Egg size Variation in the Collared Flycatcher (Ficedula albicollis Temminck, 1815)
Abstract
This work aims to examine the factors influencing variation of the Collared Flycatcher’s egg size at the southern borders of the distribution of deciduous forests (Homil’shanski Lisy National Park, Ukraine). In total, data on 298 clutches and 1971 eggs of the Collared Flycatcher in artificial nest-boxes for 2006‒2011 and 2013‒2021 were used for analyses. As the meteorological indicators we used the temperature, a number of days with rainfall during the 1st decade of May; and humidity indices. All statistical analyses were performed with R statistical software version 4.4.2, A Shapiro–Wilk test for normality revealed that data were not normally distributed. Therefore, for further analysis, we used the Kruskal – Wallis test and Dunn test as well as Permutational Analysis of Variance (PERMANOVA) of the distance matrix. The vegan package was used for analysis. We analyzed the effects of meteorological indicators on egg size using generalized additive models. Statistical analyses were performed using mgcv packages.
In the studied subpopulation, the average egg length tends to decrease in the period from 2006 to 2021 and is slightly dependent on clutch size and the decade of first-egg laying. The seasons with the smallest egg sizes in the studied subpopulation spanned 2014 - 2018; later on, there was an increase in egg diameter towards the usual size for this subpopulation. The consistently small diameter of the eggs can be assumed to indicate that during this period, young females predominated in the studied subpopulation.
In general, the size of the eggs in the last season was similar and even somewhat larger (especially in length) to those obtained in the Sumy region of Ukraine, and in certain years exceeded the indicators of the eggs of flycatchers from the Bialowieza Forest. It can be assumed that larger eggs are laid by females under optimal conditions within the species’ range; as they move towards the borders of the range to the north and east, the morphometric parameters may decrease due to the decline in the quality (abundance of food) of the environment.
The analysis of the repeatability of egg sizes in the same female should answer the question of whether the size of the egg is an individual’s characteristics of females. However, we did not receive a definitive answer.
The humidity of the pre-laying decade has a significant negative impact on the morphological parameters. The humidity during the egg-laying decade has a positive influence, while to a lesser extent, the temperature of the decade prior to egg-laying also positively affects the length of the eggs. The temperature of the previous decade and the number of rainy days play a minor role. At the same time, there is an optimum for these indicators, beyond which the effect of their influence on the size of the eggs changes to the opposite. In the studied area, the length and diameter of eggs from early and late did not differ significantly. Only in certain years, the differences in length, diameter, and volume are significant.
The variation of the morphological parameters are an integrated response to the instability of environmental parameters. One of the reasons for high variability in egg sizes may be humidity. The size of the eggs itself cannot be explained by the climatic conditions of the current year. They are an integrated indicator of the female's maturity and the nutritional conditions of the season.
Downloads
References
Ahola, M.P., Laaksonen, T., Eeva, T., Lehikonen, E. (2007). Climate change can alter competitive relationships between resident and migratory birds. Journal of Animal Ecology, 76, 1045–1052. https://doi.org/10.1111/j.1365-2656.2007.01294.x
Atemasov, A., Atemasova, T.A. (2024). Temperature dependence of the breeding parameters of the Collared Flycatcher Ficedula albicollis Temm., 1815 in the Gomol’scha forest (NE Ukraine). Zoodiversity, 56(2), 151–162.
Atemasova, T., Atemasov, A., Devjatko, T. (2014). Features of the nesting of the Collared Flycatcher (Ficedula albicollis (Temm., 1815)) at the southern border of the Forest-Steppe. The Journal of V.N. Karazin Kharkiv National University. Series Biology, 110(20), 81–90.
Bauer, Z., Trnka, M., Bauerová, J., Možný, M., Štěpánek, P., Bartošová, L., Žalud, Z. (2010). Changing climate and the phenological response of great tit and collared flycatcher populations in floodplain forest ecosystems in Central Europe. International Journal of Biometeorology, 54, 99–111. https://doi.org/10.1007/s00484-009-0259-7
Burger, C., Belskii, E., Eeva, T., Laaksonen, T., Magi, M., Mand, R., Qvarnstrom, A., Slagsvold, T., Veen, T., Visser, M.E., Wiebe, K., Wiley, C., Wright, J., Both, C.R. (2012). Climate change, breeding date and nestling diet: how temperature differentially affects seasonal changes in pied flycatcher diet depending on habitat variation. Journal of Animal Ecology, 81, 926–936. https://doi.org/10.1111/j.1365-2656.2012.01968.x
But, V.I. (1970). Periodic phenomena in nature of the Kharkiv region and conducting phenological observations. Materials of the Kharkiv Department of the Geographic Society of Ukraine. Kharkiv Region – Nature and Economy, 8, 105–111.
Christians, J.K. (2002). Avian egg size: Variation within species and inflexibility within individuals. Biological Reviews, 77(1), 1–26. https://doi.org/10.1017/S146479310100578
Duursma, D.E., Gallagher, R.V., Price, J.J., Grifth, S.C. (2018). Variation in avian egg shape and nest structure is explained by climatic conditions. Scientific Reports, 8, 4141. https://doi.org/10.1038/s41598-018-22436-0
Encabo, S., Barba, E., Gil-Delgado, J., Monros, J. (2002). Geographical variation in egg size of the Great Tit Parus major: A new perspective. Ibis, 144, 623–631.
Falconer, D. (1989). Introduction to quantitative genetics (3rd ed.). John Wiley and Sons.
Forster, J., Hirst, A.G., Atkinson, D. (2011). How do organisms change size with changing temperature? The importance of reproductive method and ontogenetic timing. Functional Ecology, 25, 1024–1031.
Gorelova, L.N., Alekhin, A.A. (2002). Vegetation cover of Kharkiv region. Kharkov.
Guo, Y., Lu, X. (2022). Clutch size of passerines increases with latitude in China, but egg size is conserved. Ibis, 164(4), 1063–1072.
Hargitai, R., Török, J., Tóth, L., Hegyi, G., Rosivall, B., Szigeti, B., Szöllősi, E. (2005). Effects of environmental conditions and parental quality on inter- and intraclutch egg-size variation in the Collared Flycatcher (Ficedula albicollis). The Auk, 122(2), 509–522.
Herzog, M.P., Ackerman, J.T., Hartman, C.A. (2021). Egg morphometrics and egg shape coefficients for White-faced Ibis (Plegadis chihi). The Wilson Journal of Ornithology, 133(1), 158–162. https://doi.org/10.1676/21-00057
Hörak, P., Mänd, R., Ots, I. (1997). Identifying targets of selection: A multivariate analysis of reproductive traits in the great tit. Oikos, 78, 592–600.
IOC World Bird List (14.2). http://dx.doi.org/10.14344/IOC.ML.14.2
Jelmer, S., Both, M.C. (2019). Climate change may affect fatal competition between two bird species. Current Biology, 29, 1–5. https://doi.org/10.1016/j.cub.2018.11.063
Knysh, N.P. (2003). Ecology of the reproduction of the Collared Flycatcher in the forest-steppe oak forests of the Sumy region. Berkut, 12(1–2), 100–111.
Krist, M. (2009). Short- and long-term effects of egg size and feeding frequency on offspring quality in the collared flycatcher (Ficedula albicollis). Journal of Animal Ecology, 78, 907–918. https://doi.org/10.1111/j.1365-2656.2009.01536.x
Laczi, M., Sarkadi, F., Herenyi, M., Nagy, G., Hegyi, G., Jablonszky, M., Konczey, R., Krenhardt, K., Laaksonen, T., Ahola, M., Eeva, T., Vaisanen, R.A., Lehikoinen, E. (2006). Climate change, migratory connectivity and changes in laying date and clutch size of the pied flycatcher. Oikos, 114, 277–290.
Li, S., Liu, X., Li, G., Du, X. (2023). Large-brained birds lay smaller but heavier clutches. Avian Research, 14, 100116. https://doi.org/10.1016/j.avrs.2023.100116
Makatsch, W. (1976). Die Eier der Vögel Europas (Vol. 2, pp. 1–460). Leipzig. (in German)
Marisova, I.V., Holina, N.M. (1959). On the biology of the Collared Flycatcher (Muscicapa albicollis Temm.) in the western regions of Ukraine. The Fauna and Animal World of the Soviet Carpathians. Scientific Notes of Uzhhorod National University, 40, 75–81.
Marko, G., Rosivall, B., Szasz, E., Szoll, E., Toth, L., Zsebok, S., Torok, J. (2024). Responses in the breeding parameters of the collared flycatcher to the changing climate. Science of the Total Environment, 926, 171945.
Mitrus, C., Rogala, B. (2001). Egg size variation in the collared flycatcher Ficedula albicollis in the Białowieża Forest (NE Poland). Acta Ornithologica, 36, 7–12.
Mjand, R. (1988). Intrapopulation variability of bird eggs. Tallinn: Vagus.
Oksanen, J., Simpson, G., Blanchet, F., Kindt, R., Legendre, P., Minchin, P., O'Hara, R., Solymos, P., Stevens, M., Szoecs, E., Wagner, H., Barbour, M., Bedward, M., Bolker, B., Borcard, D., Carvalho, G., Chirico, M., De Caceres, M., Durand, S., Evangelista, H., FitzJohn, R., Friendly, M., Furneaux, B., Hannigan, G., Hill, M., Lahti, L., McGlinn, D., Ouellette, M., Ribeiro Cunha, E., Smith, T., Stier, A., Ter Braak, C., Weedon, J., Borman, T. (2025). vegan: Community Ecology Package (version 2.6-10). https://CRAN.R-project.org/package=vegan
Peklo, A.M. (2018). Catalog of collections of the Zoological Museum of the National Museum of Natural History of the National Academy of Sciences of Ukraine. Vol. 2. Birds. Oological collection. Passeriformes. Chernivtsi.
Potti, J. (2008). Temperature during egg formation and the effect of climate warming on egg size in a small songbird. Acta Oecologica, 33, 387–393.
Przybylo, R., Sheldon, B., Merila, J. (2000). Climatic effects on breeding and morphology: Evidence for phenotypic plasticity. Journal of Animal Ecology, 69, 395–403.
R Core Team (2024). _R: A Language and Environment for Statistical Computing_. R Foundation for Statistical Computing, Vienna, Austria.
Schul’ts, G.E. (1981). A common phenology. Nauka.
Seliverstov, M.M. (2007). Catalog of the ornithological collection of O.V. Nosachenko. Cherkasy. (in Ukrainian)
Shitikov, V.K., Rosenberg, G.S. (2013). Randomization and bootstrap: Statistical analysis in biology and ecology using R. Kassandra.
Silva, M.C., Boersma, P.D., Mackay, S., Strange, I. (2007). Egg size and parental quality in thin-billed prions, Pachyptila belcheri: Effects on offspring fitness. Animal Behaviour, 74, 1403–1412.
Skwarska, J., Kaliński, A., Wawrzyniak, J., Bańbura, M., Glądalski, M., Markowski, M., Zieliński, P., Bańbura, A., Bańbura, J. (2015). Variation in egg sizes of pied flycatchers Ficedula hypoleuca in central Poland: A long-term decreasing trend. Acta Ornithologica, 50, 85–94. https://doi.org/10.3161/00016454AO2015.50.1.009
Slobodník, R., Balážová, M., Jandzik, D., Baláž, M. (2013). Local weather differently affects collared flycatcher reproduction at different altitudes. Central European Journal of Biology, 8(11), 1145–1152. https://doi.org/10.2478/s11535-013-0230-9
Somov, N.N. (1897). Ornithological fauna of Kharkiv province. Kharkiv: Publishing of the Society for the Study of Nature at Kharkiv University.
Talposh, V.S., Majhruk, M.I. (1995). Variability of eggs of the Collared Flycatcher in Western Podillia. In Problems of studying and protecting birds: Materials of the 6th conference of ornithologists of Western Ukraine (pp. 129–130). Lviv–Chernivtsi. (in Ukrainian)
Wesołowski, T. (1985). The breeding ecology of the wood warbler Phylloscopus sibilatrix in primaeval forest. Ornis Scandinavica, 16, 49–60.
Wood, S.N. (2006). Generalized additive models: An introduction with R. Chapman and Hall/CRC.
Zuur, A.F., Ieno, E.N., Walker, N.J., Saveliev, A.A., Smith, G.M. (2009). Mixed effects models and extensions in ecology with R. Springer, Statistics for Biology and Health.
Authors retain copyright of their work and grant the journal the right of its first publication under the terms of the Creative Commons Attribution License 4.0 International (CC BY 4.0), that allows others to share the work with an acknowledgement of the work's authorship.