Have a personal or library account? Click to login
Assessment of the Health Status of Oak Trees in the Zouagha Forest (North-East of Algeria) Cover

Assessment of the Health Status of Oak Trees in the Zouagha Forest (North-East of Algeria)

Open Access
|Dec 2024

References

  1. Alderotti, F. & Verdiani E. (2023). God save the queen! How and why the dominant evergreen species of the Mediterranean Basin is declining?. AoB Plants, 15(5), 1‒14. DOI: 10.1093/aobpla/plad051.
  2. Anderson, K. & Gaston K. (2013). Lightweight unmanned aerial vehicles will revolutionize spatial ecology. Frontiers in Ecology and the Environment, 11(3), 138–146. DOI: 10.1890/120150.
  3. Atemasov, A. & Atemasova T. (2023). A Soundscape assessment of the oak forests in the national park “Homilshanski Lisy” (Northeastern Ukraine). Ekológia (Bratislava), 42(1), 55–63. DOI: 10.2478/eko-2023-0007.
  4. Atemasov, A., Atemasova, T., Devyatko, T., Lysenko, N. & Goncharov G. (2011). The structure of the communities of breeding birds in oak forests on elevated positions in the southern part of Middle Russian Hills (in Russian). In Bird Ecology: Species, Communities, Interrelations (pp. 345‒358). Part 1. Proceedings of the meeting commemorating the 150th anniversary of the birth of Nikolay N. Somov (1861-1923), 1-4 December 2011. Kharkov, Ukraine.
  5. Barbeito, I., Collet, C. & Ningre F. (2014). Crown responses to neighbour density and species identity in a young mixed deciduous stand. Trees, 28, 1751‒1765. DOI: 10.1007/s00468-014-1082-2.
  6. Bateman, J. & Uzal A. (2021). The relationship between the acoustic complexity index and avian species richness and diversity: a review. Bio-acoustics, 31, 614‒627. DOI: 10.1080/09524622.2021.2010598.
  7. Bendixsen, D.P., Hallgren, W.S. & Frazier A.E. (2015). Stress factors associated with forest decline in xeric oak forests of south-central United States. For. Ecol. Manag., 347, 40‒48. DOI: 10.1016/j.foreco.2015.03.015.
  8. Bouget, C., Cours, J. & Sallé A. (2023). Forêts en crise et biodiversité : menaces et opportunités. Effets des dépérissements et de leur gestion sur la biodiversité forestière. Rev. For. Fr., 74(2), 193‒199. DOI: 10.20870/revforfr.2023.7594.
  9. Bukachenko, L.I. & Naglov V.A. (1954). To the avifauna of forests near the Donets Biological Station of Kharkov University (in Russian). Scholarly Notes of the Kharkov University, 52 (Proceedings of the Research Institute of Biology, 20), 65‒78.
  10. Camarero, J.J., Franquesa, M. & Sangüesa-Barreda G. (2015). Timing of drought triggers distinct growth responses in holm oak: implications to predict warminginduced forest defoliation and growth decline. Forests, 6(5), 1576‒1597. DOI: 10.3390/f6051576.
  11. Castello, J.D., Cale, J.A., D’Angelo, C.M. & Linares J.C. (2016). Baseline mortality analysis reveals legacy of contrasting land use practices on the structural sustainability of endangered Moroccan and Spanish mountain forests. Forests, 7(8), 172. DOI: 10.3390/f7080172.
  12. Cohen, J. (1969). Statistical power analysis for the behavioural sciences. New York: Academic Press.
  13. Connell, J.H. (1978). Diversity in tropical rain forests and coral reefs. Science, 199(4335), 1302–1310. DOI: 10.1126/science.199.4335.1302.
  14. Costanza, R., De Groot, R., Sutton, P., Van Der Ploeg, S., Andersons, S.J., Kubiszewski, I., Farber, S. & Kerry-Turner R. (2014). Changes in the global value of ecosystem ser vices. Global Environmental Change, 26, 152‒158. DOI: 10.1016/j.gloenvcha.2014.04.002.
  15. De la Cruz, A.C., Gil, P.M., Fernández-Cancio, Á., Minaya, M., Navarro-Cerrillo, R.M., Sánchez Salguero, R. & Grau J.M. (2014). Defoliation trig gered by climate induced effects in Spanish ICP Forests monitoring plots. For. Ecol. Manag., 331, 245‒255. DOI: 10.1016/j.foreco.2014.08.010.
  16. Depraetere, M., Pavoine, S., Jiguet, F., Gasc, A., Duvail, S. & Sueur J. (2012). Monitoring animal diversity using acoustic indices: Implementation in a temperate woodland. Ecological Indicators, 13(1), 46‒54. DOI: 10.1016/j.ecolind.2011.05.006.
  17. Drénou, C., Bouvier, M. & Lemaire J. (2011). La méthode de diagnostic ARCHI. Application aux chênes pédonculés dépérissants. Forêt Entreprise, 200, 4‒15.
  18. Drénou, C., Bouvier, M. & Lemaire J. (2015). The diagnostic method ARCHI applied on declining pedunculate oaks. Arboric. J., 37(3), 166‒179. DOI: 10.1080/03071375.2015.1075336.
  19. Emberger, C., Larrieu, L. & Gonin P. (2013). Dix facteurs clés pour la diversité des espèces en forêt. Comprendre l’Indice de Biodiversité Potentielle (IBP). Document technique. Paris: Institut Pour le Développement Forestier.
  20. Encinas-Valero, M., Esteban, R., Hereş, A.M., Vivas, M., Fakhet, D., Aranjuelo, I., Solla, A., Moreno, G. & Curiel Yuste J. (2022). Holm oak decline is determined by shifts in fine root phenotypic plasticity in response to belowground stress. New Phytol., 235(6), 2237‒2251. DOI: 10.1111/nph.18182.
  21. Froidevaux, J., Zellweger, F., Bollmann, K. & Obrist M. (2014). Optimizing passive acoustic sampling of bats in forests. Ecology and Evolution, 4(24), 4690–4700. DOI: 10.1002/ece3.1296.
  22. Kasten, E., Gage, S., Fox, J. & Joo W. (2012). The remote environmental assessment laboratory’s acoustic library: an archive for studying sound-scape ecology. Ecological Informatics, 12, 50‒67. DOI: 10.1016/j.ecoinf.2012.08.001.
  23. Keren, S., Svoboda, M., Janda, P. & Nagel T. (2020). Relationships between structural indices and conventional stand attributes in an old-growth forest in southeast Europe. Forests, 11(1), 4. DOI: 10.3390/f11010004.
  24. Lebourgeois, F., Delpierre, N., Dufrêne, E., Cecchini, S., Macé, S., Croisé, L. & Nicolas M. (2019). Fructification du hêtre et des chênes en france: rôle des températures, du pollen et du bilan de carbone et relation avec la croissance des peuplements. Revue Forestière Française, 71(1), 29–60. DOI: 10.4267/2042/70518.
  25. Lee, C., Voelker, S., Holdo, R. & Muzika R. (2014). Tree architecture as a predictor of growth and mortality after an episode of red oak decline in the Ozark Highlands of Missouri, USA. Can. J. For. Res., 44 (9), 1005‒1012. DOI: 10.1139/cjfr-2014-0067.
  26. Lyazid, A., Rached-Kanouni, M., Chetouh, N. & Zerrouki A. (2021). Sanitry situation of the machrouha forest (Algeria). Agbiol Conference, Online Conference, On Agricultural, Biological & Life Science Conference (pp. 656‒661), 1-3 September, 2021, Edirne, Turkey.
  27. Merlin, M., Perot, T., Perret, S., Korboulewski, N. & Vallet P. (2015). Effects of stand composition and tree size on resistance and resilience to drought in sessile oak and Scots pine. For. Ecol. Manag., 265, 161‒171. DOI: 10.1016/j.foreco.2014.11.032.
  28. Miłosz, T. (2022). Worldwide review of bacterial diseases of oaks (Quercus sp.) and their potential threat to trees in Central Europe. Forestry, 96(4), 425–433. DOI: 10.1093/forestry/cpac048.
  29. Müller, S., Shaw, T., Güntert, D., Helmbold, L., Schütz, N., Thomas, L. & Scherer-Lorenzen M. (2020). Ecoacoustics of small forest patches in agricultural landscapes: acoustic diversity and bird richness increase with patch size. Biodiversity, 21(1), 48‒60. DOI: 10.1080/14888386.2020.1733086.
  30. Nageleisen, L.M. (2005). Dépérissement du hêtre : présentation d’une méthode symptomatologique de suivi. Rev. For. Fr., 57(2), 255‒262. DOI: 10.4267/2042/5041.
  31. Nageleisen, L.M. & Goudet M. (2011). Manuel de notation des dommages forestiers (symptômes, causes, état des cimes). Paris, France.
  32. Nguyen, D. (2016). Fungal disease incidence along tree diversity gradients depends on latitude in European forests. Ecology and Evolution, 6(8), 2426‒2438. DOI: 10.1002/ece3.2056:10.1002/ece3.2056.
  33. Ostry, M., Venette, R. & Juzwik J. (2011). Decline as a disease category: Is it helpful? Phytopathology, 101(4), 404‒409. DOI: 10.1094/PHYTO-06-10-0153.
  34. Pausas, J. & Keeley J. (2017). Epicormic resprouting in fire- Prone Ecosystems. TrendsPlantSci., 22(12), 1008‒1015. DOI: 10.1016/j.tplants.2017.08.010.
  35. Pijanowski, B., Villanueva-Rivera, L., Dumyahn, S., Farina, A., Krause, B., Napoletano, B., Gage, S. & Pieretti N. (2011). Soundscape Ecology: The Science of sound in landscapes. BioScience, 61(3), 203‒216. DOI: 10.1525/bio.2011.61.3.6.
  36. Rached-Kanouni, M., Kara, K., Khammar, H. & Ababsa L. (2020a). Floristic diversity and demographic structure of the Sidi R’ghies forest, northeastern of Algeria. Biodiversitas, 21 (3), 875‒881. DOI: 10.13057/Biodiv/D210304.
  37. Rached-Kanouni, M., Zerrouki, A., Lahmar, M., Beldjazia, A., Kara, K. & Ababsa L. (2020b). Assess ment of the health status of the Sidi R’Ghies forest, Oum El Bouaghi, north-east Algerian. Biodiversitas Journal of Biological Diversity, 21(5), 1980‒1988. DOI: 10.13057/biodiv/d210525.
  38. Toïgo, M., Nicolas, M., Jonard, M., Croisé, L., Nageleisen, L.M. & Jactel H. (2020). Temporal trends in tree defoliation and response to multiple biotic and abiotic stresses. For. Ecol. Manag., 477, 118476. DOI: 10.1016/j.foreco.2020.118476.
  39. Touafchia, B., Rached-Kanouni, M., Zerrouki, A. & Kara K. (2024). Floristic diversity and demographic structure of Ouled Bechih Forest (Algeria). Ecological Engineering & Environmental Technology, 25(1), 73–81. DOI: 10.12912/27197050/174142.
  40. Trouvé, R., Bontemps, J.D., Seynave, I., Collet, C. & Lebourgeois F. (2015). Stand density tree social status and water stress influence allocation in height and diameter growth of Quercus petraea (Liebl.). Tree Physiol., 35(10), 1035‒1046. DOI: 10.1093/treephys/tpv067.
  41. Varo-Martínez, M.Á. & Navarro-Cerrillo R.M. (2021). Stand delineation of Pinus sylvestris L. plantations suffering decline processes based on biophysical tree crown variables: A necessary tool for adaptive silviculture. Remote Sensing, 13(3), 436. DOI: 10.3390/rs13030436.
  42. Yvonne, N., Jana, K., Alena, K. & Jiří N. (2012). Lakes and pools of Aquitaine region (France) –a biodiversity hotspot of Synurales in Europe. Nova Hedwigia, 95(1–2), 1–24. DOI: 10.1127/0029-5035/2012/0036.
  43. Zerrouki, A., Kara, K., Rached-Kanouni, M., Redjaimia, L. & Touafchia B. (2024). Contribution to the study of the health state of holm oak in the Chettaba Forest (Algeria). Ecological Engineering & Environmental Technology, 25(2), 17–30. DOI: 10.12912/27197050/174219.
DOI: https://doi.org/10.2478/eko-2024-0016 | Journal eISSN: 1337-947X | Journal ISSN: 1335-342X
Language: English
Page range: 158 - 166
Submitted on: Apr 5, 2024
Accepted on: Jul 29, 2024
Published on: Dec 20, 2024
Published by: Slovak Academy of Sciences, Mathematical Institute
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2024 Norhane Chouiter, Malika Rached-Kanouni, Ouarda El Wahida Boucif, published by Slovak Academy of Sciences, Mathematical Institute
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.