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Title [sv]
Snabba förändringar i isens kvalitet på norra halvklotet och konsekvenser för uppnåendet av flera globala mål för hållbar utveckling
Title [en]
Rapid ice quality changes in the Northern Hemisphere and consequences for the achievement of several global sustainable development goals
Abstract [en]
The main goal of this project is to provide a mechanistic understanding of lake ice property changes in a warmer world and to predict and forecast effects on nature and society. A few studies are available that describe ecological and societal consequences of shorter lake ice cover but none of these studies considers changes in ice properties such as crystal structure, impurities and thickness of ice. This fundamental knowledge gap is problematic since changes in ice properties are decisive for ice stability/safety as well as the light, thermal and mixing regime in lakes, which in turn determines the ecology under ice. To fill this important knowledge gap we will perform detailed and novel studies on ice properties and their effects on ice stability and primary production, two aspects that have a direct linkage to the achievement of several global sustainable development goals. We will apply methods ranging from field and mesocosm observations to modelling and experimental, high-resolution Fabric Analyser analyses in a well-equipped and specialized ice laboratory. We believe that our project will give new and important insights into the challenges and opportunities that a less frozen future will have on the achievement of freshwater related sustainable development goals.
Publications (10 of 10) Show all publications
Woolway, R. I., Zhang, Y., Jennings, E., Zohary, T., Jane, S. F., Jansen, J., . . . Jeppesen, E. (2025). Extreme and compound events in lakes. Nature Reviews Earth & Environment, 6(9), 593-611
Open this publication in new window or tab >>Extreme and compound events in lakes
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2025 (English)In: Nature Reviews Earth & Environment, E-ISSN 2662-138X, Vol. 6, no 9, p. 593-611Article, review/survey (Refereed) Published
Abstract [en]

Extreme and compound events disrupt lake ecosystems worldwide, with their frequency, intensity and duration increasing in response to climate change. In this Review we outline evidence of the occurrence, drivers and impact of extreme and compound events in lakes. Univariate extremes, which include lake heatwaves, droughts and floods, underwater dimming episodes and hypoxia, can occur concurrently, sequentially or simultaneously at different locations to form multivariate, temporal or spatial compound events, respectively. The probability of extreme and compound events is increasing owing to climate warming, declining lake water levels in half of lakes globally, and basin-scale anthropogenic stressors, such as nutrient pollution. Most in-lake extreme events are inherently compound in nature owing to tightly coupled physical, chemical and biological underlying processes. The cascading effects of compound events propagate or dissipate through lakes. For example, a heatwave might trigger stratification and oxygen depletion, subsequently leading to fish mortality or the proliferation of harmful algal blooms. Interactions between extremes are increasingly observed and can trigger feedback loops that exacerbate harmful algal blooms and fishery declines, leading to severe ecological and socio-economic consequences. Managing the increasing risk of compound events requires integrated models, coordinated monitoring and proactive adaptation strategies tailored to the vulnerabilities of lake ecosystems.

Place, publisher, year, edition, pages
Springer Nature, 2025
National Category
Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:uu:diva-574978 (URN)10.1038/s43017-025-00710-w (DOI)001551761300001 ()2-s2.0-105013550170 (Scopus ID)
Available from: 2026-01-13 Created: 2026-01-13 Last updated: 2026-01-14Bibliographically approved
Culpepper, J., Sharma, S., Gunn, G., Magee, M. R., Meyer, M. F., Anderson, E. J., . . . Yang, X. (2025). One-Hundred Fundamental, Open Questions to Integrate Methodological Approaches in Lake Ice Research. Water resources research, 61(5), Article ID e2024WR039042.
Open this publication in new window or tab >>One-Hundred Fundamental, Open Questions to Integrate Methodological Approaches in Lake Ice Research
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2025 (English)In: Water resources research, ISSN 0043-1397, E-ISSN 1944-7973, Vol. 61, no 5, article id e2024WR039042Article in journal (Refereed) Published
Abstract [en]

The rate of technological innovation within aquatic sciences outpaces the collective ability of individual scientists within the field to make appropriate use of those technologies. The process of in situ lake sampling remains the primary choice to comprehensively understand an aquatic ecosystem at local scales; however, the impact of climate change on lakes necessitates the rapid advancement of understanding and the incorporation of lakes on both landscape and global scales. Three fields driving innovation within winter limnology that we address here are autonomous real-time in situ monitoring, remote sensing, and modeling. The recent progress in low-power in situ sensing and data telemetry allows continuous tracing of under-ice processes in selected lakes as well as the development of global lake observational networks. Remote sensing offers consistent monitoring of numerous systems, allowing limnologists to ask certain questions across large scales. Models are advancing and historically come in different types (process-based or statistical data-driven), with the recent technological advancements and integration of machine learning and hybrid process-based/statistical models. Lake ice modeling enhances our understanding of lake dynamics and allows for projections under future climate warming scenarios. To encourage the merging of technological innovation within limnological research of the less-studied winter period, we have accumulated both essential details on the history and uses of contemporary sampling, remote sensing, and modeling techniques. We crafted 100 questions in the field of winter limnology that aim to facilitate the cross-pollination of intensive and extensive modes of study to broaden knowledge of the winter period.

Place, publisher, year, edition, pages
American Geophysical Union (AGU), 2025
Keywords
lake ice, remote sensing, modeling, limnology, cryosphere
National Category
Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:uu:diva-556687 (URN)10.1029/2024WR039042 (DOI)001480433100001 ()2-s2.0-105004223791 (Scopus ID)
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091
Available from: 2025-05-22 Created: 2025-05-22 Last updated: 2025-05-22Bibliographically approved
Lewis, A. S. L., Lau, M. P., Jane, S. F., Rose, K. C., Be'eri-Shlevin, Y., Burnet, S. H., . . . Carey, C. C. (2024). Anoxia begets anoxia: A positive feedback to the deoxygenation of temperate lakes. Global Change Biology, 30(1), Article ID e17046.
Open this publication in new window or tab >>Anoxia begets anoxia: A positive feedback to the deoxygenation of temperate lakes
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2024 (English)In: Global Change Biology, ISSN 1354-1013, E-ISSN 1365-2486, Vol. 30, no 1, article id e17046Article in journal (Refereed) Published
Abstract [en]

Declining oxygen concentrations in the deep waters of lakes worldwide pose a pressing environmental and societal challenge. Existing theory suggests that low deep-water dissolved oxygen (DO) concentrations could trigger a positive feedback through which anoxia (i.e., very low DO) during a given summer begets increasingly severe occurrences of anoxia in following summers. Specifically, anoxic conditions can promote nutrient release from sediments, thereby stimulating phytoplankton growth, and subsequent phytoplankton decomposition can fuel heterotrophic respiration, resulting in increased spatial extent and duration of anoxia. However, while the individual relationships in this feedback are well established, to our knowledge, there has not been a systematic analysis within or across lakes that simultaneously demonstrates all of the mechanisms necessary to produce a positive feedback that reinforces anoxia. Here, we compiled data from 656 widespread temperate lakes and reservoirs to analyze the proposed anoxia begets anoxia feedback. Lakes in the dataset span a broad range of surface area (1–126,909 ha), maximum depth (6–370 m), and morphometry, with a median time-series duration of 30 years at each lake. Using linear mixed models, we found support for each of the positive feedback relationships between anoxia, phosphorus concentrations, chlorophyll a concentrations, and oxygen demand across the 656-lake dataset. Likewise, we found further support for these relationships by analyzing time-series data from individual lakes. Our results indicate that the strength of these feedback relationships may vary with lake-specific characteristics: For example, we found that surface phosphorus concentrations were more positively associated with chlorophyll a in high-phosphorus lakes, and oxygen demand had a stronger influence on the extent of anoxia in deep lakes. Taken together, these results support the existence of a positive feedback that could magnify the effects of climate change and other anthropogenic pressures driving the development of anoxia in lakes around the world.

Place, publisher, year, edition, pages
John Wiley & Sons, 2024
Keywords
air temperature, anoxia, chlorophyll a, dissolved oxygen, feedback, hypolimnion, lake, oxygen demand, phosphorus, residence time
National Category
Ecology Geosciences, Multidisciplinary Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:uu:diva-519022 (URN)10.1111/gcb.17046 (DOI)001151213000060 ()
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091German Research Foundation (DFG), GR1540/37-1
Available from: 2024-01-02 Created: 2024-01-02 Last updated: 2024-04-15Bibliographically approved
Jansen, J., Simpson, G. L., Weyhenmeyer, G. A., Härkönen, L. H., Paterson, A. M., del Giorgio, P. A. & Prairie, Y. T. (2024). Climate-driven deoxygenation of northern lakes. Nature Climate Change, 14(8), 832-838
Open this publication in new window or tab >>Climate-driven deoxygenation of northern lakes
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2024 (English)In: Nature Climate Change, ISSN 1758-678X, E-ISSN 1758-6798, Vol. 14, no 8, p. 832-838Article in journal (Refereed) Published
Abstract [en]

Oxygen depletion constitutes a major threat to lake ecosystems and the services they provide. Most of the world’s lakes are located >45° N, where accelerated climate warming and elevated carbon loads might severely increase the risk of hypoxia, but this has not been systematically examined. Here analysis of 2.6 million water quality observations from 8,288 lakes shows that between 1960 and 2022, most northern lakes experienced rapid deoxygenation strongly linked to climate-driven prolongation of summer stratification. Oxygen levels deteriorated most in small lakes (<10 ha) owing to their greater volumetric oxygen demand and surface warming rates, while the largest lakes gained oxygen under minimal stratification changes and improved aeration at spring overturns. Seasonal oxygen consumption rates declined, despite widespread browning. Proliferating anoxia enhanced seasonal internal loading of C, P and N but depleted P long-term, indicating that deoxygenation can exhaust redox-sensitive fractions of sediment nutrient reservoirs.

Place, publisher, year, edition, pages
Springer Nature, 2024
National Category
Oceanography, Hydrology and Water Resources Climate Science Environmental Sciences
Identifiers
urn:nbn:se:uu:diva-541956 (URN)10.1038/s41558-024-02058-3 (DOI)001260401000001 ()
Funder
Swedish Research Council, 2020-06460Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091EU, Horizon 2020Swedish University of Agricultural SciencesSwedish Meteorological and Hydrological InstituteNational Academic Infrastructure for Supercomputing in Sweden (NAISS)
Available from: 2024-11-07 Created: 2024-11-07 Last updated: 2025-02-01Bibliographically approved
Oleksy, I. A., Solomon, C. T., Jones, S. E., Olson, C., Bertolet, B. L., Adrian, R., . . . Weyhenmeyer, G. A. (2024). Controls on Lake Pelagic Primary Productivity: Formalizing the Nutrient-Color Paradigm. Journal of Geophysical Research - Biogeosciences, 129(12), Article ID e2024JG008140.
Open this publication in new window or tab >>Controls on Lake Pelagic Primary Productivity: Formalizing the Nutrient-Color Paradigm
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2024 (English)In: Journal of Geophysical Research - Biogeosciences, ISSN 2169-8953, E-ISSN 2169-8961, Vol. 129, no 12, article id e2024JG008140Article in journal (Refereed) Published
Abstract [en]

Understanding controls on primary productivity is essential for describing ecosystems and their responses to environmental change. In lakes, pelagic gross primary productivity (GPP) is strongly controlled by inputs of nutrients and dissolved organic matter. Although past studies have developed process models of this nutrient-color paradigm (NCP), broad empirical tests of these models are scarce. We used data from 58 globally distributed, mostly temperate lakes to test such a model and improve understanding and prediction of the controls on lake primary production. The model includes three state variables-dissolved phosphorus, terrestrial dissolved organic carbon (DOC), and phytoplankton biomass-and generates realistic predictions for equilibrium rates of pelagic GPP. We calibrated our model using a Bayesian data assimilation technique on a subset of lakes where DOC and total phosphorus (TP) loads were known. We then asked how well the calibrated model performed with a larger set of lakes. Revised parameter estimates from the updated model aligned well with existing literature values. Observed GPP varied nonlinearly with both inflow DOC and TP concentrations in a manner consistent with increasing light limitation as DOC inputs increased and decreasing nutrient limitation as TP inputs increased. Furthermore, across these diverse lake ecosystems, model predictions of GPP were highly correlated with observed values derived from high-frequency sensor data. The GPP predictions using the updated parameters improved upon previous estimates, expanding the utility of a process model with simplified assumptions for water column mixing. Our analysis provides a model structure that may be broadly useful for understanding current and future patterns in lake primary production.

Place, publisher, year, edition, pages
American Geophysical Union (AGU), 2024
Keywords
process-based model, model calibration, ecosystem metabolism, GLEON
National Category
Ecology Oceanography, Hydrology and Water Resources Climate Science
Identifiers
urn:nbn:se:uu:diva-546542 (URN)10.1029/2024JG008140 (DOI)001377691900001 ()2-s2.0-85212089952 (Scopus ID)
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091Swedish Research Council, 2017-00635
Available from: 2025-01-10 Created: 2025-01-10 Last updated: 2025-02-01Bibliographically approved
Hampton, S. E., Powers, S. M., Dugan, H. A., Knoll, L. B., McMeans, B. C., Meyer, M. F., . . . Yang, X. (2024). Environmental and societal consequences of winter ice loss from lakes. Science, 386(6718), Article ID eadl3211.
Open this publication in new window or tab >>Environmental and societal consequences of winter ice loss from lakes
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2024 (English)In: Science, ISSN 0036-8075, E-ISSN 1095-9203, Vol. 386, no 6718, article id eadl3211Article, review/survey (Refereed) Published
Abstract [en]

Climate change is reducing winter ice cover on lakes; yet, the full societal and environmental consequences of this ice loss are poorly understood. The socioeconomic implications of declining ice include diminished access to ice-based cultural activities, safety concerns in traversing ice, changes in fisheries, increases in shoreline erosion, and declines in water storage. Longer ice-free seasons allow more time and capacity for water to warm, threatening water quality and biodiversity. Food webs likely will reorganize, with constrained availability of ice-associated and cold-water niches, and ice loss will affect the nature, magnitude, and timing of greenhouse gas emissions. Examining these rapidly emerging changes will generate more-complete models of lake dynamics, and transdisciplinary collaborations will facilitate translation to effective management and sustainability.

Place, publisher, year, edition, pages
American Association for the Advancement of Science (AAAS), 2024
National Category
Oceanography, Hydrology and Water Resources Climate Science
Identifiers
urn:nbn:se:uu:diva-558410 (URN)10.1126/science.adl3211 (DOI)001422132300006 ()39388548 (PubMedID)2-s2.0-85206035464 (Scopus ID)
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091
Available from: 2025-06-09 Created: 2025-06-09 Last updated: 2025-06-09Bibliographically approved
Weyhenmeyer, G. A., Chukwuka, A. V., Anneville, O., Brookes, J., Carvalho, C. R., Cotner, J. B., . . . Zhou, Y. (2024). Global Lake Health in the Anthropocene: Societal Implications and Treatment Strategies. Earth's Future, 12(4), Article ID e2023EF004387.
Open this publication in new window or tab >>Global Lake Health in the Anthropocene: Societal Implications and Treatment Strategies
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2024 (English)In: Earth's Future, E-ISSN 2328-4277, Vol. 12, no 4, article id e2023EF004387Article, review/survey (Refereed) Published
Abstract [en]

The world's 1.4 million lakes (>= 10 ha) provide many ecosystem services that are essential for human well-being; however, only if their health status is good. Here, we reviewed common lake health issues and classified them using a simple human health-based approach to outline that lakes are living systems that are in need of oxygen, clean water and a balanced energy and nutrient supply. The main reason for adopting some of the human health terminology for the lake health classification is to increase the awareness and understanding of global lake health issues. We show that lakes are exposed to various anthropogenic stressors which can result in many lake health issues, ranging from thermal, circulatory, respiratory, nutritional and metabolic issues to infections and poisoning. Of particular concern for human well-being is the widespread lake drying, which is a severe circulatory issue with many cascading effects on lake health. We estimated that similar to 115,000 lakes evaporate twice as much water as they gain from direct precipitation, making them vulnerable to potential drying if inflowing waters follow the drying trend, putting more than 153 million people at risk who live in close vicinity to those lakes. Where lake health issues remain untreated, essential ecosystem services will decline or even vanish, posing a threat to the well-being of millions of people. We recommend coordinated multisectoral and multidisciplinary prevention and treatment strategies, which need to include a follow-up of the progress and an assessment of the resilience of lakes to intensifying threats. Priority should be given to implementing sewage water treatment, mitigating climate change, counteracting introductions of non-native species to lakes and decreasing uncontrolled anthropogenic releases of chemicals into the hydro-, bio-, and atmosphere. Lakes around the world come in an array of sizes, shapes and colors, each telling a unique story of geological history and environmental importance. When lakes are healthy they contribute to the achievement of the global sustainable development goals by providing many important ecosystem services. Lakes are, however, not always healthy. Here, it is shown that lakes can suffer from a large variety of health issues, ranging from thermal, circulatory, respiratory, nutritional and metabolic issues to infections and poisoning. Without improved treatment strategies, many of the health issues may become chronic, affecting millions of people who are dependent on the ecosystem services from the lakes. To prevent and cure lakes from critical health conditions, strategies that are similar to those used in human healthcare should be applied: intervention and preventative actions before health problems occur, regular screening and early identification of lake health issues, and remediation and mitigation efforts at an appropriate scale, spanning from local to global. Anthropogenic stressors can cause lake health issues that range from thermal, circulatory, respiratory, nutritional and metabolic issues to infections and poisoning Lake health varies geographically, with the highest risk of critical conditions occurring in densely populated low-income countries There is an urgent need to follow-up the progress of treatments and to make adjustments whenever needed

Place, publisher, year, edition, pages
American Geophysical Union (AGU), 2024
Keywords
lake health, Anthropocene, stressors, human health, sustainability, treatment
National Category
Environmental Sciences
Identifiers
urn:nbn:se:uu:diva-527723 (URN)10.1029/2023EF004387 (DOI)001204269400001 ()
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091Australian Research Council, 42322104EU, Horizon 2020
Available from: 2024-05-06 Created: 2024-05-06 Last updated: 2024-05-06Bibliographically approved
Culpepper, J., Jakobsson, E., Weyhenmeyer, G. A., Hampton, S. E., Obertegger, U., Shchapov, K., . . . Sharma, S. (2024). Lake ice quality in a warming world. Nature Reviews Earth & Environment, 5(10), 671-685
Open this publication in new window or tab >>Lake ice quality in a warming world
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2024 (English)In: Nature Reviews Earth & Environment, E-ISSN 2662-138X, Vol. 5, no 10, p. 671-685Article, review/survey (Refereed) Published
Abstract [en]

Ice phenology has shifted with anthropogenic warming such that many lakes are experiencing a shorter ice season. However, changes to ice quality - the ratio of black and white ice layers - remain little explored, despite relevance to lake physics, ecological function, human recreation and transportation. In this Review, we outline how ice quality is changing and discuss knock-on ecosystem service impacts. Although direct evidence is sparse, there are suggestions that ice quality is diminishing across the Northern Hemisphere, encompassing declining ice thickness, decreasing black ice and increasing white ice. These changes are projected to continue in the future, scaling with global temperature increases, and driving considerable impacts to related ecosystem services. Rising proportions of white ice will markedly reduce bearing strength, implying more dangerous conditions for transportation (limiting operational use of many winter roads) and recreation (increasing the risk of fatal spring-time drownings). Shifts from black to white ice conditions will further reduce the amount of light reaching the water column, minimizing primary production, and altering community composition to favour motile and mixotrophic species; these changes will affect higher trophic levels, including diminished food quantity for zooplankton and fish, with potential developmental consequences. Reliable and translatable in situ sampling methods to assess and predict spatiotemporal variations in ice quality are urgently needed. Lake ice has witnessed considerable changes in its phenology, but less is known about ice quality - the ratio of black ice to white ice. This Review assesses the changes in lake ice quality and its ecosystem services, noting diminished ice quality in observations and projections.

Place, publisher, year, edition, pages
Springer Nature, 2024
National Category
Ecology Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:uu:diva-549201 (URN)10.1038/s43017-024-00590-6 (DOI)001315053200001 ()2-s2.0-85204205001 (Scopus ID)
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091
Note

Correction in: Nature Reviews Earth & Environment, vol. 5, article id 906, DOI: 10.1038/s43017-024-00602-5

Available from: 2025-02-04 Created: 2025-02-04 Last updated: 2025-11-14Bibliographically approved
Richardson, D. C., Filazzola, A., Woolway, R. I., Imrit, M. A., Bouffard, D., Weyhenmeyer, G. A., . . . Sharma, S. (2024). Nonlinear responses in interannual variability of lake ice to climate change. Limnology and Oceanography, 69(4), 789-801
Open this publication in new window or tab >>Nonlinear responses in interannual variability of lake ice to climate change
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2024 (English)In: Limnology and Oceanography, ISSN 0024-3590, E-ISSN 1939-5590, Vol. 69, no 4, p. 789-801Article in journal (Refereed) Published
Abstract [en]

Climate change is contributing to rapid changes in lake ice cover across the Northern Hemisphere, thereby impacting local communities and ecosystems. Using lake ice cover time-series spanning over 87 yr for 43 lakes across the Northern Hemisphere, we found that the interannual variability in ice duration, measured as standard deviation, significantly increased in only half of our studied lakes. We observed that the interannual variability in ice duration peaked when lakes were, on average, covered by ice for about 1 month, while both longer and shorter long-term mean ice cover duration resulted in lower interannual variability in ice duration. These results demonstrate that the ice cover duration can become so short that the interannual variability rapidly declines. The interannual variability in ice duration showed a strong dependency on global temperature anomalies and teleconnections, such as the North Atlantic Oscillation and El Nino-Southern Oscillation. We conclude that many lakes across the Northern Hemisphere will experience a decline in interannual ice cover variability and shift to open water during the winter under a continued global warming trend which will affect lake biological, cultural, and economic processes.

Place, publisher, year, edition, pages
Association for the Sciences of Limnology and Oceanography, 2024
National Category
Climate Science Physical Geography Geosciences, Multidisciplinary
Identifiers
urn:nbn:se:uu:diva-531591 (URN)10.1002/lno.12527 (DOI)001170169000001 ()
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091
Available from: 2024-06-14 Created: 2024-06-14 Last updated: 2025-11-17Bibliographically approved
Weyhenmeyer, G. A. (2024). Toward a fundamental understanding of ecosystem metabolism responses to global warming. One Earth, 7(10), 1886-1898
Open this publication in new window or tab >>Toward a fundamental understanding of ecosystem metabolism responses to global warming
2024 (English)In: One Earth, ISSN 2590-3330, E-ISSN 2590-3322, Vol. 7, no 10, p. 1886-1898Article in journal (Refereed) Published
Abstract [en]

Science for society

Countless bacteria, plants, animals, and other organisms that live in an ecosystem regulate how far an ecosystem is functioning as a net carbon sink or a net carbon source. A main question arises: how does this biologically driven regulation, often referred to as ecosystem metabolism, respond to global warming? To answer this question, which is not only important for the understanding of ecosystems being net carbon sinks or sources but also of biodiversity, meteorological and eddy covariance measurements from highly diverse ecosystems around the world were analyzed. The analyses demonstrate that warming rapidly accelerates both the carbon uptake by organisms that live in an ecosystem and the carbon release, independent of the ecosystem type. Thus, despite possible fast changes in biodiversity under the ongoing global warming trend, ecosystem metabolism is generally resilient to warming, a finding that strongly influences the choice of climate change mitigation actions.

Place, publisher, year, edition, pages
Elsevier, 2024
National Category
Ecology
Identifiers
urn:nbn:se:uu:diva-543122 (URN)10.1016/j.oneear.2024.07.019 (DOI)001343494700001 ()
Funder
Swedish Research Council, 2020-03222Swedish Research Council Formas, 2020-01091
Available from: 2024-11-20 Created: 2024-11-20 Last updated: 2024-11-20Bibliographically approved
Principal InvestigatorWeyhenmeyer, Gesa
Coordinating organisation
Uppsala University
Funder
Period
2020-12-01 - 2024-11-30
National Category
Climate ResearchGeosciences, Multidisciplinary
Identifiers
DiVA, id: project:6603Project, id: 2020-03222_VR

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