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Science | 2018

Declining oxygen in the global ocean and coastal waters

Lisa A. Levin; Andreas Oschlies; Marilaure Grégoire; Francisco P. Chavez; Daniel J. Conley; Véronique Garçon; Denis Gilbert; Dimitri Gutiérrez; Kirsten Isensee; Gil S. Jacinto; Karin E. Limburg; Ivonne Montes; S. W. A. Naqvi; Grant C. Pitcher; Nancy N. Rabalais; Michael R. Roman; Kenneth A. Rose; Brad A. Seibel; M. Telszewski; Moriaki Yasuhara; Jing Zhang

Beneath the waves, oxygen disappears As plastic waste pollutes the oceans and fish stocks decline, unseen below the surface another problem grows: deoxygenation. Breitburg et al. review the evidence for the downward trajectory of oxygen levels in increasing areas of the open ocean and coastal waters. Rising nutrient loads coupled with climate change—each resulting from human activities—are changing ocean biogeochemistry and increasing oxygen consumption. This results in destabilization of sediments and fundamental shifts in the availability of key nutrients. In the short term, some compensatory effects may result in improvements in local fisheries, such as in cases where stocks are squeezed between the surface and elevated oxygen minimum zones. In the longer term, these conditions are unsustainable and may result in ecosystem collapses, which ultimately will cause societal and economic harm. Science, this issue p. eaam7240 BACKGROUND Oxygen concentrations in both the open ocean and coastal waters have been declining since at least the middle of the 20th century. This oxygen loss, or deoxygenation, is one of the most important changes occurring in an ocean increasingly modified by human activities that have raised temperatures, CO2 levels, and nutrient inputs and have altered the abundances and distributions of marine species. Oxygen is fundamental to biological and biogeochemical processes in the ocean. Its decline can cause major changes in ocean productivity, biodiversity, and biogeochemical cycles. Analyses of direct measurements at sites around the world indicate that oxygen-minimum zones in the open ocean have expanded by several million square kilometers and that hundreds of coastal sites now have oxygen concentrations low enough to limit the distribution and abundance of animal populations and alter the cycling of important nutrients. ADVANCES In the open ocean, global warming, which is primarily caused by increased greenhouse gas emissions, is considered the primary cause of ongoing deoxygenation. Numerical models project further oxygen declines during the 21st century, even with ambitious emission reductions. Rising global temperatures decrease oxygen solubility in water, increase the rate of oxygen consumption via respiration, and are predicted to reduce the introduction of oxygen from the atmosphere and surface waters into the ocean interior by increasing stratification and weakening ocean overturning circulation. In estuaries and other coastal systems strongly influenced by their watershed, oxygen declines have been caused by increased loadings of nutrients (nitrogen and phosphorus) and organic matter, primarily from agriculture; sewage; and the combustion of fossil fuels. In many regions, further increases in nitrogen discharges to coastal waters are projected as human populations and agricultural production rise. Climate change exacerbates oxygen decline in coastal systems through similar mechanisms as those in the open ocean, as well as by increasing nutrient delivery from watersheds that will experience increased precipitation. Expansion of low-oxygen zones can increase production of N2O, a potent greenhouse gas; reduce eukaryote biodiversity; alter the structure of food webs; and negatively affect food security and livelihoods. Both acidification and increasing temperature are mechanistically linked with the process of deoxygenation and combine with low-oxygen conditions to affect biogeochemical, physiological, and ecological processes. However, an important paradox to consider in predicting large-scale effects of future deoxygenation is that high levels of productivity in nutrient-enriched coastal systems and upwelling areas associated with oxygen-minimum zones also support some of the world’s most prolific fisheries. OUTLOOK Major advances have been made toward understanding patterns, drivers, and consequences of ocean deoxygenation, but there is a need to improve predictions at large spatial and temporal scales important to ecosystem services provided by the ocean. Improved numerical models of oceanographic processes that control oxygen depletion and the large-scale influence of altered biogeochemical cycles are needed to better predict the magnitude and spatial patterns of deoxygenation in the open ocean, as well as feedbacks to climate. Developing and verifying the next generation of these models will require increased in situ observations and improved mechanistic understanding on a variety of scales. Models useful for managing nutrient loads can simulate oxygen loss in coastal waters with some skill, but their ability to project future oxygen loss is often hampered by insufficient data and climate model projections on drivers at appropriate temporal and spatial scales. Predicting deoxygenation-induced changes in ecosystem services and human welfare requires scaling effects that are measured on individual organisms to populations, food webs, and fisheries stocks; considering combined effects of deoxygenation and other ocean stressors; and placing an increased research emphasis on developing nations. Reducing the impacts of other stressors may provide some protection to species negatively affected by low-oxygen conditions. Ultimately, though, limiting deoxygenation and its negative effects will necessitate a substantial global decrease in greenhouse gas emissions, as well as reductions in nutrient discharges to coastal waters. Low and declining oxygen levels in the open ocean and coastal waters affect processes ranging from biogeochemistry to food security. The global map indicates coastal sites where anthropogenic nutrients have exacerbated or caused O2 declines to <2 mg liter−1 (<63 μmol liter−1) (red dots), as well as ocean oxygen-minimum zones at 300 m of depth (blue shaded regions). [Map created from data provided by R. Diaz, updated by members of the GO2NE network, and downloaded from the World Ocean Atlas 2009]. Oxygen is fundamental to life. Not only is it essential for the survival of individual animals, but it regulates global cycles of major nutrients and carbon. The oxygen content of the open ocean and coastal waters has been declining for at least the past half-century, largely because of human activities that have increased global temperatures and nutrients discharged to coastal waters. These changes have accelerated consumption of oxygen by microbial respiration, reduced solubility of oxygen in water, and reduced the rate of oxygen resupply from the atmosphere to the ocean interior, with a wide range of biological and ecological consequences. Further research is needed to understand and predict long-term, global- and regional-scale oxygen changes and their effects on marine and estuarine fisheries and ecosystems.


Nature Geoscience | 2015

Boundaries of the Peruvian oxygen minimum zone shaped by coherent mesoscale dynamics

João H. Bettencourt; Cristóbal López; Emilio Hernández-García; Ivonne Montes; Joël Sudre; Boris Dewitte; Aurélien Paulmier; Véronique Garçon

Dissolved oxygen in sea water affects marine habitats and biogeochemical cycles. Oceanic zones with oxygen deficits represent 7% of the volume and 8% of the area of the oceans, and are thought to be expanding. One of the most pronounced lies in the region off Peru, where mesoscale activity in the form of fronts and eddies is strong. Here, we study the dynamics of the Peruvian oxygen minimum zone in a Lagrangian framework, using a coupled physical-biogeochemical numerical model and finite-size Lyapunov exponent fields, to evaluate the role of mesoscale activity. We find that, at depths between 380 and 600 m, mesoscale structures have two distinct roles. First, their mean positions and paths delimit and maintain the oxygen minimum zone boundaries. Second, their high-frequency fluctuations inject oxygen across the oxygen minimum zone boundaries and eddy fluxes are one order of magnitude higher than mean oxygen fluxes. We conclude that these eddy fluxes contribute to the ventilation of the Peruvian oxygen minimum zone.


Repositorio institucional - IGP | 2014

High‐resolution modeling of the Eastern Tropical Pacific oxygen minimum zone: Sensitivity to the tropical oceanic circulation

Ivonne Montes; Boris Dewitte; Elodie Gutknecht; Aurélien Paulmier; Isabelle Dadou; Andreas Oschlies; Véronique Garçon

The connection between the equatorial mean circulation and the oxygen minimum zone (OMZ) in the Eastern Tropical Pacific is investigated through sensitivity experiments with a high-resolution coupled physical-biogeochemical model. A validation against in situ observations indicates a realistic simulation of the vertical and horizontal oxygen distribution by the model. Two sets of climatological open-boundary conditions for the physical variables, which differ slightly with respect to the intensity and vertical structure of the Equatorial Current System, are shown to lead to contrasting characteristics of the simulated OMZ dynamics. From a Lagrangian perspective, the mean differences near the coast originate to a large extent from the different transport of deoxygenated waters by the secondary Tsuchiya Jet (secondary Southern Subsurface Countercurrent, sSSCC). The O2 budget further indicates a large difference in the balance between tendency terms, with advection exhibiting the largest difference between both simulations, which is shown to result from both linear and nonlinear advection. At regional scale, we also find that the variability of the physical contribution to the rate of O2 change is one order of magnitude larger than the variability associated with the biogeochemical contribution, which originates from internal high-frequency variability. Overall our study illustrates the large sensitivity of the OMZ dynamics to the equatorial circulation.


Biogeosciences | 2016

Seasonal variability of the oxygen minimum zone off Peru in ahigh-resolution regional coupled model

Oscar Vergara; Boris Dewitte; Ivonne Montes; Véronique Garçon; Marcel Ramos; Aurélien Paulmier; Oscar Pizarro


Biogeosciences Discussions | 2018

Modulation of the vertical particle transfer efficiency in the oxygen minimum zone off Peru

Marine Bretagnon; Aurélien Paulmier; Véronique Garçon; Boris Dewitte; Serena Illig; Nathalie Leblond; Laurent Coppola; Fernando Campos; Federico Velazco; Christos Panagiotopoulos; Andreas Oschlies; J. Martín Hernández-Ayón; Helmut Maske; Oscar Vergara; Ivonne Montes; Philippe Martinez; Edgardo Carrasco; Jacques Grelet; Olivier Desprez-De-Gesincourt; Christophe Maes; Lionel Scouarnec


XVI Colacmar y XVI Senalmar, Santa Marta 2015 | 2015

VARIABILIDAD ESTACIONAL DE LA FRONTERA SUR DE LA ZONA DE MÍNIMO OXIGENO (ZMO) FRENTE A CHILE CENTRAL (30°-38°S): UN ESTUDIO DE MODELAMIENTO.

Matias Pizarro Koch; Oscar Pizarro; Boris Dewitte; Ivonne Montes; Aurélien Paulmier; Marcel Ramos; Véronique Garçon


Repositorio institucional - IGP | 2014

Inference of super-resolution ocean pCO2 and air-sea CO2 fluxes from non-linear and multiscale processing methods

Ismael Hernández-Carrasco; Joël Sudre; Véronique Garçon; Hussein Yahia; Boris Dewitte; Christoph S. Garbe; Serena Illig; Ivonne Montes; Isabelle Dadou; Aurélien Paulmier; André Butz


Earth Observation for Ocean-Atmosphere Interactions Science 2014 | 2014

Validation of inferred high resolution ocean pCO2 and air-sea fluxes with in-situ and remote sensing data

Ismael Hernández-Carrasco; Joël Sudre; Véronique Garçon; Hussein Yahia; Boris Dewitte; Christoph S. Garbe; Serena Illig; Ivonne Montes; Aurélien Paulmier; Isabelle Dadou; André Butz


Archive | 2013

Vertical structure variability of the OMZ in the Eastern Tropical Pacific

Boris Dewitte; Ivonne Montes; Aurélien Paulmier; Andreas Oschlies; Véronique Garçon

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Véronique Garçon

Centre national de la recherche scientifique

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Aurélien Paulmier

Centre national de la recherche scientifique

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Isabelle Dadou

Centre national de la recherche scientifique

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Joël Sudre

Centre national de la recherche scientifique

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Ismael Hernández-Carrasco

Spanish National Research Council

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Oscar Vergara

Centre national de la recherche scientifique

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Serena Illig

Institut de recherche pour le développement

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