Impact of overwintering cormorants Phalacrocorax carbo on springtail Hexapoda: Collembola communities of the Azov and Black Sea coastal forests

Nesting water bird colonies may act as important drivers of aquatic-terrestrial nutrient turnover in coastal ecosystems. By depositing a large amount of guano, they induce changes in the structure of soils, flora, and fauna. However, little is known about how nesting water bird colonies influence soil fauna, especially in a Mediterranean type of coastal landscape. In this study, focus was placed on how time had elapsed since the last overwintering activity of cormorant colonies, as a factor that affects the structure of springtail communities and edaphic parameters in the Black and Azov Sea coastal forest ecosystems. Black Sea coastal forests with active overwintering cormorant colonies have been characterized by a decreased total abundance, genus richness, and an abundance of certain functional groups of springtails. In contrast, in the coastal forests of the Azov Sea, where the last cormorant overwintering activity was observed 8 years ago, the total abundance of collembolans, and particularly epiedaphic species, had increased in comparison with the control sites. It was concluded that the overwintering activity of cormorants had a negative effect on springtails in previously undisturbed areas within the Mediterranean coastal forests. Nevertheless, the long-term absence of cormorant colonies may lead to the recovery of collembolan total abundance and genus richness in the previously affected areas.

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  • Anderson WB, Polis GA (1999). Nutrient fluxes from water to land: seabirds affect plant nutrient status on Gulf of California islands. Oecologia 118: 324-332. doi: 10.1007/s004420050733
  • Balčiauskas L, Balčiauskienė L, Jasiulionis M (2015). Mammals under a colony of great cormorants: Population structure and body condition of yellow-necked mice. Turkish Journal of Zoology 39: 941-948. doi: 10.3906/zoo-1407-27
  • Benjamini Y, Yekutieli D (2001). The control of the false discovery rate in multiple testing under dependency. The Annals of Statistics 29: 1165-1188. doi: 10.1214/aos/1013699998
  • Birkhofer K, Schöning I, Alt F, Herold N, Klarner B et al. (2012). General relationships between abiotic soil properties and soil biota across spatial scales and different land-use types. PLoS ONE 7: e43292. doi: 10.1371/journal.pone.0043292
  • Bokhorst SF, Convey P (2016). Impact of marine vertebrates on Antarctic terrestrial micro-arthropods. Antartic Science 28: 175- 186. doi: 10.1017/S0954102015000607
  • Bregnballe T, Lynch J, Parz-Gollner R, Marion L, Volponi S et al. (editors) (2014). Breeding numbers of Great Cormorants Phalacrocorax carbo in the Western Palearctic, 2012-2013. No 99. Aarhus, Denmark: Aarhus University.
  • Coulibaly SFM, Winck BR, Akpa-Vinceslas M, Mignot L, Legras M et al. (2019). Functional assemblages of Collembola determine soil microbial communities and associated functions. Frontiers in Environmental Science 7: 52. doi: 10.3389/fenvs.2019.00052
  • Dzhangirov MYu, Suvorov AV (2015). Current state of Pitsunda pine (Pinus pityuosa Steven) phytocenoses in the Utrish Nature Reserve. In: Ogureeva GN, Gongalsky KB (editors). Conservation of the Biota in the Utrish State Nature Reserve. Volume 3. Maykop, Russia: Polygraph-South LLC, pp. 129-141 (in Russian).
  • Ellis JC, Fariña JM, Witman JD (2006). Nutrient transfer from sea to land: the case of gulls and cormorants in the Gulf of Maine. Journal of Animal Ecology 75: 565-574. doi: 10.1111/j.1365- 2656.2006.01077.x
  • Fjellberg A (1998). Collembola of Fennoscandia and Denmark: Poduromorpha. Part I. Leiden, Netherlands: Brill.
  • Fjellberg A (2007). Collembola of Fennoscandia and Denmark: Entomobryomorpha and Symphypleona. Part II. Leiden, Netherlands: Brill.
  • Hopkin S (1997). Biology of the Springtails (Insecta: Collembola). Oxford, UK: Oxford University Press.
  • Klimaszyk P, Piotrowicz R, Rzymski P (2015). Changes in physicochemical conditions and macrophyte abundance in a shallow soft-water lake mediated by a Great Cormorant roosting colony. Journal of Limnology 74: 114-122. doi: 10.4081/ jlimnol.2014.994
  • Klimaszyk P, Rzymski P (2016). The complexity of ecological impacts induced by great cormorants. Hydrobiologia, 771: 13-30. doi: 10.1007/s10750-015-2618-1
  • Kolb GS, Jerling L, Hambäck PA (2010). The impact of cormorants on plant-arthropod food webs on their nesting islands. Ecosystems 13: 353-366. doi: 10.1007/s10021-010-9323-8
  • Kolb GS, Jerling L, Essenberg C, Palmborg C, Hambäck PA (2012). The impact of nesting cormorants on plant and arthropod diversity. Ecography 35: 726-740. doi: 10.1111/j.1600- 0587.2011.06808.x
  • Kolb GS, Palmborg C, Taylor AR, Bååth E, Hambäck PA (2015). Effects of nesting cormorants (Phalacrocorax carbo) on soil chemistry, microbial communities and soil fauna. Ecosystems 18: 643-657. doi: 10.1007/s10021-015-9853-1
  • Korobushkin DI, Saifutdinov RA (2019). Influence of seabird colonies on soil macrofauna communities at the Black Sea coast forests. Russian Journal of Ecology 50: 567-573. doi: 10.1134/S1067413619060080
  • Polis GA, Anderson WB, Holt RD (1997). Toward an integration of landscape ecology and food web ecology: the dynamics of spatially subsidized food webs. Annual Review of Ecology and Systematics 28: 289-316. doi: 10.1146/annurev.ecolsys.28.1.289
  • Ponge JF, Arpin P, Vannier G (1993). Collembolan response to experimental perturbations of litter supply in a temperate forest ecosystem. European Journal of Soil Biology 29: 141-153.
  • Potapov AA, Semenina EE, Korotkevich AY, Kuznetsova NA, Tiunov AV (2016). Connecting taxonomy and ecology: Trophic niches of collembolans as related to taxonomic identity and life forms. Soil Biology and Biochemistry 101: 20-31. doi: 10.1016/j. soilbio.2016.07.002
  • Saifutdinov RA, Gongalsky KB, Zaitsev AS (2018). Evidence of a trait-specific response to burning in springtails (Hexapoda: Collembola) in the boreal forests of European Russia. Geoderma 332: 173-179. doi: 10.1016/j.geoderma.2017.07.021
  • Seregin AP, Suslova EG (2007). Vascular plant flora in the environs of Malyi Utrish village. In: Gongalsky KB, Leontieva OA, Suslova EG (editors). Landscape and Biological Diversity in the Northwestern Caucasus. Moscow, Russia: Lomonosov Moscow State University, pp. 104-174 (in Russian).
  • Zmudczyńska K, Olejniczak I, Zwolicki A, Iliszko L, Convey P et al. (2012). Influence of allochtonous nutrients delivered by colonial seabirds on soil collembolan communities on Spitsbergen. Polar Biology 35: 1233-1245. doi: 10.1007/s00300- 012-1169-4