Tree-rings mirror management legacy: dramatic response of standard oaks to past coppicing in Central Europe
Jazyk angličtina Země Spojené státy americké Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
23405213
PubMed Central
PMC3565998
DOI
10.1371/journal.pone.0055770
PII: PONE-D-12-21631
Knihovny.cz E-zdroje
- MeSH
- dub (rod) fyziologie MeSH
- ekosystém * MeSH
- stromy chemie růst a vývoj MeSH
- zachování přírodních zdrojů MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Geografické názvy
- Evropa MeSH
BACKGROUND: Coppicing was one of the most important forest management systems in Europe documented in prehistory as well as in the Middle Ages. However, coppicing was gradually abandoned by the mid-20(th) century, which has altered the ecosystem structure, diversity and function of coppice woods. METHODOLOGY/PRINCIPAL FINDINGS: Our aim was to disentangle factors shaping the historical growth dynamics of oak standards (i.e. mature trees growing through several coppice cycles) in a former coppice-with-standards in Central Europe. Specifically, we tried to detect historical coppicing events from tree-rings of oak standards, to link coppicing events with the recruitment of mature oaks, and to determine the effects of neighbouring trees on the stem increment of oak standards. Large peaks in radial growth found for the periods 1895-1899 and 1935-1939 matched with historical records of coppice harvests. After coppicing, the number of newly recruited oak standards markedly grew in comparison with the preceding or following periods. The last significant recruitment of oak standards was after the 1930s following the last regular coppicing event. The diameter increment of oak standards from 1953 to 2003 was negatively correlated with competition indices, suggesting that neighbouring trees (mainly resprouting coppiced Tilia platyphyllos) partly suppressed the growth of oak standards. Our results showed that improved light conditions following historical coppicing events caused significant increase in pulses of radial growth and most probably maintained oak recruitment. CONCLUSIONS/SIGNIFICANCE: Our historical perspective carries important implications for oak management in Central Europe and elsewhere. Relatively intense cutting creating open canopy woodlands, either as in the coppicing system or in the form of selective cutting, is needed to achieve significant radial growth in mature oaks. It is also critical for the successful regeneration and long-term maintenance of oak populations.
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Frelich LE (2002) Forest dynamics and disturbance regimes: studies from temperate evergreen-deciduous forests: Cambridge University Press.
Rubino DL, McCarthy BC (2004) Comparative analysis of dendroecological methods used to assess disturbance events. Dendrochronologia 21: 97–115.
Black BA, Abrams MD (2003) Use of boundary-line growth patterns as a basis for dendroecological release criteria. Ecol Appl 13: 1733–1749.
Fraver S, White AS (2005) Identifying growth releases in dendrochronological studies of forest disturbance. Can J Forest Res 35: 1648–1656.5.
Altman J, Doležal J, Černý T, Song J-S (2012) Forest response to increasing typhoon activity on the Korean peninsula: evidence from oak tree-rings. Glob Change Biol DOI: 10.1111/gcb.12067. PubMed DOI
Williams AP, Allen CD, Millar CI, Swetnam TW, Michaelsen J, et al. (2010) Forest responses to increasing aridity and warmth in the southwestern United States. P Natl Academy USA 107: 21289–21294. PubMed PMC
Spiecker H (2002) Tree rings and forest management in Europe. Dendrochronologia 20: 191–202.
Oliver WW (1986) Growth of California red fir advance regeneration after overstory removal and thinning. USDA For Serv PSW R 180.
Zhang JW, Oliver WW (2006) Stand structure and growth of Abies magnifica responded to five thinning levels in northeastern California, USA. Forest Ecol Manag 223: 275–283.
Webster CR, Jensen NR (2007) A shift in the gap dynamics of Betula alleghaniensis in response to single-tree selection. Can J Forest Res 37: 682–689.
Nowacki GJ, Abrams MD (1997) Radial-growth averaging criteria for reconstructing disturbance histories from presettlement-origin oaks. Ecol Monogr 67: 225–249.
Bergmeier E, Petermann J, Schroder E (2010) Geobotanical survey of wood-pasture habitats in Europe: diversity, threats and conservation. Biodivers Conserv 19: 2995–3014.
Billamboz A (2003) Tree Rings and Wetland Occupation in Southwest Germany Between 2000 and 500 Bc: Dendroarchaeology Beyond Dating in Tribute to F. H. Schweingruber: Tree-Ring Society.
Haneca K, Boeren I, Van Acker J, Beeckman H (2006) Dendrochronology in suboptimal conditions: tree rings from medieval oak from Flanders (Belgium) as dating tools and archives of past forest management. Veg Hist Archaeobot 15: 137–144.
Szabo P (2010) Driving forces of stability and change in woodland structure: A case-study from the Czech lowlands. Forest Ecol Manag 259: 650–656.
Rackham O (2003) Ancient Woodland: Its History, Vegetation and Uses in England. Colvend: Castlepoint Press. 624 p.
Mitchell PL, Woodward FI (1987) Instrument for measuring temperature, photosynthetically active radiation and daylength, and its use in the measurement of daylength and tempeture in coppice. J Appl Ecol 24: 239–249.
Bridge MC, Hibbert FA, Rackham O (1986) Effects of coppicing on the growth of oak timber trees in the Bradfield Woods, Suffolk. J Ecol 74: 1095–1102.
Fuller R, Peterken G (1995) Woodland and scrub. In: Sutherland W, Hill D, editors. Managing habitats for conservation. Cambridge, UK: Cambridge University Press. pp. 327–361.
Caquet B, Montpied P, Dreyer E, Epron D, Collet C (2010) Response to canopy opening does not act as a filter to Fagus sylvatica and Acer sp advance regeneration in a mixed temperate forest. Ann For Sci 67.
Nunez V, Hernando A, Velazquez J, Tejera R (2012) Livestock management in Natura 2000: A case study in a Quercus pyrenaica neglected coppice forest. J Nat Conserv 20: 1–9.
Ito H, Hino T, Sakuma D (2012) Species abundance in floor vegetation of managed coppice and abandoned forest. Forest Ecol Manag 269: 99–105.
Yamaura Y, Royle JA, Shimada N, Asanuma S, Sato T, et al. (2012) Biodiversity of man-made open habitats in an underused country: a class of multispecies abundance models for count data. Biodivers Conserv 21: 1365–1380.
Broome A, Clarke S, Peace A, Parsons M (2011) The effect of coppice management on moth assemblages in an English woodland. Biodivers Conserv 20: 729–749.
Hedl R, Kopecky M, Komarek J (2010) Half a century of succession in a temperate oakwood: from species-rich community to mesic forest. Divers Distrib 16: 267–276.
Baeten L, Bauwens B, De Schrijver A, De Keersmaeker L, Van Calster H, et al. (2009) Herb layer changes (1954–2000) related to the conversion of coppice-with-standards forest and soil acidification. Appl Veg Sci 12: 187–197.
Kopecký M, Hédl R, Szabó P (2012) Non-random extinctions dominate plant community changes in abandoned coppices. J Appl Ecol DOI: 10.1111/1365-2664.12010. PubMed DOI PMC
Konvicka M, Cizek O, Filipova L, Fric Z, Benes J, et al. (2005) For whom the bells toll: Demography of the last population of the butterfly Euphydryas maturna in the Czech Republic. Biologia 60: 551–557.
Helama S, Laanelaid A, Raisio J, Tuomenvirta H (2009) Oak decline in Helsinki portrayed by tree-rings, climate and soil data. Plant Soil 319: 163–174.
Dolezal J, Mazurek P, Klimesova J (2010) Oak decline in southern Moravia: the association between climate change and early and late wood formation in oaks. Preslia 82: 289–306.
Gomez-Aparicio L, Perez-Ramos IM, Mendoza I, Matias L, Quero JL, et al. (2008) Oak seedling survival and growth along resource gradients in Mediterranean forests: implications for regeneration in current and future environmental scenarios. Oikos 117: 1683–1699.
Luisi N, Lerario P, Vannini A (1993) Recent Advances in Studies on Oak Decline: Proceedings of an International Congress, Selva Di Fasano (Brindisi), Italy, September 13–18, 1992: Dipartimento di Patologia Vegetale, Università degli Studi.
Jung T, Blaschke H, Osswald W (2000) Involvement of soilborne Phytophthora species in Central European oak decline and the effect of site factors on the disease. Plant Pathol 49: 706–718.
Emborg J (1998) Understorey light conditions and regeneration with respect to the structural dynamics of a near-natural temperate deciduous forest in Denmark. Forest Ecol Manag 106: 83–95.
Kelly DL (2002) The regeneration of Quercus petraea (sessile oak) in southwest Ireland: a 25-year experimental study. Forest Ecol Manag 166: 207–226.
Iverson LR, Hutchinson TF, Prasad AM, Peters MP (2008) Thinning, fire, and oak regeneration across a heterogeneous landscape in the eastern US: 7-year results. Forest Ecol Manag 255: 3035–3050.
von Lupke B (1998) Silvicultural methods of oak regeneration with special respect to shade tolerant mixed species. Forest Ecol Manag 106: 19–26.
Dobrowolska D (2008) Effect of stand density on oak regeneration in flood plain forests in Lower Silesia, Poland. Forestry 81: 511–523.
Collet C, Piboule A, Leroy O, Frochot H (2008) Advance Fagus sylvatica and Acer pseudoplatanus seedlings dominate tree regeneration in a mixed broadleaved former coppice-with-standards forest. Forestry 81: 135–150.
Szabo P, Hedl R (2011) Advancing the Integration of History and Ecology for Conservation. Conserv Biol 25: 680–687. PubMed
Jones EW (1959) Biological flora of the British-Isles Quercus L. J Ecol 47: 169–222.
Bartet E (1890) Influence excercée par l'époque de l'abattage sur la production et le développelent des rejets des souches dans les taillis. Rev Eaux Forests 29: 310–313.
Bridge MC, Winchester V (2000) An evaluation of standard oak tree growth in Ruislip woods, West London. Bot J Linn Soc 134: 61–71.
Rackham O (1975) Hayley Wood: Its History and Ecology: Cambridgeshire and Isle of Ely Naturalists' Trust.
Hedl R, Rejsek K (2007) Soil changes after forty years of succession in an abandoned coppice in the Czech Republic. Acta Agron Hung 55: 453–474.
Condit R, Ashton PS, Baker P, Bunyavejchewin S, Gunatilleke S, et al. (2000) Spatial patterns in the distribution of tropical tree species. Science 288: 1414–1418. PubMed
Zhang J, Song B, Li BH, Ye J, Wang XG, et al. (2010) Spatial patterns and associations of six congeneric species in an old-growth temperate forest. Acta Oecol 36: 29–38.
Olano JM, Laskurain NA, Escudero A, De La Cruz M (2009) Why and where do adult trees die in a young secondary temperate forest? The role of neighbourhood. Ann For Sci 66: 8.
Cartanson M, Floret C, Galan MJ, Grandjanny M, Lefloch E, et al. (1992) Factors affecting radial growth of Quercus ilex L. in a coppice stand in southern. Vegetatio 100: 61–68.
NOAA (2012) Contributors of the International Tree-Ring Data Bank, IGBP PAGES/World Data Center for Paleoclimatology, NOAA/NGDC Paleoclimatology Program. Boulder, Colorado, USA.
R Development Core Team (2011) R: A language and environment for statistical computing, version 2.13.1. R Foundation for Statistical Computing, Vienna, Austria.
Aakala T, Kuuluvainen T, Wallenius T, Kauhanen H (2011) Tree mortality episodes in the intact Picea abies-dominated taiga in the Arkhangelsk region of northern European Russia. J Veg Sci 22: 322–333.
Bunn AG (2008) A dendrochronology program library in R (dplR). Dendrochronologia 26: 115–124.
Dolezal J, Ishii H, Vetrova VP, Sumida A, Hara T (2004) Tree growth and competition in a Betula platyphylla-Larix cajanderi post-fire forest in central Kamchatka. Ann Bot 94: 333–343. PubMed PMC
Hothorn T, Hornik K, Zeileis A (2006) Unbiased recursive partitioning: A conditional inference framework. J Comput Graph Stat 15: 651–674.
Lorimer CG, Frelich LE (1989) A methodology for estimating canopy disturbance frequency and intensity in dense temperate forests. Can J Forest Res 19: 651–663.
Hilt DE (1979) Diameter growth of upland oaks after thinning. USDA For Serv NE RES 437.
Rentch JS, Desta F, Miller GW (2002) Climate, canopy disturbance, and radial growth averaging in a second-growth mixed-oak forest in West Virginia, USA. Can J Forest Res 32: 915–927.
Erdmann GG, Oberg RR (1973) Fifteen-year results from six cutting methods in second-growth northern hardwoods. USDA For Serv NC R P 100.
Hedl R (2005) Srovnání stavu lesních ekosystémů NPR Děvín po 50 letech přirozené sukcese. Brno: Mendelova zemědělská a lesnická univerzita.
Holscher D, Hertel D, Leuschner C, Hottkowitz M (2002) Tree species diversity and soil patchiness in a temperate broad-leaved forest with limited rooting space. Flora 197: 118–125.
Holscher D, Schmitt S, Kupfer K (2002) Growth and leaf traits of four broad-leaved tree species along a hillside gradient. Forstwiss Centralbl 121: 229–239.
Dolezal J, Song JS, Altman J, Janecek S, Cerny T, et al. (2009) Tree growth and competition in a post-logging Quercus mongolica forest on Mt. Sobaek, South Korea. Ecol Res 24: 281–290.
Fraver S, White AS, Seymour RS (2009) Natural disturbance in an old-growth landscape of northern Maine, USA. J Ecol 97: 289–298.
Busby PE, Canham CD, Motzkin G, Foster DR (2009) Forest response to chronic hurricane disturbance in coastal New England. J Veg Sci 20: 487–497.
Svoboda M, Janda P, Nagel TA, Fraver S, Rejzek J, et al. (2012) Disturbance history of an old-growth sub-alpine Picea abies stand in the Bohemian Forest, Czech Republic. J Veg Sci 23: 86–97.
Splechtna BE, Gratzer G, Black BA (2005) Disturbance history of a European old-growth mixed-species forest - A spatial dendro-ecological analysis. J Veg Sci 16: 511–522.
Swaine MD, Agyeman VK (2008) Enhanced tree recruitment following logging in two forest reserves in Ghana. Biotropica 40: 370–374.
Welander NT, Ottosson B (1998) The influence of shading on growth and morphology in seedlings of Quercus robur L. and Fagus sylvatica L. Forest Ecol Manag 107: 117–126.
Valladares F, Chico JM, Aranda I, Balaguer L, Dizengremel P, et al. (2002) The greater seedling high-light tolerance of Quercus robur over Fagus sylvatica is linked to a greater physiological plasticity. Trees-Struct Funct 16: 395–403.
Lorimer CG, Chapman JW, Lambert WD (1994) Tall uderstorey vegetation as a factor in the poor development of oak seedlings beneath mature stands. J Ecol 82: 227–237.
Harmer R, Morgan G (2007) Development of Quercus robur advance regeneration following canopy reduction in an oak woodland. Forestry 80: 137–149.
Birks HJB (2005) Mind the gap: how open were European primeval forests? Trends Ecol Evol 20: 154–156. PubMed
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