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Development over time of the tree-related microhabitat profile: the case of lowland beech–oak coppice-with-standards set-aside stands in France

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Abstract

European forest managers are implementing set-aside measures in managed forests to restore key structures for forest biodiversity such as tree-related microhabitats (TreMs). However, the time required to regenerate these structures is little known. We assessed the patterns of thirteen TreM types on 282 plots in 24 lowland forests in southwestern France. We applied a synchronic sequence ranging from 1 to 80 years after the last harvest, a time frame which is considered long enough to observe significant changes in the TreM profile. We sampled lowland beech–oak coppice-with-standards stands representative of the different forest ownerships and management regimes occurring in France; our assessment included both public and private forests with or without formal management plans. We found that both TreM density and diversity just after harvesting were lower, though not significantly so, in private stands without any management plan than in the other management regimes. We observed both significantly higher TreM density and diversity in plots harvested 10–15 years ago than in plots harvested 1–5 years ago. The next marked difference did not occur until stands had been harvested 70–80 years ago. Globally, time since last harvest was the best explanatory variable for variations in both TreM density and diversity. We therefore recommend: (1) conserving more habitat trees in harvested areas, particularly cavity trees, since the densities we observed were much lower than the densities required by cavity-dwelling species, and (2) letting set-aside patches freely complete several full silvigenetic cycles. This latter practice would avoid the inefficacy (or possibly even negative effects) of a temporary conservation network, and would also simplify management of the network over time. Further research should assess TreM occurrences in a permanent reserve network. Diachronic observations would make it possible to highlight the drivers of TreM profile development.

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Fig. 1

Source: Forest Cover Map, JRC 2006

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References

  • Ball JP, Lindenmayer DB, Possingham HP (1999) A tree hollow dynamics simulation model. For Ecol Manage 123:179–184

    Article  Google Scholar 

  • Bässler C, Müller J (2010) Importance of natural disturbance for recovery of the rare polypore Antrodiella citrinella Niemela & Ryvarden. Fungal Biol 114:129–133

    Article  PubMed  Google Scholar 

  • Bastien Y (2002) Taillis et Taillis sous futaie. ENGREF, Nancy

    Google Scholar 

  • Bauhus J, Puettmann K, Messier C (2009) Silviculture for old-growth attributes. For Ecol Manage 258:525–537

    Article  Google Scholar 

  • Bernicchia A (2005) Polyporaceae s.l. Candusso, Alassio

    Google Scholar 

  • Blondel J (2005) Bois mort et à cavités: leur rôle pour l’avifaune cavicole. In: Vallauri D et al (eds) Bois morts et à cavités: une clé pour des forêts vivantes. Tec & Doc Lavoisier, Paris, pp 137–142

    Google Scholar 

  • Bouget C, Parmain G (2016) Effects of landscape design of forest reserves on saproxylic beetle diversity. Conserv Biol 30:92–102

    Article  CAS  PubMed  Google Scholar 

  • Bouget C, Lassauce A, Jonsel M (2012) Effects of fuelwood harvesting on biodiversity—a review focused on the situation in Europe. Can J For Res 42:1421–1432

    Article  Google Scholar 

  • Bouget C, Larrieu L, Nusillard B, Parmain G (2013) In search of the best local habitat drivers for saproxylic beetle diversity in temperate deciduous forests. Biodivers Conserv 22:2111–2130

    Article  Google Scholar 

  • Bouget C, Larrieu L, Brin A (2014a) Key features for saproxylic beetle diversity derived from rapid habitat assessment in temperate forests. Ecol Ind 36:656–664

    Article  Google Scholar 

  • Bouget C, Parmain G, Gilg O, Noblecourt T, Nusillard B, Paillet Y, Pernot C, Larrieu L, Gosselin F (2014b) Does a set-aside conservation strategy help the restoration of old-growth forest attributes and recolonization by saproxylic beetles? Anim Conserv 17:342–353

    Article  Google Scholar 

  • Burnel L, Pélissier C (2009) Méthode de préparation d’échantillon de bois feuillus pour utilisation en dendrochronologie. CAH Tech INRA 66:5–12

    Google Scholar 

  • Burrascano S, Keeton WS, Sabatini FM, Blasi C (2013) Commonality and variability in the structural attributes of moist temperate old-growth forests: a global review. For Ecol Manage 291:458–479

    Article  Google Scholar 

  • Bütler R, Lachat T (2009) Forests without harvesting: an opportunity for the saproxylic biodiversity. Schweiz Z Forstwes 160:324–333

    Article  Google Scholar 

  • Bütler R, Lachat T, Larrieu L, Paillet Y (2013) Habitat trees: key elements for forest biodiversity. In: Kraus D, Krumm F (eds) Integrative approaches as an opportunity for the conservation of forest biodiversity. European Forest Institute, Joensuu, pp 84–92

    Google Scholar 

  • Cavalli R, Donini F (2005) Possible management actions to increase the amount of dead and marcescent wood. In: Mason F, Nardi G, Tisato M (eds) Deadwood: a key to biodiversity. Mantova, Sherwood, pp 45–48

    Google Scholar 

  • Chazdon RL, Letcher SG, van Breugel M, Martinez-Ramos M, Bongers F, Finegan B (2007) Rates of change in tree communities of secondary. Neotropical forests following major disturbances. Philos Trans R Soc Lond B 362:273–289

    Article  Google Scholar 

  • Christensen M, Hahn K, Mountford EP, Odor P, Standovar T, Rozenbergar D, Diaci J, Wijdeven S, Meyer P, Winter S, Vrska T (2005) Dead wood in European beech (Fagus sylvatica) forest reserves. For Eco Manage 210:267–282

    Article  Google Scholar 

  • EUFORGEN (2012) Distribution map of Oaks (Quercus robur, Q. petraea) and European beech (Fagus sylvatica). http://www.euforgen.org

  • Fan ZF, Larsen DR, Shifley SR, Thompson FR (2003) Estimating cavity tree abundance by stand age and basal area, Missouri, USA. For Ecol Manage 179:231–242

    Article  Google Scholar 

  • Fan ZF, Shifley SR, Spetich MA, Thompson FR, Larsen DR (2005) Abundance and size distribution of cavity trees in second-growth and old-growth central hardwood forests. North J Appl For 22:162–169

    Google Scholar 

  • Fritz O, Heilmann-Clausen J (2010) Rot holes create key microhabitats for epiphytic lichens and bryophytes on beech (Fagus sylvatica). Biol Conserv 143:1008–1016

    Article  Google Scholar 

  • FSC (Forest Stewardship Council standards) (2014). https://ic.fsc.org/national-standards.247.htm

  • Gouix N (2011) Gestion forestière et biodiversité, les enjeux de conservation d’une espèce parapluie: Limoniscus violaceus (Coleoptera). PhD thesis. Univ. Paris 6

  • Gouix N, Sebek P, Valladares L, Brustel H, Brin A (2015) Habitat requirements of the violet click beetle (Limoniscus violaceus), an endangered umbrella species of basal hollow trees. Insect Conserv Divers 8(5):418–427

    Article  Google Scholar 

  • Greenberg CH, McLeod DE, Loftis DL (1997) An old-growth definition for western and mixed mesophytic forests. General technical report SRS 16, 1–14. USDA. Forest Service, Southern Research Station, Asheville

  • Harrison C (1977) Nids, œufs et poussins d’Europe. Bordas

  • Johann F, Schaich H (2016) Land ownership affects diversity and abundance of tree microhabitats in deciduous temperate forests. For Ecol Manage 380:70–81

    Article  Google Scholar 

  • Johnson EA, Miyanishi K (2008) Testing the assumptions of chronosequences in succession. Ecol Lett 11:419–431

    Article  PubMed  Google Scholar 

  • Kanold A, Rohrmann N, Müller J (2009) Einflussfaktoren auf das Baumhöhlenangebot und dessen Auswirkungen auf die Arten und Dichten von Höhlenbrütern in Bergwäldern. Ornithol Anz 47:116–129

    Google Scholar 

  • Keeton WS (2006) Managing for late-successional/old-growth characteristics in northern hardwood-conifer forests. For Ecol Manage 235:129–142

    Article  Google Scholar 

  • Kohv K, Liira J (2005) Anthropogenic effects on vegetation structure of the boreal forest in Estonia. Scand J For Res 20:122–134

    Article  Google Scholar 

  • Kriebizsch WU, Bültmann H, von Oheimb G, Schimdt M, Thiel H, Ewald J (2013) Forest-specific diversity of vascular plants, bryophytes, and lichens. In: Kraus D, Krumm F (eds) Integrative approaches as an opportunity for the conservation of forest biodiversity. European Forest Institute, Joensuu, pp 158–169

    Google Scholar 

  • Lachat T, Bütler R (2007) Gestion des vieux arbres et du bois mort; îlots de sénescence, arbres-habitat et métapopulations saproxyliques. Report WSL and EPFL, Lausanne for OFEV

  • Larrieu L, Cabanettes A (2012) Species, live status, and diameter are important tree features for diversity and abundance of tree microhabitats in subnatural montane beech-fir forests. Can J For Res 42:1433–1445

    Article  Google Scholar 

  • Larrieu L, Cabanettes A, Delarue A (2012) Impact of sylviculture on dead wood and on the distribution and frequency of tree microhabitats in montane beech-fir forests of the Pyrenees. Eur J For Res 131(3):773–786

    Article  Google Scholar 

  • Larrieu L, Cabanettes A, Brin A, Bouget C, Deconchat M (2014) Tree microhabitats at the stand scale in montane beech–fir forests: practical information for taxa conservation in forestry. Eur J For Res 133:355–367

    Article  Google Scholar 

  • Larsson T-B (2001) Biodiversity evaluation tools for European forests. Ecological bulletins, vol 50. Blackwell, Oxford

    Google Scholar 

  • Le Louarn H, Quéré PJ (2003) Les rongeurs de France—Faunistique et biologie, 2ème éd. INRA ed

  • Lenth RV (2016) Least-squares means: the R package lsmeans. J Stat Softw 69(1):1–33. doi:10.18637/jss.v069.i01

    Article  Google Scholar 

  • Lindenmayer DB, Franklin JF (2002) Conserving forest biodiversity: a comprehensive multiscaled approach. Island Press, Washington

    Google Scholar 

  • Mason F, Nardi G, Whitmore D (2005) Recherches sur la restauration des habitats du bois mort: l’exemple du Life «Bosco della Fontana» (Italie). In: Vallauri D (ed) Bois mort et à cavités: Une clé pour des forêts vivantes. Ed Tec & Doc, Lavoisier, Paris

    Google Scholar 

  • Meschede A, Heller KG (2003) Ecologie et protection des chauves-souris en milieu forestier. Le Rhinolophe 16:1–248

    Google Scholar 

  • Michel AK, Winter S (2009) Tree microhabitat structures as indicators of biodiversity in Douglas-fir forests of different stand ages and management histories in the Pacific Northwest, USA. For Ecol Manage 257:1453–1464

    Article  Google Scholar 

  • Mollet P, Birrer S, Pasinelli G (2013) Forest birds and their habitat requirements. In: Kraus D, Krumm F (eds) Integrative approaches as an opportunity for the conservation of forest biodiversity. European Forest Institute, Joensuu, pp 146–151

    Google Scholar 

  • Müller J (2005) Waldstrukturen als Steuergröße für Artengemeinschaften in kollinen bis submontanen Buchenwäldern. In: Wissenschaftszentrum Weihenstephan für Ernährung, Landnutzung und Umwelt. Technische Universität, München. http://www.mediatum.ub.tum.de, 197p

  • Müller J, Brunet J, Brin A, Bouget C, Brustel H, Büssler H, Förster B, Isacsson G, Köhler F, Lachat T, Gossner M (2014) Implications from large-scale spatial diversity patterns of saproxylic beetles for the conservation of European Beech forests. Insect Conserv Divers 6:162–169

    Article  Google Scholar 

  • Nakagawa S, Schielzeth H (2013) A general and simple method for obtaining R2 from generalized linear mixed-effects models. Methods Ecol Evol 4:133–142

    Article  Google Scholar 

  • Nilsson SG, Hedin J, Niklasson M (2001) Biodiversity and its assessment in boreal and nemoral forests. Scand J For Res Suppl 3:10–26

    Article  Google Scholar 

  • ONF (2009a) Conservation de la biodiversité dans la gestion courante des forêts publiques. INS-09-T-71, Paris

  • ONF (2009b) Îlots de vieux bois. NDS-09-T-310, Paris

  • Ouin A, Cabanettes A, Andrieu E, Deconchat M, Roume A, Vigan M, Larrieu L (2015) Comparison of tree microhabitat abundance and diversity in the edges and interior of small temperate woodlands. For Ecol Manage 340:31–39

    Article  Google Scholar 

  • Paillet Y, Bergès L, Hjältén J et al (2010) Biodiversity differences between managed and unmanaged forests: meta-analysis of species richness in Europe. Conserv Biol 24:101–112

    Article  PubMed  Google Scholar 

  • Paillet Y, Coutadeur P, Vuidot A, Archaux F, Gosselin F (2015a) Strong observer effect on tree microhabitats inventories: a case study in a French lowland forest. Ecol Ind 49:14–23

    Article  Google Scholar 

  • Paillet Y, Pernot C, Boulanger V, Debaive N, Fuhr M, Gilg O, Gosselin F (2015b) Quantifying the recovery of old-growth attributes in forest reserves: a first reference for France. For Ecol Manage 346:51–64

    Article  Google Scholar 

  • PEFC France (2011) Cahier des charges relatif à la gestion durable de la forêt. http://www.pefc-france.org

  • Pinheiro J, Bates DM (2000) Mixed-effects models in S and S-PLUS. Statistics and computing series. Springer, New York

    Book  Google Scholar 

  • Ponthus C (1996) Inventaire des forêts subnaturelles des Pyrénées françaises. Mémoire de fin d’études, ENSAT, p 58

    Google Scholar 

  • R Development Core Team (2013) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna

    Google Scholar 

  • Rameau JC, Mansion D, Dumé G (1989) Flore Forestière Française. Tome 1: plaines et collines. IDF, Paris

  • Ranius T (2002) Influence of stand size and quality of tree hollows on saproxylic beetles in Sweden. Biol Conserv 103:85–91

    Article  Google Scholar 

  • Ranius T, Jansson N (2000) The influence of forest regrowth, original canopy cover and tree size on saproxylic beetles associated with old oaks. Biol Conserv 95:85–94

    Article  Google Scholar 

  • Ranius T, Niklasson M, Berg N (2009) Development of tree hollows in pedunculate oak (Quercus robur). For Ecol Manag 257:303–310

    Article  Google Scholar 

  • Regnery B, Paillet Y, Couvet D, Kerbiriou C (2013) Which factors influence the occurrence and density of tree microhabitats in Mediterranean oak forests? For Ecol Manage 295:118–125

    Article  Google Scholar 

  • Robles H, Ciudad C, Matthysen E (2011) Tree-cavity occurrence, cavity occupation and reproductive performance of secondary cavity-nesting birds in oak forests: the role of traditional management practices. For Ecol Manag 261:1428–1435

    Article  Google Scholar 

  • Robles H, Ciudad C, Matthysen E (2012) Responses to experimental reduction and increase of cavities by a secondary cavity-nesting bird community in cavity-rich Pyrenean oak forests. For Ecol Manag 277:46–53

    Article  Google Scholar 

  • Röser D, Asikainen A, Raulund-Rasmussen K, Møller IS (eds) (2008) Sustainable use of wood for energy—a synthesis with focus on the Nordic–Baltic region. Springer, Berlin

    Google Scholar 

  • Rozas V (2003) Tree age estimates in Fagus sylvatica and Quercus robur: testing previous and improved methods. Plant Ecol 167:193–212

    Article  Google Scholar 

  • Sebek P, Altman J, Platek M, Cizek L (2013) Is active management the key to the conservation of saproxylic biodiversity? Pollarding promotes the formation of tree hollows. PLoS ONE 8(3):e60456

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Stokland JN (2001) The coarse woody debris profile: an archive of recent forest history and an important biodiversity indicator. Ecol Bull 49:71–83

    Google Scholar 

  • Stokland JN, Siitonen J, Jonsson BG (2012) Biodiversity in dead wood. Cambridge University Press, Cambridge

    Book  Google Scholar 

  • Vandekerkhove K, De Keersmaeker L, Menke N, Meyer P, Verschelde P (2009) When nature takes over from man: dead wood accumulation in previously managed oak and beech woodlands in North-western and Central Europe. For Ecol Manage 258:425–435

    Article  Google Scholar 

  • Vandekerkhove K, Thomaes A, Jonsson BG (2013) Connectivity and fragmentation: island biogeography and metapopulation applied to old-growth elements. In: Kraus D, Krumm F (eds) Integrative approaches as an opportunity for the conservation of forest biodiversity. European Forest Institute, Joensuu, pp 104–115

    Google Scholar 

  • Vodka S, Konvicka M, Cizek L (2009) Habitat preferences of oak-feeding xylophagous beetles in a temperate woodland: implications for forest history and management. J Insect Conserv 13:553–562

    Article  Google Scholar 

  • Vuidot A, Paillet Y, Archaux F, Gosselin F (2011) Influence of tree characteristics and forest management on tree microhabitats. Biol Conserv 144:441–450

    Article  Google Scholar 

  • Walker LR, Wardle DA, Bardgett RD, Clarkson BD (2010) The use of chronosequences in studies of ecological succession and soil development. J Ecol 98:725–736

    Article  Google Scholar 

  • Wermelinger B, Lachat T, Müller J (2013) Forest insects and their habitat requirements. In: Kraus D, Krumm F (eds) Integrative approaches as an opportunity for the conservation of forest biodiversity. European Forest Institute, Joensuu, pp 152–157

    Google Scholar 

  • Winter S, Möller GC (2008) Microhabitats in lowland beech forests as monitoring tool for nature conservation. For Ecol Manage 255:1251–1261

    Article  Google Scholar 

  • Winter S, Höfler J, Michel AK, Boeck A, Ankerst DP (2015) Association of tree and plot characteristics with microhabitat formation in European beech and Douglas-fir forests. Eur J Forest Res 134:335–347

    Article  Google Scholar 

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Acknowledgments

We are grateful to the forest owners, managers and the French National Forest Office (ONF) who authorized and facilitated our access to forests for field work. We are indebted to Vicki Moore who reviewed the English manuscript, to Marco Banchi, Laurent Raison and Jérôme Willm who helped with measurements, to Sylvie Ladet who drew Fig. 1, and to the three anonymous referees who helped us to substantially improve the manuscript.

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Communicated by Claus Bässler.

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Larrieu, L., Cabanettes, A., Gouix, N. et al. Development over time of the tree-related microhabitat profile: the case of lowland beech–oak coppice-with-standards set-aside stands in France. Eur J Forest Res 136, 37–49 (2017). https://doi.org/10.1007/s10342-016-1006-3

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