, Methods to study litter decomposition, pp.185-188, 2005.
The role of fungi in the nutrition of stream invertebrates, Botanical journal of the Linnean Society, vol.91, pp.83-94, 1985. ,
Decomposition of leaf material, Methods in stream ecology, 2006. ,
, , p.711
Allelopathic inhibition of primary producer growth and photosynthesis by aquatic fungi, Fungal Ecology, vol.29, pp.133-138, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01878127
The role of fungi in the nutrition of stream invertebrates, Botanical journal of the Linnean Society, vol.91, pp.83-94, 1985. ,
Decomposition of leaf material, Methods in stream ecology, 2006. ,
, , pp.711-720
Minor food sources can play a major role in secondary production in detritus-based ecosystems, Freshwater Biology, vol.62, pp.1155-1167, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-02319294
Interactions between temperature and nutrients across levels of ecological organization, Global Change Biology, vol.21, pp.1025-1040, 2015. ,
Phosphorus content in detritus controls life-history traits of a detritivore, Functional Ecology, vol.27, pp.807-815, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-02319221
, , 2013.
, Benthic algae stimulate leaf litter decomposition in detritus-based headwater streams: a case of aquatic priming effect?, Ecology, vol.94, pp.1604-1613
Effects of burial on leaf litter quality, microbial conditioning and palatability to three shredder taxa, Freshwater Biology, vol.57, pp.1017-1030, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00955458
Ecological Stoichiometry, Primary Producer-Decomposer Interactions, and Ecosystem Persistence, Ecology, vol.82, 2001. ,
Response of biofilm growth to experimental warming in a temperate stream, Ecohydrology, vol.10, 1868. ,
, Change Biology, vol.23, pp.3064-3075
Relationships between structure and function in streams contrasting in temperature, Freshwater Biology, vol.54, pp.2051-2068, 2009. ,
Effects of Caddisfly Grazers on the Elemental Composition of Epilithon in a Boreal Lake, Journal of the North American Benthological Society, vol.21, pp.54-63, 2002. ,
Transformation of the Nitrogen Cycle: Recent Trends, Questions, and Potential Solutions, Science, vol.320, pp.889-892, 2008. ,
, Change Biology, vol.24, pp.1069-1084
IPCC Summary for policymakers, Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernemental Panel on Climate Change [Field, 2014. ,
The effect of sunlight on leaf litter quality reduces growth of the shredder Klapopteryx kuscheli, Freshwater Biology, vol.53, pp.1881-1889, 2008. ,
, , 2007.
, The Role of Headwater Streams in Downstream Water Quality1: The Role of Headwater Streams in Downstream Water Quality, vol.43, pp.41-59
Effects of elevated atmospheric CO2 concentration and temperature on litter decomposition in streams: A metaanalysis, International Review of Hydrobiology, vol.104, pp.14-25, 2019. ,
Leaf Processing Capabilities of Aquatic Hyphomycetes: Interspecific Differences and Influence on Shredder Feeding Preferences, Oikos, vol.42, 1984. ,
Bacteria, fungi and the breakdown of leaf litter in a large river, Oikos, pp.93-102, 1995. ,
URL : https://hal.archives-ouvertes.fr/hal-01296551
Impacts of climate change on the future of biodiversity: Biodiversity and climate change, Ecology Letters, vol.15, pp.365-377, 2012. ,
Comparison of litterfall input to streams, Journal of the North American Benthological Society, vol.16, pp.104-108, 1997. ,
Decomposition of leaf material, Methods in stream ecology, 2006. ,
, , pp.711-720
Adapt or disperse: understanding species persistence in a changing world, Global Change Biology, vol.16, pp.587-598, 2010. ,
Climate change and the past, present, and future of biotic interactions, Science, vol.341, pp.499-504, 2013. ,
A global experiment suggests climate warming will not accelerate litter decomposition in streams but might reduce carbon sequestration, Ecology Letters, vol.14, pp.289-294, 2011. ,
Biotic and abiotic variables influencing plant litter breakdown in streams: a global study, Proceedings of the Royal Society B: Biological Sciences, vol.283, 2016. ,
URL : https://hal.archives-ouvertes.fr/hal-01360648
Evolutionary response to rapid climate change, Science, vol.312, pp.1477-1478, 2006. ,
, , vol.85, pp.1771-1789, 2004.
Global Biodiversity: Indicators of Recent Declines, Science, vol.328, pp.1164-1168, 2010. ,
Ecological and toxicological effects of inorganic nitrogen pollution in aquatic ecosystems: A global assessment, Environment International, vol.32, pp.831-849, 2006. ,
Warming up a stream reach: design of a hydraulic and heating system, Limnology and Oceanography: Methods, vol.11, pp.410-417, 2013. ,
The Wisdom of the Body, p.256, 1932. ,
Pectinases in leaf degradation by aquatic hyphomycetes I: the field study, Oecologia, vol.52, pp.109-115, 1982. ,
The interaction of human population, food production, and biodiversity protection, Science, vol.356, pp.260-264, 2017. ,
Experimental evidence quantifying the role of benthic invertebrates in organic matter dynamics of headwater streams, Freshwater biology, vol.23, pp.281-299, 1990. ,
Structure and Function of Stream Ecosystems, BioScience, vol.24, pp.631-641, 1974. ,
Organic matter budgets for stream ecosystems: problems in their evaluation, Stream ecology, pp.299-353, 1983. ,
Influence of conidial traits and leaf structure on attachment success of aquatic hyphomycetes on leaf litter, Mycologia, vol.99, pp.24-32, 2007. ,
URL : https://hal.archives-ouvertes.fr/hal-01302323
Benthic algae stimulate leaf litter decomposition in detritus-based headwater streams: a case of aquatic priming effect?, Ecology, vol.94, pp.1604-1613, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00958357
Spreading Dead Zones and Consequences for Marine Ecosystems, Science, vol.321, pp.926-929, 2008. ,
Biofilm formation at warming temperature: acceleration of microbial colonization and microbial interactive effects, Biofouling, vol.27, pp.59-71, 2011. ,
, , 2008.
, Encyclopédie visuelle des arbres & arbustes
Climate Extremes: Observations, Modeling, and Impacts, Science, vol.289, p.2068, 2000. ,
Global analysis of nitrogen and phosphorus limitation of primary producers in freshwater, marine and terrestrial ecosystems, Ecology Letters, vol.10, pp.1135-1142, 2007. ,
The European perspective on nitrogen emission and deposition, Environment International, vol.29, issue.02, pp.162-171, 2003. ,
Temperature and substrate chemistry as major drivers of interregional variability of leaf microbial decomposition and cellulolytic activity in headwater streams, FEMS microbiology ecology, p.92, 2016. ,
Elevated temperature may intensify the positive effects of nutrients on microbial decomposition in streams, Freshwater Biology, vol.59, pp.2390-2399, 2014. ,
Effect of experimental and seasonal warming on litter decomposition in a temperate stream, Aquatic Sciences, vol.76, pp.155-163, 2014. ,
Future increase in temperature may stimulate litter decomposition in temperate mountain streams: evidence from a stream manipulation experiment, Freshwater Biology, vol.60, pp.881-892, 2015. ,
A meta-analysis of the effects of nutrient enrichment on litter decomposition in streams, Biological Reviews, vol.90, pp.669-688, 2014. ,
URL : https://hal.archives-ouvertes.fr/hal-01186536
Future increase in temperature more than decrease in litter quality can affect microbial litter decomposition in streams, Oecologia, vol.167, pp.279-291, 2011. ,
URL : https://hal.archives-ouvertes.fr/hal-00965516
Synergistic effects of water temperature and dissolved nutrients on litter decomposition and associated fungi, Global Change Biology, vol.17, pp.551-564, 2011. ,
URL : https://hal.archives-ouvertes.fr/hal-00942851
Effects of experimental warming, litter species, and presence of macroinvertebrates on litter decomposition and associated decomposers in a temperate mountain stream, Canadian Journal of Fisheries and Aquatic Sciences, vol.72, pp.206-216, 2014. ,
URL : https://hal.archives-ouvertes.fr/hal-01142859
, , 2006.
, Whole-stream nitrate addition affects litter decomposition and associated fungi but not invertebrates, Oecologia, vol.149, pp.718-729
Energy Flow in Bear Brook, New Hampshire: An Integrative Approach to Stream Ecosystem Metabolism, Ecological Monographs, vol.43, pp.421-439, 1973. ,
, , 2017.
,
Meta-analysis of lotic nutrient amendment experiments: detecting and quantifying subtle responses, Journal of the North American Benthological Society, vol.20, pp.358-368, 2001. ,
Habitat variation and life history strategies of benthic invertebrates, 2008. ,
The nitrogen cascade, BioScience, vol.53, pp.341-356, 2003. ,
Transformation of the Nitrogen Cycle: Recent Trends, Questions, and Potential Solutions, Science, vol.320, pp.889-892, 2008. ,
Effects of increased temperature and aquatic fungal diversity on litter decomposition, Fungal Ecology, vol.5, pp.734-740, 2012. ,
A Perspective on Leaf Litter Breakdown in Streams, Oikos, vol.85, 1999. ,
Impact of landscape management on the genetic structure of red squirrel populations, Science, vol.293, pp.2248-2251, 2001. ,
Litter processing along a stream gradient: the role of invertebrates and decomposers, Journal of the North American Benthological Society, vol.20, pp.408-420, 2001. ,
Periphyton response to long-term nutrient enrichment in a shaded headwater stream, Canadian Journal of Fisheries and Aquatic Sciences, vol.62, pp.2033-2045, 2005. ,
Warming, eutrophication, and predator loss amplify subsidies between aquatic and terrestrial ecosystems, Global Change Biology, vol.18, pp.504-514, 2012. ,
Stimulation of leaf litter decomposition and associated fungi and invertebrates by moderate eutrophication: implications for stream assessment, Freshwater Biology, vol.51, pp.1655-1669, 2006. ,
Effect of inorganic nutrients on relative contributions of fungi and bacteria to carbon flow from submerged decomposing leaf litter, Microbial Ecology, vol.45, pp.11-19, 2003. ,
Interactions between stream fungi and bacteria associated with decomposing leaf litter at different levels of nutrient availability, Aquatic Microbial Ecology, vol.30, pp.149-157, 2003. ,
Comparison of Fungal Activities on Wood and Leaf Litter in Unaltered and Nutrient-Enriched Headwater Streams, Applied and Environmental Microbiology, vol.74, pp.1094-1101, 2008. ,
High-quality algae attached to leaf litter boost invertebrate shredder growth, Freshwater Science, vol.35, pp.1213-1221, 2016. ,
Lipids and lipid metabolism in eukaryotic algae, Progress in lipid research, vol.45, pp.160-186, 2006. ,
Periphytic algae decouple fungal activity from leaf litter decomposition via negative priming, Functional Ecology, vol.33, pp.188-201, 2018. ,
Climate Change, Keystone Predation, and Biodiversity Loss, Science, vol.334, pp.1124-1127, 2011. ,
Biological consequences of global warming: is the signal already apparent?, Trends in Ecology & Evolution, vol.15, pp.56-61, 2000. ,
IPCC Summary for policymakers, Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernemental Panel on Climate Change [Field, 2014. ,
An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty, Global warming of 1.5°C, 2018. ,
Latitudinal patterns in leaf litter breakdown: is temperature really important?, Freshwater biology, vol.32, pp.401-411, 1994. ,
Phosphorus and nitrogen limitation and impairment of headwater streams relative to rivers in Great Britain: A national perspective on eutrophication, Science of The Total Environment, vol.621, pp.849-862, 2018. ,
Effects of changing climate on European stream invertebrate communities: A long-term data analysis, Science of The Total Environment, vol.621, pp.588-599, 2018. ,
Climate-induced warming, 2015. ,
,
The fate of the dead leaves that fall into streams, Archive für Hydrobiologie, vol.68, pp.465-515, 1971. ,
Priming in the microbial landscape: periphytic algal stimulation of litterassociated microbial decomposers, Ecology, vol.95, pp.749-762, 2014. ,
Joint effects of temperature and litter quality on detritivore-mediated breakdown in streams, Aquatic Sciences, vol.81, 2019. ,
Decomposition of diverse litter mixtures in stream, Ecology, vol.88, pp.219-227, 2007. ,
Moving Headwater Streams to the Head of the Class, BioScience, vol.55, 0196. ,
Temperature affects leaf litter decomposition in low-order forest streams: field and microcosm approaches, FEMS Microbiology Ecology, vol.87, pp.257-267, 2014. ,
Factors controlling mass loss and nitrogen dynamics of plant litter decaying in northern streams, Bulletin of Marine Science, vol.35, pp.341-356, 1984. ,
An introduction to aquatic insects of North America, 2008. ,
, , p.1158
The Contribution of Headwater Streams to Biodiversity in River Networks1: The Contribution of Headwater Streams to Biodiversity in River Networks, JAWRA Journal of the American Water Resources Association, vol.43, pp.86-103, 2007. ,
Autotrophy in Stream Ecosystems, BioScience, vol.28, pp.767-771, 1978. ,
Role of allochtonous detritus in the trophic structure og a woodland springbrook cummunity, Ecology, vol.48, pp.139-149, 1967. ,
Effects of Warming and Nutrient Enrichment on How Grazing Pressure Affects Leaf Litter-Colonizing Bacteria, Journal of Environment Quality, vol.43, 2014. ,
Effects of warming, nutrient enrichment and detritivore presence on litter breakdown and associated microbial decomposers in a simulated temperate woodland creek, Hydrobiologia, vol.770, pp.243-256, 2016. ,
Detritus, trophic dynamics and biodiversity, Ecology Letters, vol.7, pp.584-600, 2004. ,
Experimental whole-stream warming alters community size structure, Global Change Biology, vol.23, pp.2618-2628, 2017. ,
Nutrient enrichment and flow regulation impair structure and function of a large river as revealed by aquatic hyphomycete species richness, biomass, and decomposition rates, Freshwater Science, vol.35, pp.1148-1163, 2016. ,
Climate change and geothermal ecosystems: natural laboratories, sentinel systems, and future refugia, Global Change Biology, vol.20, pp.3291-3299, 2014. ,
Unexpected changes in community size structure in a natural warming experiment, Nature Climate Change, vol.7, p.659, 2017. ,
A globally coherent fingerprint of climate change impacts across natural systems, Nature, vol.421, 2003. ,
Assessing structural and functional ecosystem condition using leaf breakdown: studies on a polluted river, Freshwater Biology, vol.48, pp.2033-2044, 2003. ,
Impact of nitrogen deposition at the species level, Proceedings of the National Academy of Sciences, vol.110, pp.984-987, 2013. ,
Responses of Aquatic Hyphomycetes to Temperature and Nutrient Availability: a Crosstransplantation Experiment, Microbial Ecology, vol.76, pp.328-339, 2018. ,
Stream temperature correlations with air temperatures in Minnesota: implications for climate warming, JAWRA Journal of the American Water Resources Association, vol.34, pp.1109-1121, 1998. ,
World scientists' warning to humanity: a second notice, BioScience, vol.67, pp.1026-1028, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-02349250
Comparison of leaf processing rates under different temperature regimes in three headwater streams, Freshwater Biology, vol.36, pp.277-288, 1996. ,
Effect of climate on the trophic structure of temperate forested streams. A comparison of Mediterranean and Atlantic streams, Science of The Total Environment, vol.390, pp.475-484, 2008. ,
Global Biodiversity Scenarios for the Year 2100 , 2000. ,
, Science, vol.287, pp.1770-1774
Climate change effects on litter decomposition: intensive drought leads to a strong decrease of litter mixture interactions, Plant and Soil, vol.393, pp.69-82, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01359609
Can we predict ectotherm responses to climate change using thermal performance curves and body temperatures?, Ecology Letters, vol.19, pp.1372-1385, 2016. ,
Eutrophication of freshwater and coastal marine ecosystems -a global problem, Environmental Science and Pollution Research, vol.10, pp.126-139, 2003. ,
Initial colonization, nutrient supply, and fungal activity on leaves decaying in streams, Applied and environmental microbiology, vol.66, pp.1114-1119, 2000. ,
The Anthropocene: Are Humans Now Overwhelming the Great Forces of Nature, AMBIO: A Journal of the Human Environment, vol.36, pp.614-621, 2007. ,
Hypsometric (areaaltitude) analysis of erosional topography, vol.63, pp.1117-1142, 1952. ,
The influence of nutrients on fungal growth, productivity, and sporulation during leaf breakdown in streams, Canadian Journal of Botany, vol.73, pp.1361-1369, 1995. ,
, , 1984.
, Degradation, growth, and changes in palatability of leaves colonized by six aquatic hyphomycete species, Mycologia, vol.76, pp.398-407
Changes in the Chemical Composition of Leaves During Processing in a Woodland Stream, Ecology, vol.57, pp.720-727, 1976. ,
Metabolic Rate Variation in Glossina pallidipes (Diptera: Glossinidae): Gender, Ageing and Repeatability, Journal of Insect Physiology, vol.50, pp.419-428, 2004. ,
Extinction risk from climate change, Nature, vol.427, p.145, 2004. ,
The River Continuum Concept, Canadian Journal of Fisheries and Aquatic Sciences, pp.130-137, 1980. ,
Keeping up with a warming world; assessing the rate of adaptation to climate change, Proceedings of the Royal Society B: Biological Sciences, vol.275, pp.649-659, 2008. ,
Nitrogen limitation on land and in the sea: How can it occur?, Biogeochemistry, vol.13, pp.87-115, 1991. ,
Global threats to human water security and river biodiversity, Nature, vol.467, pp.555-561, 2010. ,
Multiple trophic levels of a forest stream linked to terrestrial litter inputs, Science, vol.277, pp.102-104, 1997. ,
Ecological responses to recent climate change, Nature, vol.416, pp.389-395, 2002. ,
, , 1986.
Sentinel systems on the razor's edge: effects of warming on Arctic geothermal stream ecosystems: Impacts of warming on Icelandic stream ecosystems, Global Change Biology, vol.16, 1979. ,
Effects of Warming on Stream Biofilm Organic Matter Use Capabilities, Microbial Ecology, vol.68, pp.132-145, 2014. ,
Factors regulating epilithic biofilm carbon cycling and release with nutrient enrichment in headwater streams, Global Change and River Ecosystems-Implications for Structure, Function and Ecosystem Services, pp.71-88, 2010. ,
,
A global experiment suggests climate warming will not accelerate litter decomposition in streams but might reduce carbon sequestration, Ecology Letters, vol.14, pp.289-294, 2011. ,
Future increase in temperature may stimulate litter decomposition in temperate mountain streams: evidence from a stream manipulation experiment, Freshwater Biology, vol.60, pp.881-892, 2015. ,
Future increase in temperature more than decrease in litter quality can affect microbial litter decomposition in streams, Oecologia, vol.167, pp.279-291, 2011. ,
URL : https://hal.archives-ouvertes.fr/hal-00965516
Synergistic effects of water temperature and dissolved nutrients on litter decomposition and associated fungi, Global Change Biology, vol.17, pp.551-564, 2011. ,
URL : https://hal.archives-ouvertes.fr/hal-00942851
Global synthesis of the temperature sensitivity of leaf litter breakdown in streams and rivers, Global Change Biology, vol.23, pp.3064-3075, 2017. ,
Seasonal variations overwhelm temperature effects on microbial processes in headwater streams: insights from a temperate thermal spring, Aquatic Sciences, vol.81, p.30, 2003. ,
, Methods to study litter decomposition: a practical guide, 2005.
,
Methods for estimating the effect of litterbag mesh size on decomposition, Ecological Modelling, vol.362, pp.65-68, 2019. ,
, , 2010.
CNRS éditions. high temperature, and suggest that a general consequence of warming could be loss of C by headwater streams food webs. In several aspects, our results deviate from expectations based on universal relationships between temperature and individual metabolism (e.g. metabolic theory of ecology), suggesting that we may need to move forward toward less simplistic assumptions to predict the consequence of warming on ecosystem processes. Keywords: Temperature -Nitrogen -Litter decomposition -Respiration -Decomposers Allison, Nature Geoscience, vol.3, pp.336-340, 2010. ,
Global patterns of distribution in stream detritivores: implications for biodiversity loss in changing climates, Global Ecology and Biogeography, vol.21, pp.134-141, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00948718
A global experiment suggests climate warming will not accelerate litter decomposition in streams but might reduce carbon sequestration, Ecology Letters, vol.14, pp.289-294, 2011. ,
Toward a metabolic theory of ecology, Ecology, vol.85, pp.1771-1789, 2004. ,
Metabolic and faunal activity in litters of tree mixtures compared with pure stands, Agriculture, Ecosystems, Environment, vol.24, pp.33-40, 1988. ,
Immobilization and mineralization of N and P by heterotrophic microbes during leaf decomposition, Freshwater Science, vol.31, pp.133-147, 2012. ,
Long-term climate change: Projections, commitments and irreversibility, 2013. ,
Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change ,
Interactions between temperature and nutrients across levels of ecological organization, Global Change Biology, vol.21, pp.1025-1040, 2015. ,
Temperature oscillation coupled with fungal community shifts can modulate warming effects on litter decomposition, Ecology, vol.90, pp.122-131, 2009. ,
URL : https://hal.archives-ouvertes.fr/hal-00965468
Macroinvertebrate assemblages and detritus processing in Kenyan highland streams: more evidence for the paucity of shredders in the tropics?, Freshwater Biology, vol.47, pp.909-919, 2002. ,
Biogeography of aquatic hyphomycetes: current knowledge and future perspectives, Fungal Ecology, vol.19, pp.169-181, 2016. ,
Effects of climate warming on fish thermal habitat in streams on the United States, Limnology and Oceanography, vol.41, pp.1109-1115, 1996. ,
Elevated temperature may intensify the positive effects of nutrients on microbial decomposition in streams, Freshwater Biology, vol.59, pp.2390-2399, 2014. ,
A meta-analysis of the effects of nutrient enrichment on litter decomposition in streams, Biological Reviews, vol.90, pp.669-688, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01186536
Effect of experimental and seasonal warming on litter decomposition in a temperate stream, Aquatic Sciences, vol.76, pp.155-163, 2014. ,
Synergistic effects of water temperature and dissolved nutrients on litter decomposition and associated fungi, Global Change Biology, vol.17, pp.551-564, 2011. ,
URL : https://hal.archives-ouvertes.fr/hal-00942851
Global synthesis of the temperature sensitivity of leaf litter breakdown in streams and rivers, Global Change Biology, vol.23, pp.3064-3075, 2017. ,
Stoichiometric imbalances between detritus and detritivores are related to shifts in ecosystem functioning, Oikos, vol.125, pp.861-871, 2016. ,
Relationships between structure and function in streams contrasting in temperature, Freshwater Biology, vol.54, pp.2051-2068, 2009. ,
Effects of temperature on the performance of a freshwater amphipod, Hydrobiologia, vol.785, pp.35-46, 2017. ,
Transformation of the nitrogen cycle: recent trends, questions, and potential solutions, Science, vol.320, pp.889-892, 2008. ,
Ergosterol as a measure of fungal biomass, 2005. ,
Methods to study litter decomposition -A practical guide, pp.189-195 ,
A perspective on litter breakdown in streams, Oikos, vol.85, pp.377-384, 1999. ,
Stable successional patterns of aquatic hyphomycetes on leaves decaying in a summer cool stream, Mycological Research, vol.97, pp.163-172, 1993. ,
Ergosterol-to-biomass conversion factors for aquatic hyphomycetes, Applied and Environmental Microbiology, vol.59, pp.502-507, 1993. ,
URL : https://hal.archives-ouvertes.fr/hal-01494940
Effects of size and temperature on metabolic rates, Science, vol.21, pp.2248-2251, 2001. ,
The effect of temperature on leaf decomposition and diversity of associated aquatic hyphomycetes depends on the substrate, Fungal Ecology, vol.6, pp.546-553, 2013. ,
Seasonal variations overwhelm temperature effects on microbial processes in headwater streams: insights from a temperate thermal spring, Aquatic Sciences, vol.81, p.30, 2019. ,
URL : https://hal.archives-ouvertes.fr/hal-02338933
The role of invertebrates on leaf litter decomposition in streams -A review, Hydrobiology, vol.86, pp.383-393, 2001. ,
Aquatic hyphomycetes and litter decomposition in tropicalsubtropical low order streams, Fungal Ecology, vol.19, pp.182-189, 2016. ,
Changes in nutrient stoichiometry, elemental homeostasis and growth rate of aquatic litter-associated fungi in response to inorganic nutrient supply, Isme Journal, vol.11, pp.2729-2739, 2017. ,
Latitudinal patterns in leaf litter breakdown: is temperature really important?, Freshwater Biology, vol.32, pp.401-411, 1994. ,
Fungi in freshwaters: ecology, physiology and biochemical potential, FEMS Microbiology Ecology, vol.35, pp.620-651, 2011. ,
Temperature-induced mismatches between consumption and metabolism reduce consumer fitness, Ecology, vol.93, pp.2483-2489, 2012. ,
Detrital stoichiometry as a critical nexus for the effects of streamwater nutrients on leaf litter breakdown rates, Ecology, vol.96, pp.2214-2224, 2015. ,
Temperature affects leaf litter decomposition in low-order forest streams: field and microcosm approaches, FEMS Microbiology Ecology, vol.87, pp.257-267, 2014. ,
Climate change effects on macrofaunal litter decomposition: the interplay of temperature, body masses and stoichiometry, Philosophical Transactions of the Royal Society B, vol.367, pp.3025-3032, 2012. ,
Leaf processing in a woodland stream, Freshwater Biology, vol.4, pp.343-368, 1974. ,
An ecological perspective on in-stream temperature: Natural heat dynamics and mechanisms of human-caused thermal degradation, Environmental Management, vol.27, pp.787-802, 2001. ,
R: A language and environment for statistical computing. R Foundation for Statistical Computing, 2016. ,
Temperature, predator-prey interaction strength and population stability, Global Change Biology, vol.16, pp.2145-2157, 2010. ,
Biodiversity of leaf litter fungi in streams along a latitudinal gradient, Science of the Total Environment, vol.661, pp.306-315, 2019. ,
Aquatic Hyphomycete Communities, 1992. ,
, The Fungal Community: Its Organization and Role in the Ecosystem, pp.729-747
Multiple trophic levels of a forest stream linked to terrestrial litter inputs, Science, vol.277, pp.102-104, 1997. ,
Continentalscale effects of nutrient pollution on stream ecosystem functioning, Science, vol.336, pp.1438-1440, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00958434
Biodiversity and ecosystem productivity in a fluctuating environment: The insurance hypothesis, Proceedings of the National Academy of Sciences of the United States of America, vol.96, pp.1463-1468, 1999. ,
Reconciling the temperature dependence of respiration across timescales and ecosystem types, Nature, vol.487, pp.472-476, 2012. ,