M. Mooshammer, W. Wanek, I. Hämmerle, L. Fuchslueger, F. Hofhansl et al., Adjustment of microbial nitrogen use efficiency to carbon: nitrogen imbalances regulates soil nitrogen cycling, Nature communications, vol.5, pp.1-7, 2014.

M. Mooshammer, W. Wanek, J. Schnecker, B. Wild, S. Leitner et al.,

I. Hämmerle, A. H. Frank, and L. Fuchslueger, Stoichiometric controls of nitrogen and phosphorus cycling in decomposing beech leaf litter, Ecology, vol.93, pp.770-782, 2012.

C. J. Murphy, E. M. Baggs, N. Morley, D. P. Wall, and E. Paterson, Rhizosphere priming can promote mobilisation of N-rich compounds from soil organic matter, Soil Biology and Biochemistry, vol.81, pp.236-243, 2015.

T. Nasholm, A. Ekblad, A. Nordin, R. Giesler, M. Hogberg et al., Boreal forest plants take up organic nitrogen, Nature, vol.392, pp.914-916, 1998.

T. Nasholm, K. Kielland, and U. Ganeteg, Uptake of organic nitrogen by plants, New Phytologist, vol.182, pp.31-48, 2009.

J. C. Neff, I. Chapin, F. S. Vitousek, and P. M. , Breaks in the cycle: dissolved organic nitrogen in terrestrial ecosystems, Front Ecol Environ, vol.1, pp.205-211, 2003.

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

R. R. Northup, Z. S. Yu, R. A. Dahlgren, and K. A. Vogt, Polyphenol control of nitrogen release from pine litter, Nature, vol.377, pp.227-229, 1995.

J. M. Norton and M. K. Firestone, N dynamics in the rhizosphere of Pinus ponderosa seedlings, Soil Biology & Biochemistry, vol.28, pp.351-362, 1996.

R. Öhlinger, Biomass-N by Fumigation-Extraction Technique. Methods in soil biology, pp.58-60, 1996.

J. Persson, P. Högberg, A. Ekblad, M. N. Högberg, A. Nordgren et al., Nitrogen acquisition from inorganic and organic sources by boreal forest plants in the field, Oecologia, vol.137, pp.252-257, 2003.

R. P. Phillips, E. Brzostek, and M. G. Midgley, The mycorrhizal-associated nutrient economy: a new framework for predicting carbon-nutrient couplings in temperate forests, New Phytologist, vol.199, pp.41-51, 2013.

C. Plassard, B. Bonafos, and B. Touraine, Differential effects of mineral and organic N sources, and of ectomycorrhizal infection by Hebeloma cylindrosporum, on growth and N utilization in Pinus pinaster, Plant Cell and Environment, vol.23, pp.1195-1205, 2000.

E. Puglisi, S. Pascazio, N. Suciu, I. Cattani, G. Fait et al., Rhizosphere microbial diversity as influenced by humic substance Version postprint Comment citer ce document, 2013.

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

, Accepted Article This article is protected by copyright. All rights reserved. amendments and chemical composition of rhizodeposits, Journal of Geochemical Exploration, vol.129, pp.82-94

R. , R: A language and environment for statistical computing. R Foundation for Statistical Computing, 2008.

R. Rakotomalala, TANAGRA: un logiciel gratuit pour l'enseignement et la recherche, Actes de EGC, 2005.

P. Satti, M. J. Mazzarino, M. Gobbi, F. Funes, L. Roselli et al., Soil N dynamics in relation to leaf litter quality and soil fertility in north-western Patagonian forests, Journal of Ecology, vol.91, pp.173-181, 2003.

J. P. Schimel and J. Bennett, Nitrogen mineralization: challenges of a changing paradigm, Ecology, vol.85, pp.591-602, 2004.

J. P. Schimel, J. Bennett, and N. Fierer, Microbial community composition and soil nitrogen cycling: is there really a connection? Biological Diversity and Function in Soils, Ecological Reviews, pp.171-188, 2005.

J. P. Schimel, R. G. Cates, and R. Ruess, The role of balsam poplar secondary chemicals in controlling soil nutrient dynamics through succession in the Alaskan taiga, 1998.

. Biogeochemistry, , vol.42, pp.221-234

, Version postprint Comment citer ce document

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

J. A. Schweitzer, J. K. Bailey, B. J. Rehill, G. D. Martinsen, S. C. Hart et al., Genetically based trait in a dominant tree affects ecosystem processes, Ecology Letters, vol.7, pp.127-134, 2004.

N. A. Scott and D. Binkley, Foliage litter quality and annual net N mineralization: Comparison across North American forest sites, Oecologia, vol.111, pp.151-159, 1997.

S. E. Smith and D. J. Read, Mycorrhizal Symbiosis, 2008.
URL : https://hal.archives-ouvertes.fr/hal-01268065

A. Smolander, R. A. Ketola, T. Kotiaho, S. Kanerva, K. Suominen et al., Volatile monoterpenes in soil atmosphere under birch and conifers: Effects on soil N transformations, Soil Biology & Biochemistry, vol.38, pp.3436-3442, 2006.

H. Staaf, Litter decomposition in beech forests -effects of excluding tree roots, Biology and fertility of soils, vol.6, pp.302-305, 1988.

M. S. Strickland, C. Lauber, N. Fierer, and M. A. Bradford, Testing the functional significance of microbial community composition, Ecology, vol.90, pp.441-451, 2009.

L. M. Stump and D. Binkley, Relationships between litter quality and nitrogen availability in rocky-mountain forests, Canadian Journal of Forest Research-Revue Canadienne De Recherche Forestiere, vol.23, pp.492-502, 1993.

, Version postprint Comment citer ce document

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

G. V. Subbarao, M. Rondon, O. Ito, T. Ishikawa, I. M. Rao et al., Biological nitrification inhibition (BNI) -is it a widespread phenomenon, Plant and Soil, vol.294, pp.5-18, 2007.

M. Tenenhaus, La régression PLS, 1998.

M. Tibbett and F. E. Sanders, Ectomycorrhizal symbiosis can enhance plant nutrition through improved access to discrete organic nutrient patches of high resource quality, Annals of Botany, vol.89, pp.783-789, 2002.

J. Trap, F. Bureau, A. Brethes, B. Jabiol, J. Ponge et al., Does moder development along a pure beech, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00593548

, chronosequence result from changes in litter production or in decomposition rates?, Soil Biology and Biochemistry, vol.43, pp.1-8

J. Trap, S. Hättenschwiler, I. Gattin, and M. Aubert, Forest ageing: An unexpected driver of beech leaf litter quality variability in European forests with strong consequences on soil processes, Forest Ecology and Management, vol.302, pp.338-345, 2013.

J. Trap, K. Laval, M. Akpa-vinceslas, C. Gangneux, T. Decaëns et al., Humus macro-morphology and soil microbial community changes along a 130-yr-old Fagus sylvatica chronosequence, Soil Biology & Biochemistry, vol.43, pp.1553-1562, 2011.

, Version postprint Comment citer ce document

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

M. G. Van-der-heijden, R. D. Bardgett, and N. M. Van-straalen, Theunseen majority: soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems, Ecology Letters, vol.11, pp.296-310, 2008.

E. Verkaik, A. G. Jongkind, and F. Berendse, Short-term and long-term effects of tannins on nitrogen mineralisation and litter decomposition in kauri, Don) Lindl.) forests. Plant and Soil, vol.287, pp.337-345, 2006.

P. Vitousek, Nutrient cycling and nutrient use efficiency, American Naturalist, vol.119, pp.553-572, 1982.

T. Wallenda and D. J. Read, Kinetics of amino acid uptake by ectomycorrhizal roots, Plant Cell and Environment, vol.22, pp.179-187, 1999.

S. Wold, M. Sjostrom, and L. Eriksson, PLS-regression: a basic tool of chemometrics, vol.58, pp.109-130, 2001.

T. H. Wu, Can ectomycorrhizal fungi circumvent the nitrogen mineralization for plant nutrition in temperate forest ecosystems?, Soil Biology & Biochemistry, vol.43, pp.1109-1117, 2011.

N. Wurzburger and R. L. Hendrick, Plant litter chemistry and mycorrhizal roots promote a nitrogen feedback in a temperate forest, Journal of Ecology, vol.97, pp.528-536, 2009.

B. Zeller and E. Dambrine, Coarse particulate organic matter is the primary source of mineral N in the topsoil of three beech forests, Soil Biology and Biochemistry, vol.43, pp.542-550, 2011.

J. Trap, M. Akpa-vinceslas, P. Margerie, S. Boudsocq, F. Richard et al., Slow decomposition of leaf litter from mature Fagus sylvatica trees promotes offspring nitrogen acquisition by interacting with ectomycorrhizal fungi, Journal of Ecology, vol.105, issue.2, pp.528-539, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02419384

B. Zhu, J. L. Gutknecht, D. J. Herman, D. C. Keck, M. K. Firestone et al., Rhizosphere priming effects on soil carbon and nitrogen mineralization, Soil Biology and Biochemistry, vol.76, pp.183-192, 2014.

W. Zhu and J. G. Ehrenfeld, The effects of mycorrhizal roots on litter decomposition, soil biota, and nutrients in a spodosolic soil, Plant and Soil, vol.179, pp.109-118, 1996.