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2017 | 161 | 01 |

Tytuł artykułu

Wpływ suszy na ściółkowo-glebowe zgrupowania skoczogonków (Collembola, Hexapoda) w lesie mieszanym

Treść / Zawartość

Warianty tytułu

EN
Influence of drought on epigeic soil collembolan communities (Hexapoda) of moderately humid mixed deciduous forest

Języki publikacji

PL

Abstrakty

EN
The resilience of forest ecosystems to climate changes such as elevated temperature and frequent drought episodes, strongly depends on how the soil subsystems and its inhabitants responds to these perturbation. The epigeic soil Collembola communities of mature mixed deciduous forest and adjacent young plantation on moderately humid soil were compared in two consecutive years, out of which the second one was marked by significant deficiency of precipitation in growing−season. The study plots were established on the area of experimental forests of Warsaw University of Life Science−SGGW in Rogów (central Poland). The objectives of the study was to assess the sensitivity of forest Collembola communities to drought stress and to check if the reaction depends on stand age. We also aimed to test if an indicator species of climate changes can be appointed. The results showed that three months drought episode had negative impact on forest Collembola communities of mature stands, while communities of young plantation were not affected. The reduction of total abundance of Collembola and clear changes in communities structure in mature stand was detected in the year of lower precipitation. The Collembola communities of young plantation were also significantly transformed, but in result of clear cutting and soil preparation. Therefore, the successional changes were the most evident process in these communities and there were no signs of drought influence. Among the most numerous species in Collembola communities of mature forest Isotomiella minor was appointed as an indicator of drought, because its abundance was drastically reduced in the year of lower precipitation. The small number of specimen of this species in young plantation may also prove its sensitivity to deficiency of humidity in soil. The significantly negative response to drought episode was documented also for Psuedosinella horaki, Micraphorura absoloni and Megalothorax minimus. Our study provided strong evidence that the drought, which lasted only three months, had a detrimental effect on forest Collembola communities.

Wydawca

-

Czasopismo

Rocznik

Tom

161

Numer

01

Opis fizyczny

s.71-80,rys.,tab.,bibliogr.

Twórcy

autor
  • Katedra Ochrony Lasu i Ekologii, Szkoła Główna Gospodarstwa Wiejskiego w Warszawie, ul.Nowoursynowska 159, 02-776 Warszawa
autor
  • Katedra Ochrony Lasu i Ekologii, Szkoła Główna Gospodarstwa Wiejskiego w Warszawie, ul.Nowoursynowska 159, 02-776 Warszawa

Bibliografia

  • Archaux F., Wolters V. 2006. Impact of summer drought on forest biodiversity: what do we know? Annals of Forest Science 63 (6): 645-652.
  • Bardgett R. D., Chan K. F. 1999. Experimental evidence that soil fauna enhance nutrient mineralization and plant nutrient uptake in montane grassland ecosystems. Soil Biology and Biochemistry 31 (7): 1007-1014.
  • Bednarek A. 1993. Warunki fizjograficzne. Klimat. W: Zielony R. [red.]. Warunki przyrodnicze lasów doświadczalnych SGGW w Rogowie. Wydawnictwo SGGW, Warszawa. 24-41.
  • Betsch J. M., Vannier G. 1977. Caractérisation des deux phases juvéniles d’Allacma fusca (Collembola, Symphypleona) par leur morphologie et leur écophysiologie. Journal of Zoological Systematics and Evolutionary Research 15 (2): 124-141.
  • Blankinship J. C., Niklaus P. A., Hungate B. A. 2011. A meta-analysis of responses of soil biota to global change. Oecologia 165 (3): 553-565.
  • ter Braak C. J. F., Smilauer P. 2002. CANOCO Reference Manual and Canodraw for Windows User’s Guide: Software for Canonical Community Ordination (version 4.5). Microcomputer Power, Ithaca, USA.
  • Chapin F. S., Walker B. H., Hobbs R. J., Hooper D. U., Lawton J. H., Sala O. E., Tilman D. 1997. Biotic control over the functioning of ecosystems. Science 277 (5325): 500-504.
  • Eisenhauer N., Cesarz S., Koller R., Worm K., Reich P. B. 2012. Global change belowground: impacts of elevated CO2, nitrogen, and summer drought on soil food webs and biodiversity. Global Change Biology 18 (2): 435-447.
  • Gavazov K. S. 2010. Dynamics of alpine plant litter decomposition in a changing climate. Plant and Soil 337 (1-2): 19-32.
  • Heiniger C., Barot S., Ponge J. F., Salmon S., Meriguet J., Carmignac D., Dubs F. 2015. Collembolan preferences for soil and microclimate in forest and pasture communities. Soil Biology and Biochemistry 86: 181-192.
  • Hobbins M. T., Dai A., Roderick M. L., Farquhar G. D. 2008. Revisiting the parameterization of potential evaporation as a driver of long-term water balance trends. Geophysical Research Letters 35 (12): 1-6.
  • Holmstrup M., Sřrensen J. G., Schmidt I. K., Nielsen P. L., Mason S., Tietema A., Ehlers B. K. 2013. Soil microarthropods are only weakly impacted after 13 years of repeated drought treatment in wet and dry heathland soils. Soil Biology and Biochemistry 66: 110-118.
  • Hopkin S. P. 1997. Biology of the springtails (Insecta: Collembola). OUP Oxford.
  • Hutorowicz H., Grabowski J., Olba-Zięty E. 2008. Częstotliwość występowania okresów posusznych i suchych w dwóch mezoregionach Pojezierza Mazurskiego. Acta Agrophysica 12 (3): 663-673.
  • Kardol P., Reynolds W. N., Norby R. J., Classen A. T. 2011. Climate change effects on soil microarthropod abundance and community structure. Applied Soil Ecology 47 (1): 37-44.
  • Konecka-Betley K., Czępińska-Kamińska D., Janowska E. 1993. Gleby – właściwości i typologia. W: Zielony R. [red.]. Warunki przyrodnicze lasów doświadczalnych SGGW w Rogowie. Wydawnictwo SGGW, Warszawa. 48-65.
  • Kuznetsova N. A. 2003. Habitat humidity and Collembolan distribution. Zoologichesky Zhurnal 82: 239-247.
  • Lavelle P., Spain A. V. 2001. Soil ecology. Springer Science & Business Media.
  • Lee M. A., Manning P., Walker C. S., Power S. A. 2014. Plant and arthropod community sensitivity to rainfall manipulation but not nitrogen enrichment in a successional grassland ecosystem. Oecologia 176 (4): 1173-1185.
  • Lensing J. R., Todd S., Wise D. H. 2005. The impact of altered precipitation on spatial stratification and activity-densities of springtails (Collembola) and spiders (Araneae). Ecological Entomology 30 (2): 194-200.
  • Lindberg N., Bengtsson J. 2006. Recovery of forest soil fauna diversity and composition after repeated summer droughts. Oikos 114 (3): 494-506.
  • Lindberg N., Bengtsson J. B., Persson T. 2002. Effects of experimental irrigation and drought on the composition and diversity of soil fauna in a coniferous stand. Journal of Applied Ecology 39 (6): 924-936.
  • Meehl G. A., Stocker T. F., Collins W. D., Friedlingstein P., Gaye A. T., Gregory J. M., Kitoh A., Knutti R., Murphy J. M., Noda A., Raper S. C. B., Watterson I. G., Weaver A. J., Zhao Z.-C., Raper S. C. 2007. Global climate projections. Climate change 3495: 747-845.
  • Pflug A., Wolters V. 2001. Influence of drought and litter age on Collembola communities. European Journal of Soil Biology 37 (4): 305-308.
  • Riutta T., Clack H., Crockatt M., Slade E. M. 2016. Landscape-Scale Implications of the Edge Effect on Soil Fauna Activity in a Temperate Forest. Ecosystems 19 (3): 534-544.
  • Sławska M. 2002. Collembola responses to silviculture practices – communities of stand patches retained on logging area. Annals of Warsaw Agricultural University. Forestry and Wood Technology 52: 3-15.
  • Sławska M. 2005. Propozycja metody waloryzacji ekosystemów leśnych wykorzystującej epigeiczno-glebowe zgrupowania skoczogonków (Collembola, Hexapoda). Wydawnictwo SGGW, Warszawa.
  • Sterzyńska M. 1990. Communities of Collembola in natural and transformed soils of the linden-oak-hornbeam sites of the Mazovian Lowland. Fragmenta Faunistica 34 (11): 165-262.
  • Verhoef H. A., Brussaard L. 1990. Decomposition and nitrogen mineralization in natural and agroecosystems: the contribution of soil animals. Biogeochemistry 11 (3): 175-211.
  • Vestergĺrd M., Dyrnum K., Michelsen A., Damgaard C., Holmstrup M. 2015. Long-term multifactorial climate change impacts on mesofaunal biomass and nitrogen content. Applied Soil Ecology 92: 54-63.
  • de Vries F. T., Liiri M. E., Bjřrnlund L., Setälä H. M., Christensen S., Bardgett R. D. 2012. Legacy effects of drought on plant growth and the soil food web. Oecologia 170 (3): 821-833.
  • Waagner D., Bayley M., Holmstrup M. 2011. Recovery of reproduction after drought in the soil living Folsomia candida (Collembola). Soil Biology and Biochemistry 43 (3): 690-692.
  • Xu G. L., Kuster T. M., Günthardt-Goerg M. S., Dobbertin M., Li M. H. 2012. Seasonal exposure to drought and air warming affects soil Collembola and mites. PloS one 7 (8): e43102.

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Bibliografia

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