4.8 Article

Widespread deoxygenation of temperate lakes

期刊

NATURE
卷 594, 期 7861, 页码 66-+

出版社

NATURE PORTFOLIO
DOI: 10.1038/s41586-021-03550-y

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资金

  1. US NSF [1137327, 1702991, 1638704, 1754265, 1761805]
  2. US Fulbright Student grant
  3. German Science Foundation [AD 91/22-1]
  4. NSERC Discovery Grant
  5. Canada Research Chair Program
  6. Province of Saskatchewan
  7. Queen's University Belfast
  8. Missouri Department of Natural Resources
  9. Missouri Agricultural Experiment Station
  10. NSF [1754276, 1950170]
  11. Miami University Eminent Scholar Fund
  12. European Union [791812]
  13. University of Nevada
  14. UC Davis
  15. University of Warmia and Mazury in Olsztyn
  16. Russian Scientific Foundation [19-77-30004]
  17. Oklahoma Department of Wildlife Conservation
  18. Oklahoma Water Resources Board
  19. US Army Corps of Engineers
  20. City of Tulsa
  21. ERDF/ESF project Biomanipulation as a tool for improving water quality of dam reservoirs [CZ.02.1.01/0.0/0.0/16_025/0007417]
  22. FA-UNIMIB
  23. UK Natural Environment Research Council
  24. International Commission for the Protection of Italian-Swiss Waters (CIPAIS)
  25. LTSER platform Tyrolean Alps (LTER-Austria)
  26. Belgian Science Policy Office [CD/AR/02A]
  27. Clark Foundation
  28. Marie Curie Actions (MSCA) [791812] Funding Source: Marie Curie Actions (MSCA)
  29. Direct For Biological Sciences
  30. Emerging Frontiers [1638704] Funding Source: National Science Foundation
  31. Direct For Computer & Info Scie & Enginr
  32. Div Of Information & Intelligent Systems [1761805] Funding Source: National Science Foundation
  33. Division Of Environmental Biology
  34. Direct For Biological Sciences [1950170, 1702991, 1754276] Funding Source: National Science Foundation
  35. Division Of Environmental Biology
  36. Direct For Biological Sciences [1754265] Funding Source: National Science Foundation
  37. Russian Science Foundation [19-77-30004] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

The concentration of dissolved oxygen in aquatic systems plays a crucial role in regulating biodiversity, nutrient biogeochemistry, greenhouse gas emissions, and drinking water quality. Climate change and human activities have led to declines in dissolved oxygen in lakes, impacting the physical and chemical environment, as well as essential ecosystem services.
The concentration of dissolved oxygen in aquatic systems helps to regulate biodiversity(1,2), nutrient biogeochemistry(3), greenhouse gas emissions(4), and the quality of drinking water(5). The long-term declines in dissolved oxygen concentrations in coastal and ocean waters have been linked to climate warming and human activity(6,7), but little is known about the changes in dissolved oxygen concentrations in lakes. Although the solubility of dissolved oxygen decreases with increasing water temperatures, long-term lake trajectories are difficult to predict. Oxygen losses in warming lakes may be amplified by enhanced decomposition and stronger thermal stratification(8,9) or oxygen may increase as a result of enhanced primary production(10). Here we analyse a combined total of 45,148 dissolved oxygen and temperature profiles and calculate trends for 393 temperate lakes that span 1941 to 2017. We find that a decline in dissolved oxygen is widespread in surface and deep-water habitats. The decline in surface waters is primarily associated with reduced solubility under warmer water temperatures, although dissolved oxygen in surface waters increased in a subset of highly productive warming lakes, probably owing to increasing production of phytoplankton. By contrast, the decline in deep waters is associated with stronger thermal stratification and loss of water clarity, but not with changes in gas solubility. Our results suggest that climate change and declining water clarity have altered the physical and chemical environment of lakes. Declines in dissolved oxygen in freshwater are 2.75 to 9.3 times greater than observed in the world's oceans(6,7) and could threaten essential lake ecosystem services(2,3,5,11).

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