Natural regeneration patterns of Fagus sylvatica L. in canopy gaps of a low-elevation European beech forest in central Italy
DOI:
https://doi.org/10.12899/asr-2710Keywords:
Seedlings, saplings, treefall gap, old-growth forests, thermophilic beech forest, linear mixed modelsAbstract
Understanding natural regeneration in European beech (Fagus sylvatica L.) forests is crucial for sustainable management and climate adaptation. This study compared natural regeneration and gap characteristics in two central Italian forests: Bassano Romano, with recent management, and Monte Raschio, a UNESCO-protected old-growth site. Regeneration density was significantly higher in Bassano Romano, likely due to progressive canopy openings from shelterwood management, while Monte Raschio showed greater broadleaved species diversity, suggesting gap-driven regeneration. Despite similar mean gap sizes (~500 m²), Monte Raschio exhibited higher variability. Regeneration was denser along warmer, sunnier gap edges, confirming microclimatic influences. The medium- and small-size gaps seems to favour the regeneration in both forest area, most likely because they can create the best conditions for beech natural regeneration. Indeed, regeneration height increased up to medium-sized gaps (~500 m²). The results of the linear mixed model indicate that the two different forests significantly influence the variance as a random effect.
The findings of this study suggest how shelterwood systems may reinforce beech dominance and how gap-cutting fosters species diversity, highlighting the need for a nuanced approach that balances regeneration goals with biodiversity conservation. Adaptive management emerges as a critical tool to ensure the long-term resilience and functional stability of temperate forests.
References
Abrari Vajari K., Jalilvand H., Pourmajidian M.R., Espahbodi K., Moshki A. 2012 - Effect of canopy gap size and ecological factors on species diversity and beech seedlings in managed beech stands in Hyrcanian forests. Journal of Forestry Research 23: 217−222. https://doi.org/10.1007/s11676-012-0244-6
Aszalós R., Kovács, B., Tinya F., Németh C., Horváth C.V., Ódor P. 2023 - Canopy gaps are less susceptible to disturbance-related and invasive herbs than clear-cuts: Temporal changes in the understorey after experimental silvicultural treatments. Forest Ecology and Management 549: 121438. https://doi.org/10.1016/j.foreco.2023.121438
Bagnato S., Marziliano P.A., Sidari M., Mallamaci C., Marra F., Muscolo A. 2021 - Effects of gap size and cardinal directions on natural regeneration, growth dynamics of trees outside the gaps and soil properties in European beech forests of southern Italy. Forests 12: 1563. https://doi.org/10.3390/f12111563
Barna M. 2008 - The effects of cutting regimes on natural regeneration in submountain beech forests: species diversity and abundance. Journal of Forest Science 54 (12): 533-544. https://doi:10.17221/42/2008-JFS.
Clinton B.D., Baker R. 2000 - Catastrophic windthrow in the southern Appalachians: characteristics of pits and mounds and initial vegetation responses. Forest Ecology and Management 126: 51−60. https://doi.org/10.1016/S0378-1127(99)00082-1
De Assis Barros L., Venter M., Elkin C., O Venter O. 2022 - Managing forests for old-growth attributes better promotes the provision of ecosystem services than current age-based old-growth management. Forest Ecology and Management 511: 120130. https://doi.org/10.1016/j.foreco.2022.120130.
De Groot R.S., Wilson M.A., Boumans R.M.J. 2002 - A typology for the classification, description and valuation of ecosystem functions, goods and services. Ecological Economics 41(3): 393-408. https://doi.org/10.1016/S0921-8009(02)00089-7
Feldmann E., Drößler L., Hauck M., Kucbel S., Pichler V., Leuschner C. 2018 - Canopy gap dynamics and tree understory release in a virgin beech forest, Slovakian Carpathians. Forest Ecology and Management 415: 38–46. https://doi.org/10.1016/j.foreco.2018.02.022
Feldmann E., Glatthorn J., Ammer C., Leuschner C. 2020 - Regeneration Dynamics Following the Formation of Understory Gaps in a Slovakian Beech Virgin Forest. Forests 11(5): 585. https://doi.org/10.3390/f11050585
Giannini T., Cutini A., Gugliotta O.I., Maria Chiara Manetti M.C. 2010 - Tree canopy cover and natural regeneration into strictly protected forest areas: the MaB reserve of Montedimezzo (Isernia,Italy). Annals of Silvicultural Research (36): 87 – 96. DOI: 10.12899/ASR-823
Hammond M.E., Pokorný R. 2020 - Effects of gap size on natural regeneration and microenvironmental soil conditions in European beech (Fagus sylvatica L.) and Norway spruce (Picea abies (L.) Karst) dominated mixed forest. Plant, Soil and Environment 66: 607–615. https://doi.org/10.17221/397/2020-PSE
Janík D., Král K., Adam D., Hort L., Samonil P., Unar P., Vrska T., McMahon S. 2016 - Tree Spatial Patterns of Fagus sylvatica Expansion over 37 Years. Forest Ecology and Management 375: 134–145. https://doi.org/10.1016/j.foreco.2016.05.017
Kovács B., Tinya F., Németh Cs., Ódor P. 2020 - Unfolding the effects of different forestry treatments on microclimate: results of a 4-year experiment. Ecological Applications 30(2): e02043 https://doi.org/10.1002/eap.2043
Leuschner C. 2020 - Drought response of European beech (Fagus sylvatica L.) - a review. Perspectives in Plant Ecology, Evolution and Systematics 47: 125576. https://doi.org/10.1016/j. ppees.2020.125576.
Lin Y., Hulting M.L., Augspurger C.K. 2004 - Causes of spatial patterns of dead trees in forest fragments in Illinois. Plant Ecology 170: 15−27. https://doi.org/10.1023/B:VEGE.0000019017.41546.eb
Madsen P., Hahn K. 2008 - Natural Regeneration in a Beech-Dominated Forest Managed by Close-to-Nature Principles - A Gap Cutting Based Experiment. Canadian Journal of Forest Research 38: 1716–1729. https://doi.org/10.1139/X08-026
Mattei M., Conticelli S., Giordano G. 2010 - The Tyrrhenian margin geological setting: from the Apennine orogeny to the K-rich volcanism. In G.G. Funiciello R (a cura di), The Colli Albani Volcano: 7-27
Mazza G., Becagli C., Proietti R., Corona P. 2020 - Climatic and anthropogenic influence on tree-ring growth in riparian lake forest ecosystems under contrasting disturbance regimes. Agricultural and Forest Meteorology 291: 108036. https://doi.org/10.1016/j.agrformet.2020.108036.
Mazza G., Monteverdi M.C., Altieri S., Battipaglia G. 2024 - Climate-driven growth dynamics and trend reversal of Fagus sylvatica L. and Quercus cerris L. in a low-elevation beech forest in Central Italy. Science of the Total Environment 908: 168250. https://doi.org/10.1016/j.scitotenv.2023.168250
Muscolo A., Settineri G., Bagnato S., Mercurio R., Sidari M. 2017 - Use of canopy gap openings to restore coniferous stands in Mediterranean environment. iForest 10: 322-327. https://doi.org/10.3832/ifor1983-009
Muscolo A., Bagnato S., Sidari M., Mercurio R. 2014 - A review of the roles of forest canopy gaps. Journal of Forestry Research 25: 725–736. https://doi.org/10.1007/s11676-014-0521-7
Naaf T., Wulf M. 2007 - Effects of gap size, light and herbivory on the herb layer vegetation in European beech forest gaps. Forest Ecology and Management 244: 141–149. https://doi.org/10.1016/j.foreco.2007.04.020
Nagel T.A., Zenner E., Brang P. 2013 - Implications for Integrated Forest Management. Integrative Approaches as an Opportunity for the Conservation of Forest Biodiversity. Research in Old-Growth Forests and Forest Reserves. European Forest Institute: Freiburg, Germany: 44–50.
Nocentini S. 2009 - Structure and management of beech (Fagus sylvatica L.) forests in Italy. iForest 2: 105–113. https://doi.org/10.3832/ifor0499- 002.
Orman O., Wrzesinski P., Dobrowolska D., Szewczyk J. 2021 - Regeneration growth and crown architecture of European beech and silver fir depend on gap characteristics and light gradient in the mixed montane old-growth stands. Forest Ecology and Management 482: 118866. https://doi.org/10.1016/j.foreco.2020.118866
Paletto A., Pieratti E., De Meo I., Agnelli A.E., Cantiani P., Chiavetta U., Mazza G., Lagomarsino A. 2021 - A multi-criteria analysis of forest restoration strategies to improve the ecosystem services supply: an application in Central Italy. Annals of Forest Science 78: 7. https://doi.org/10.1007/s13595- 020-01020-5.
Pesaresi S., Biondi E., Casavecchia S. 2017 - Bioclimates of Italy. Journal of Maps 13 (2): 955–960. https://doi.org/10.1080/17445647.2017.1413017
Runkle J.R. 1992 - Guidelines and Sample Protocol for Sampling Forest Gaps. General Technical Report PNW-GTR-283. Forest Service: Washington, DC, USA.
Sardans J., Peñuelas J. 2013 - Plant-soil interactions in Mediterranean forest and shrublands: Impacts of climatic change. Plant Soil 365: 1–33. https://doi.org/10.1007/s11104013-1591-6.
Scharenbroch B.C., Bockheim J.G. 2007 - Pedodiversity in an old-growth northern hardwood forest in the Huron Mountains, Upper Peninsula, Michigan. Canadian Journal of Forest Research 37: 1106−1117. https://doi.org/10.1139/X06-312
Schliemann S.A., Bockheim J.G. 2011 - Methods for studying treefall gaps: A review. Forest Ecology and Management 261: 1143–1151. https://doi.org/10.1016/j.foreco.2011.01.011
Stiers M., Willim K., Seidel D., Ammer C., Kabal M., Stillhard J., Annighöfer P. 2019 - Analyzing spatial distribution patterns of European Beech (Fagus sylvatica L.) regeneration in dependence of canopy openings. Forests 10: 637. https://doi.org/10.3390/f10080637
Tinya F., Kovács B., Aszalós R., Tóth B., Csépányi P., Németh C., Ódor P. 2020 - Initial regeneration success of tree species after different forestry treatments in a sessile oak-hornbeam forest. Forest Ecology and Management 459: 117810. https://doi.org/10.1016/j.foreco.2019.117810
Vilhar U., Roženbergar D., Simončič P., Diaci J. 2015 - Variation in irradiance, soil features and regeneration patterns in experimental forest canopy gaps. Annals of Forest Science 72: 253–266. https://doi.org/10.1007/s13595-014-0424-y
Wagner S., Collet C., Madsen P., Nakashizuka T., Nyland R.D., Sagheb-Talebi K. 2010 - Beech regeneration research: from ecological to silvicultural aspects. Forest Ecology and Management 259: 2172–2182. https://doi.org/10.1016/j.foreco.2010.02.029
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