2025

Publications 2025

  1. Zhang, G., Bréda, N., Steil, N., Gaertner, P.-A., Levillain, J., Ruelle, J., & Massonnet, C. (2025). Analysing resilience of European beech tree to recurrent extreme drought events through ring growth, wood anatomy and stable isotopes. Journal of Ecology, 00, 1–19. https://doi.org/10.1111/1365-2745.70014
  2. Dumas, K., Bonfanti, N., Grange, A. et al. Cushion plants as soil engineers: the formation of islands of fertility differ between species in nival environments. Plant Soil (2025). https://doi.org/10.1007/s11104-025-07274-0
  3. Boisseaux, M., Nemetschek, D., Baraloto, C., Burban, B., Casado-Garcia, A., Cazal, J., Clément, J., Derroire, G., Fortunel, C., Goret, J.-Y., Heras, J., Jaouen, G., Maréchaux, I., Scoffoni, C., Vieilledent, G., Vleminckx, J., Coste, S., Schimann, H., & Stahl, C. (2025). Shifting trait coordination along a soil-moisture-nutrient gradient in tropical forests. Functional Ecology, 39, 21–37. https://doi.org/10.1111/1365-2435.14679
  4. Cuny H., Leban J-M., Hervé J-C., Bontemps J-D., Kerfriden B., et al. XyloDensMap: a georeferenced dataset for the wood density of 110,000 trees from 156 European species in France. Scientific Data , 2025, 12 (1), pp.380. https://doi.org/10.1038/s41597-025-04645-1 
  5. D'Aurelio A., Agudo Pérez L., Straus L. G., González Morales M. R., Morales-Muñiz A., et al.. Phenotypic diversity of brown trout (Salmo trutta L.) during the late Upper Pleistocene and Early Holocene in the glacial refugium of Iberia. Palaeogeography, Palaeoclimatology, Palaeoecology, 2025, 675, pp.113073. ⟨10.1016/j.palaeo.2025.113073⟩. ⟨hal-05178067⟩.
  6. Petek I., Gričar J., Jacquin P., Leban J-M, Krajnc L. Wood densities of increment cores of tree species in Slovenia: preliminary results. Euro Dendro 2025, Sep 2025, RIGA, Latvia. 2025. ⟨hal-05268591⟩
  7. Fonti M. V., Von Arx G., Harroue M., Schneider L., Nievergelt D., et al. A protocol for high-quality sectioning for tree-ring anatomy. Frontiers in Plant Science, 2025, 16, pp.1505389. ⟨10.3389/fpls.2025.1505389⟩. ⟨hal-05101339⟩
  8. Zhang Y., Huang J.-G., Wang M, Wang W., Yang F, et al. Soil nitrogen drives inverse acclimation of xylem growth cessation to rising temperature in Northern Hemisphere conifers. Proceedings of the National Academy of Sciences of the United States of America, 2025, 122 (30), ⟨10.1073/pnas.2421834122⟩. ⟨hal-05252214⟩
  9. Rakotozafy S., Bordron B, Razafimbelo T., Razafindrakoto M., Vom Brocke K., et al. High rates of nitrogen fixation and transfer by Cajanus cajan to associated crop in a semi-arid agroforestry system. 2025. ⟨hal-05203783⟩
  10. Jaozandry C. Étude à l'échelle du cerne de bois de l'effet des variations de la fertilité chimique du sol sur la translocation de nutriments dans le bois de chêne : Quercus robur L. et Quercus petraea (Matt.) Liebl. Ecosystèmes. AgroParisTech, 2025. Français. ⟨NNT : 2025AGPT0003⟩. ⟨tel-05300060⟩
  11. Ferguson J. N., Brendel O., & Bechtold U., MYB59 is linked to natural variation of water use associated with warmer1 temperatures in Arabidopsis thaliana, https://doi.org/10.1101/2025.02.27.640580 
  12. Kachouh C., Denaud L., Viguier J., Giradon S., Verjat F., Mesures et suivi de l’humidité par méthodes optiques de placages de peuplier (I214 et Dorskamp), variation colorimétrique et effet de la diffusion lumineuse, Présentation GDR Bois.
  13. Adamik L., Balandier P., Venisse J.-S., Fernandez M., Malagoli P., Water-based root exudates of Molinia caerulea (L.) Moench disrupt root nitrogen metabolism in Quercus petraea (Matt.) Liebl. seedlings with a fast negative effect on budburst, Annals of Forest Science (2025) 82:31
    https://doi.org/10.1186/s13595-025-01306-6 
  14. Arricastres V., Influence des composés chimiques extraits des litières de feuilles d’arbres de forêts tempérées sur les flux de méthane de sols forestiers, Thèse