discharge of the Paraná RiverRegional Environmental Change, 18
K. Black, A. Longmore, P. Hamer, Randall Lee, S. Swearer, G. Jenkins (2016)
Linking nutrient inputs, phytoplankton composition, zooplankton dynamics and the recruitment of pink snapper, Chrysophrys auratus, in a temperate bayEstuarine Coastal and Shelf Science, 183
D. Jay, E. Zaron, Jiayi Pan (2010)
Initial Expansion of the Columbia River Tidal Plume: Theory and Remote Sensing ObservationsJournal of Geophysical Research, 115
S. McClatchie, J. Middleton, T. Ward (2006)
Water mass analysis and alongshore variation in upwelling intensity in the eastern Great Australian BightJournal of Geophysical Research, 111
D. Macias, E. García‐Górriz, A. Stips (2018)
Deep winter convection and phytoplankton dynamics in the NW Mediterranean Sea under present climate and future (horizon 2030) scenariosScientific Reports, 8
T. Schlacher, A. Skillington, R. Connolly, W. Robinson, T. Gaston (2008)
Coupling Between Marine Plankton and Freshwater Flow in the Plumes off a Small EstuaryInternational Review of Hydrobiology, 93
Hyun‐cheol Kim, H. Yamaguchi, S. Yoo, Jianrong Zhu, Kazumaro Okamura, Y. Kiyomoto, Katsuhisa Tanaka, Sang-Woo Kim, T. Park, I. Oh, J. Ishizaka (2009)
Distribution of Changjiang Diluted Water detected by satellite chlorophyll-a and its interannual variation during 1998–2007Journal of Oceanography, 65
I. Camilloni, V. Barros (2003)
Extreme discharge events in the Paraná River and their climate forcingJournal of Hydrology, 278
C. Fuentes-yaco, A. Vézina, P. Larouche, C. Vigneau, M. Gosselin, M. Levasseur (1997)
Phytoplankton pigment in the Gulf of St. Lawrence, Canada, as determined by the Coastal Zone Color Scanner—Part I: spatio-temporal variabilityContinental Shelf Research, 17
C. Rakocinski, J. Lyczkowski‐Shultz, S. Richardson (1996)
Ichthyoplankton Assemblage Structure in Mississippi Sound as Revealed by Canonical Correspondence AnalysisEstuarine Coastal and Shelf Science, 43
Chuanmin Hu, E. Montgomery, R. Schmitt, F. Muller‐Karger (2004)
The dispersal of the Amazon and Orinoco River water in the tropical Atlantic and Caribbean Sea: ObseNuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms
S. Johnson (2000)
HYPOXIA IN THE NORTHERN GULF OF MEXICO
D. Ware, R. Thomson (2005)
Bottom-Up Ecosystem Trophic Dynamics Determine Fish Production in the Northeast PacificScience, 308
Catalina Mena, P. Reglero, M. Hidalgo, E. Sintes, R. Santiago, Melissa Martin, G. Moyà, R. Balbín (2019)
Phytoplankton Community Structure Is Driven by Stratification in the Oligotrophic Mediterranean SeaFrontiers in Microbiology, 10
Sakiko Matsumoto, Takashi Yamamoto, Ryosuke Kawabe, S. Ohshimo, K. Yoda (2016)
The Changjiang River discharge affects the distribution of foraging seabirdsMarine Ecology Progress Series, 555
C. Grimes (2001)
Fishery Production and the Mississippi River DischargeFisheries, 26
J. Urrego‐Blanco, J. Sheng (2014)
Formation and distribution of sea ice in the Gulf of St. Lawrence: A process‐oriented study using a coupled ocean‐ice modelJournal of Geophysical Research, 119
N.N. Rabalais, R.E. Turner, Q. Dortch, D. Justic, V.J. Bierman, W.J. Wiseman (2002)
Nutrients and eutrophication in estuaries and coastal waters: Proceedings of the 31st Symposium of the Estuarine and Coastal Sciences Association (ECSA), held in Bilbao, Spain, 3?7 July 2000
W.F. Ritter, S.R. Chitikela (2020)
Watershed Management Conference 2020 May 20?212020
N. Walker, N. Rabalais (2006)
Relationships among satellite chlorophylla, river inputs, and hypoxia on the Louisiana Continental shelf, Gulf of MexicoEstuaries and Coasts, 29
C. Chai, Zhiming Yu, Zhi-liang Shen, Xiuxian Song, Xihua Cao, Yun Yao (2009)
Nutrient characteristics in the Yangtze River Estuary and the adjacent East China Sea before and after impoundment of the Three Gorges Dam.The Science of the total environment, 407 16
C.E. Hu, E.T. Montgomery, R.W. Schmitt, F.E. Muller‐Karger (2004)
The dispersal of the Amazon and Orinoco River water in the tropical Atlantic and Caribbean Sea: observation from space and S?PALACE floats, 51
E. Elias, G. Gelfenbaum, A. Westhuysen (2012)
Validation of a coupled wave-flow model in a high-energy setting: The mouth of the Columbia RiverJournal of Geophysical Research, 117
(1992)
VHF radar measurements in the Rhone River plume
S. Colella, F. Falcini, E. Rinaldi, M. Sammartino, R. Santoleri (2016)
Mediterranean Ocean Colour Chlorophyll TrendsPLoS ONE, 11
(2007)
Hypoxia in the northern Gulf of Mexico: an update by the EPA Science Advisory Board
K. Drinkwater, K. Frank (1994)
Effects of river regulation and diversion on marine fish and invertebratesAquatic Conservation-marine and Freshwater Ecosystems, 4
Elizabeth Phillips, J. Horne, Jeannette Zamon (2017)
Predator–prey interactions influenced by a dynamic river plumeCanadian Journal of Fisheries and Aquatic Sciences, 74
S. Philander, R. Pacanowski (1986)
The mass and heat budget in a model of the tropical Atlantic OceanJournal of Geophysical Research, 91
P. Richardson, G. Hufford, R. Limeburner, W. Brown (1994)
North Brazil Current retroflection eddiesJournal of Geophysical Research, 99
M. Burla, A. Baptista, E. Casillas, John Williams, Douglas Marsh (2010)
The influence of the Columbia River plume on the survival of steelhead (Oncorhynchus mykiss) and Chinook salmon (Oncorhynchus tshawytscha): a numerical explorationCanadian Journal of Fisheries and Aquatic Sciences, 67
J. Álvarez-Romero, M. Devlin, Eduardo Silva, C. Petus, Natalie Ban, R. Pressey, J. Kool, J. Roberts, S. Cerdeira-Estrada, A. Wenger, J. Brodie (2013)
A novel approach to model exposure of coastal-marine ecosystems to riverine flood plumes based on remote sensing techniques.Journal of environmental management, 119
Hannah Auricht, K. Clarke, Megan Lewis, L. Mosley (2017)
Have droughts and increased water extraction from the Murray River (Australia) reduced coastal ocean productivityMarine and Freshwater Research, 69
(2014)
Ereefs marine water quality dashboard data product specification
C. Salen-Picard, A. Darnaude, D. Arlhac, M. Harmelin-Vivien (2002)
Fluctuations of macrobenthic populations: a link between climate-driven river run-off and sole fishery yields in the Gulf of LionsOecologia, 133
K. Abrantes, M. Sheaves (2010)
Importance of freshwater flow in terrestrial–aquatic energetic connectivity in intermittently connected estuaries of tropical AustraliaMarine Biology, 157
S. Din (1977)
Effect of the Aswan High Dam on the Nile flood and on the estuarine and coastal circulation pattern along the Mediterranean Egyptian coastLimnology and Oceanography, 22
(2016)
Flood projections within the Niger River Basin under future land use and climate change
M. Devlin, C. Petus, Eduardo Silva, D. Tracey, N. Wolff, J. Waterhouse, J. Brodie (2015)
Water Quality and River Plume Monitoring in the Great Barrier Reef: An Overview of Methods Based on Ocean Colour Satellite DataRemote. Sens., 7
(1998)
Department of the Interior, Minerals Management Service, Gulf of Mexico OCS Region
K. Swieca, S. Sponaugle, C. Briseño‐Avena, M. Schmid, R. Brodeur, R. Cowen (2020)
Changing with the tides: fine-scale larval fish prey availability and predation pressure near a tidally modulated river plumeMarine Ecology Progress Series, 650
F. Schott, C. Böning (1991)
The WOCE model in the western equatorial Atlantic: Upper layer circulationJournal of Geophysical Research, 96
K. Fennel, A. Laurent (2017)
N and P as ultimate and proximate limiting nutrients in the northern Gulf of Mexico: implications for hypoxia reduction strategiesBiogeosciences, 15
L. Carvalho, C. Jones, Ana Silva, B. Liebmann, P. Dias (2011)
The South American Monsoon System and the 1970s climate transitionInternational Journal of Climatology, 31
(2000)
Remote sening of ocean colour in coastal and other optically-complex, waters
S. Motoda, T. Kawamura, A. Taniguchi (1978)
Differences in productivities between the Great Australian Bight and the Gulf of Carpentaria, Australia, in summerMarine Biology, 46
C. Piroddi, M. Coll, C. Liquete, D. Macias, Krista Greer, Joe Buszowski, J. Steenbeek, R. Danovaro, V. Christensen (2017)
Historical changes of the Mediterranean Sea ecosystem: modelling the role and impact of primary productivity and fisheries changes over timeScientific Reports, 7
P. Ruth, N. Patten, M. Doubell, P. Chapman, Ana Rodriguez, J. Middleton (2018)
Seasonal- and event-scale variations in upwelling, enrichment and primary productivity in the eastern Great Australian BightDeep Sea Research Part II: Topical Studies in Oceanography
A. Dai (2013)
Increasing drought under global warming in observations and modelsNature Climate Change, 3
N. Rabalais, R. Turner, Q. Dortch, D. Justić, Victor Jr., W. Jr (2002)
Nutrient-enhanced productivity in the northern Gulf of Mexico: past, present and futureHydrobiologia, 475-476
N. Dowidar (1984)
Phytoplankton biomass and primary productivity of the south-eastern Mediterranean, 31
M. Akester (2019)
Productivity and coastal fisheries biomass yields of the northeast coastal waters of the Bay of Bengal Large Marine EcosystemDeep Sea Research Part II: Topical Studies in Oceanography
J. Hopkins, M. Lucas, C. Dufau, Marion Sutton, J. Stum, O. Lauret, Claire Channelliere (2013)
Detection and variability of the Congo River plume from satellite derived sea surface temperature, salinity, ocean colour and sea levelRemote Sensing of Environment, 139
C. Estournel, P. Broche, P. Marsaleix, J. Devenon, F. Auclair, R. Vehil (2001)
The Rhone River Plume in Unsteady Conditions: Numerical and Experimental ResultsEstuarine Coastal and Shelf Science, 53
V. Barale, M. Gade (2008)
Remote sensing for a changing Europe, Istanbul, Turkey
Zhongming Lu, J. Gan, M. Dai, Xiaozheng Zhao, Chiwing Hui (2020)
Nutrient transport and dynamics in the South China Sea: A modeling studyProgress in Oceanography, 183
Paul Mickle, J. Herbig, C. Somerset, Brittany Chudzik, K. Lucas, Megan Fleming (2018)
Effects of Annual Droughts on Fish Communities in Mississippi Sound EstuariesEstuaries and Coasts, 41
(1977)
Alterations and destruction of estuaries affecting fishery resources of the Gulf of Mexico
S. Weber, E. Carpenter, V. Coles, P. Yager, J. Goes, J. Montoya (2017)
Amazon River influence on nitrogen fixation and export production in the western tropical North AtlanticLimnology and Oceanography, 62
S. Lohrenz, D. Redalje, W. Cai, J. Acker, M. Dagg (2008)
A Retrospective Analysis of Nutrients and Phytoplankton Productivity in the Mississippi River PlumeContinental Shelf Research, 28
B. Gillanders, M. Kingsford (2002)
Impact of changes in flow of freshwater on estuarine and open coastal habitats and the associated organismsOceanography and Marine Biology, 40
W. Wiseman, N. Rabalais, M. Dagg, T. Whitledge (1999)
Nutrient enhanced coastal ocean productivity in the north Gulf of Mexico: understanding the effects of nutrients on a coastal ecosystem
(1998)
Texas-Louisiana shelf circulation and transport process study: synthesis report
T. Tanhua, D. Hainbucher, K. Schroeder, V. Cardin, M. Álvarez, G. Civitarese (2013)
The Mediterranean Sea system: a review and an introduction to the special issueOcean Science, 9
S. Lentz, R. Limeburner (1995)
The Amazon River Plume during AMASSEDS: Spatial characteristics and salinity variabilityJournal of Geophysical Research, 100
H. Gomes, Qian Xu, J. Ishizaka, E. Carpenter, P. Yager, J. Goes (2018)
The Influence of Riverine Nutrients in Niche Partitioning of Phytoplankton Communities–A Contrast Between the Amazon River Plume and the Changjiang (Yangtze) River Diluted Water of the East China SeaFrontiers in Marine Science
Barale Vittorio, G. Martin (2009)
Multisensor Study of Wind Patterns and Algal Blooms in Near-Coastal Gyres of the Mediterranean Sea
R. Connolly, T. Schlacher, T. Gaston (2009)
Stable isotope evidence for trophic subsidy of coastal benthic fisheries by river discharge plumes off small estuariesMarine Biology Research, 5
D. Scavia, D. Justić, D. Obenour, J. Craig, Lixia Wang (2019)
Hypoxic volume is more responsive than hypoxic area to nutrient load reductions in the northern Gulf of Mexico—and it matters to fish and fisheriesEnvironmental Research Letters, 14
F. Muller‐Karger, C. McClain, P. Richardson (1988)
The dispersal of the Amazon's waterNature, 333
J. Acker, L. Harding, G. Leptoukh, T. Zhu, S. Shen (2005)
Remotely‐sensed chl a at the Chesapeake Bay mouth is correlated with annual freshwater flow to Chesapeake BayGeophysical Research Letters, 32
Jinchun Yuan, Richard Miller, R. Powell, M. Dagg (2004)
Storm‐induced injection of the Mississippi River plume into the open Gulf of MexicoGeophysical Research Letters, 31
C. Grimes, M. Kingsford (1996)
How do Riverine Plumes of Different Sizes Influence Fish Larvae: do they Enhance Recruitment?Marine and Freshwater Research, 47
V. Coles, Maureen Brooks, J. Hopkins, M. Stukel, P. Yager, R. Hood (2013)
The pathways and properties of the Amazon River Plume in the tropical North Atlantic OceanJournal of Geophysical Research, 118
P. Forget, J. Devenon, J. Maistre, P. Broche, M. Leveau (1990)
VHF remote sensing for mapping river plume circulationGeophysical Research Letters, 17
M. Doubell, D. Spencer, P. Ruth, C. Lemckert, J. Middleton (2018)
Observations of vertical turbulent nitrate flux during summer in the Great Australian BightDeep Sea Research Part II: Topical Studies in Oceanography
Although the potential of river discharge to support ocean productivity and marine ecosystems is known, the specifics of this relationship are poorly understood in many regions of the world. Global estimates of river flow indicate that river discharge is decreasing due to the increasing fragmentation, extraction and regulation of rivers. This likely means that the contribution of river flow to coastal productivity and water quality is changing, potentially leading to fewer and smaller magnitude ocean fertilisation events. We developed a simple analysis method, based on Earth observation data, to investigate where coastal ocean chlorophyll‐a is most strongly influenced by river discharge. The per‐pixel spatiotemporal correlation technique (implemented using Python) correlates chlorophyll‐a concentration (a proxy for phytoplankton biomass and indicator of primary productivity) from MODIS ocean colour data with river discharge data. The method was tested globally on 11 different rivers discharging into coastal ocean regions. Our findings suggest some of the world's largest river systems, such as the Amazon River, have zones of elevated coastal chl‐a that extend hundreds to thousands of km from the river mouth. These findings suggest the influence of river discharge may have been underestimated in many coastal regions of the world. The method appears more effective for larger river systems discharging to ocean waters with less complex nutrient dynamics and weaker seasonal productivity patterns, most notably in temperate regions. Increasing our understanding of the specific areas influenced by river discharge, and the degree of influence over space and time, is an important step towards the improved river and coastal management. This method will increase the capacity of researchers to monitor how, when and where coastal waters are affected as river discharge continues to change into the future.
Remote Sensing in Ecology and Conservation – Wiley
Published: Oct 1, 2022
Keywords: Chlorophyll‐ a; coastal productivity; correlation; MODIS; river discharge; water quality
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.