Xu Shi, Xiaoping Wang, Qian Wei, Qiwei Lin, Lei Zhu. 2024: Detour for the inexperienced? Migration count data suggest mostly juvenile Greater Spotted Eagles appear in coastal peninsulas in China. Avian Research, 15(1): 100183. DOI: 10.1016/j.avrs.2024.100183
Citation: Xu Shi, Xiaoping Wang, Qian Wei, Qiwei Lin, Lei Zhu. 2024: Detour for the inexperienced? Migration count data suggest mostly juvenile Greater Spotted Eagles appear in coastal peninsulas in China. Avian Research, 15(1): 100183. DOI: 10.1016/j.avrs.2024.100183

Detour for the inexperienced? Migration count data suggest mostly juvenile Greater Spotted Eagles appear in coastal peninsulas in China

Funds: 

Counting at GTL was funded by the Shenzhen Zhilan Foundation, Alashan SEE Ecological Association and Beijing Xianfeng Foundation. Counting at PXL was funded by the Alashan SEE Chongqing Center 

More Information
  • Corresponding author:

    School of the Environment, The University of Queensland, St Lucia, QLD, 4072, Australia, Australia. E-mail address: xu.shi@uqconnect.edu.au (X. Shi)

  • Received Date: 22 Feb 2024
  • Rev Recd Date: 19 May 2024
  • Accepted Date: 21 May 2024
  • Available Online: 11 Jul 2024
  • Publish Date: 28 May 2024
  • Soaring bird migration often relies on suitable terrain and airflow; therefore, route selection is vital for successful migration. While age and experience have been identified as key factor influencing migration route selection among soaring raptors in the African-Eurasian Flyway, how they shape the migration route of soaring raptors in East Asia is still largely unknown. In this study, we investigated potential variations in the routes and timing in autumn migration of juvenile and older soaring birds, using count data of Greater Spotted Eagles (Clanga clanga) from two coastal sites and two inland sites in China. From 2020 to 2023, we recorded a total of 340 individuals, with the highest site averaging over 90 individuals per autumn, making it one of the world's top single-season counts and thus a globally important site for this species. We found that 82% and 61% records from coastal sites were juveniles, significantly higher than inland sites (15% and 24%). Juveniles at all four sites exhibited markedly earlier median passage time than non-juveniles, with brief overlapping in their main migration periods. Both coastal sites are located on the tip of peninsulas stretching southwest, requiring long overwater flights if crossing the Bohai Bay or Beibu Gulf, which would be energetically demanding and increase mortality risk. Experienced individuals may have learned to avoid such terrain and subsequent detour, while juveniles are more prone to enter these peninsulas due to lack of experience and opportunities for social learning, or following other raptor species that are more capable of powered flight. Our findings highlight the importance of age and experience in migration route selection of large soaring birds.

  • With an in-depth understanding of sex-determination mechanisms, gender identification techniques for birds have rapidly developed (McQueen et al., 2001; Ellegren, 2002; Nakagawa, 2004). Since it is impossible to sex many sexually monomorphic species visually or with simple measurements, molecular sexing by polymerase chain reaction (PCR) amplification provides for reliable methods that have been used widely in many species (Quinn et al., 1990; Ellegren and Sheldon, 1997; Griffiths et al., 1998). One of them is to amplify the sex-linked CHD genes (CHD-Z and/or CHD-W) by PCR (Ellegren, 1996; Lessells and Mateman, 1996; Griffiths et al., 1998). Using this method, specific primers anneal to the conserved exonic regions of CHD and amplify across an intron with various lengths. The PCR products from the Z and W chromosomes can be discriminated after agarose electrophoresis, with males showing one band and females two bands.

    As the most diverse order in Aves, the biology, ecology, ethology, evolution and adaptation of Passeriformes have been widely studied (Saino et al., 2008; Woxvold and Magrath, 2008). Saino et al. (2008) found that in enlarged broods of Hirundo rustica, which may result in harsh rearing conditions, the average phenotypic quality of nestlings was depressed for those with a male-biased sex ratio. In a study of the cooperatively breeding apostlebird, Struthidea cinerea, Woxvold and Magrath (2008) suggested that the sex ratio was biased according to the hatching order; mothers in small breeding groups produced significantly more males among the first-hatching brood, presumably because males were more helpful than females during the breeding period. Too many studies have been performed to describe them in detail, but a common feature is the use of molecular sexing methods to identify their sex based on the CHD genes (Ellegren and Sheldon 1997; Saino et al., 2008; Woxvold and Magrath, 2008).

    Griffiths et al. (1998) designed the primer pair P2/P8 based on the CHD genes of the domestic chicken. Since then, many other primers have been developed for gender identification of birds, such as 2550F/2718R (Fridolfsson and Ellegren, 1999; Dubiec and Zagalska-Neubauer, 2006; Woxvold and Magrath, 2008), 1237L/1272H (Kahn et al., 1998) and sex1/sex2 (Wang and Zhang, 2009). The primer pair sex1/sex2 was designed from the CHD genes of the Brown-eared Pheasant (Crossoptilon mantchuricum) and can be used to sex many other pheasants accurately as well as some Passeriform species (Wang and Zhang, 2009). In this study, we mainly discuss the efficacy of sex1/sex2 in determining the sex of Passeriform species and describe how to improve them for gender identification.

    Feathers, egg shell membranes, muscles, or blood from 99 individuals belonging to 17 bird species in ten families were collected either in the field or from zoos (see details in Table 1). Genomic DNA was extracted by using DNA extraction kits (Trans Biotech, Beijing, China) and was diluted to 50–100 ng·L–1 after determining the concentration spectrophotometrically (DU-640, Beckman Coulter GmbH, Germany). DNA extracted from feathers was used directly without dilution for PCR because of its low concentration.

    Table  1.  Sex identification of 17 Passeriformes species using four pairs of primers
    Family Species Source a (sampling location) Traditional diagnosis No. (M/F)
    Passeridae Passer montanus M (museum of BNU) Sequencing CHD-Z/W fragments 23 (12/11)
    Lonchura striata B (Beijing, bird market) Male song 10 (6/4)
    Paridae Parus major M (DNR) Sexual dimorphism 2 (1/1)
    Parus palustris M (museum of BNU) Record of the specieman tag 2 (1/1)
    Periparus venustulus M (DNR) Sexual dimorphism 3 (2/1)
    Hirundinidae Riparia riparia M (museum of BNU) Examination of the gonads 1 (0/1)
    Turdidae Luscinia svecicus R (Tianjin Zoo) Sexual dimorphism 2(1/1)
    Monticola gularis R (Tianjin Zoo) Sexual dimorphism 2 (2/0)
    Aegithalidae Aegithalos concinnus B (DNR) Observation of mating behavior 16 (9/7)
    Laniidae Lanius schach M & E (Hainan) Sequencing CHD-Z/W fragments 8 (4/4)
    Lanius fuscatus M (Hainan) Sequencing CHD-Z/W fragments 4 (2/2)
    Lanius cristatus M (Hainan) Sequencing CHD-Z/W fragments 5 (4/1)
    Corvidae Corvus corone M (museum of BNU) Sequencing CHD-Z/W fragments 4 (2/2)
    Cyanopica cyana M & E (campus of BNU) Observation of mating behavior 11 (5/6)
    Fringillidae Eophona migratoria M (museum of BNU) Sexual dimorphism 2 (1/1)
    Emberizidae Emberiza aureola R (Tianjin, bird market) Sexual dimorphism 2 (1/1)
    Muscicapidae Ficedula zanthopygia R (Tianjin, bird market) Sexual dimorphism 2 (1/1)
    10 families 17 species 99
    M, muscle; E, egg shell membrane; R, rectrices; B, blood; No., number of individuals; M/F, proportion of males to females.
    a Source means the sources of samples. BNU, Beijing Normal University; DNR, Dongzhai National Reserve (31°28′–32°09′N, 114°18′–114°30′E).
     | Show Table
    DownLoad: CSV

    The primer pairs P2/P8 (Griffiths et al., 1998) and sex1/sex2 (Wang and Zhang, 2009) were both used for sex identification of these Passeriformes of known gender (confirmed by traditional sex diagnoses, such as external morphology, behavioral observations, and post mortem examination of the gonads, Table 1). We used a 20-L PCR volume containing 100–200 ng DNA, 0.5 M of each primer, 10× PCR buffer, 2.0 mM MgCl2, 0.2 mM of dNTP mix, and 0.75 U Taq DNA polymerase (all reagents were from Takara, Japan). The thermal cycling conditions for both primer pairs were initial denaturation at 94℃ for 3 min, then 35 cycles of denaturation for 30 s at 94℃, annealing for 45 s at 50℃ (we used constant temperature here for comparison, while better results could be obtained by adjusting the annealing temperature to fit different species) and extension for 50 s at 72℃, followed by a final extension for 10 min at 72℃. After electrophoresis on 3% agarose gels, we found different amplification efficiencies of sex1/sex2 in various samples, i.e., some samples showed preferential amplification of the longer CHD-W fragments. In order to explain this outcome, we sequenced the CHD fragments amplified by P2/P8 (the annealing sites of sex1/sex2 were within those of P2/P8) from some representative samples, such as Passer montanus (GU370350, GU370351), Corvus corone (GU370346, GU370347), and Lanius schach (GU370348, GU370349), at BGI Life Tech, Beijing, China.

    After aligning the annealing sites of the sex1/sex2 primers with the sequenced CHD fragments by Mega 3.1, we found that the last base pair at the 3′-end in sex1 and four base pairs in sex2 did not match with CHD-Z, but rather corresponded to the CHD-W fragments. To avoid unnecessary preferential amplification, we modified sex1 by deleting three base pairs at the 3′-end (referred to as sex1′) and substituted the four unsuitable base pairs in sex2 for adjacent base pairs (referred to as primer sex-mix: 5′-CCTTCRCTKCCATTRAAGCTRATCTGGAAT-3′, where R refers to G/A and K refers to G/T). Primer sets were then recombined as sex1′/sex2 and sex1′/sex-mix to re-determine the sex of sampled Passeriform species (Table 1).

    Figure 1 shows the electrophoresis of the resulting PCR products amplified by the four primer pairs (P2/P8, sex1′/sex-mix, sex1′/sex2, and sex1/sex2) based on the same samples. Preferential amplification was observed either for CHD-Z or CHD-W when using P2/P8, sex1′/sex-mix, or sex1/sex2; while for sex1′/sex2, preferential amplification did not occur frequently. In total, 99 individuals belonging to 17 species in ten families of Passeriformes were sexed with different primer combinations (Table 1). The successful rates of sex determination tested with P2/P8, sex1/sex2, sex1′/sex-mix, and sex1′/sex2 were 85.6%, 89.6%, 92.7%, and 98.9%, respectively.

    Figure  1.  Sex identification of Passeriform species using different primer pairs (the same number indicates the same individual). 1, Luscinia svecica; 2, Luscinia calliope; 3, 4, Emberiza aureola; 5, 6, Passer montanus; 7, 8, Corvus corone; M, 100-bp DNA ladder. Females: 1, 3, 5, 7; Males: 2, 4, 6, 8. The birds were sexed using (a) P2/P8, (b) sex1′/sex-mix, (c) sex1/sex2, and (d) sex1′/sex2.

    Sex identification techniques have undoubtedly benefited studies on evolutionary biology, ecology, and conservation genetics of birds (Saino et al., 2008; Woxvold and Magrath, 2008; Cockburn and Double, 2008). The exploration of sex ratio adjustment in birds has attracted much interest, but not all studies have shown adaptive patterns and some have even countered the predictions of existing theories (Frank, 1990; Bensch et al., 1999; Cockburn and Double, 2008). Studies with inconsistent results are difficult to interpret because they may not fully consider all possible constraints (West and Sheldon, 2002). Of particular relevance to our study on the use of primers in sex identification, many avian sex-allocation studies have identified the sex of the offspring late in their development, obtaining the so-called primary sex ratios, that may have experienced differential embryo or chick mortality due to chance environmental effects (Fiala, 1980). However, the problem of determining the sex of morphologically indistinguishable young birds and embryos has now been resolved by genetic techniques that allow the sexing of day-old nestlings and of embryos recovered from eggs, minimizing the confounding effect of later differential mortality among chicks (Griffiths et al., 1998; Fridolfsson and Ellegren, 1999). With the optimization of molecular sexing primers, the accuracy of various studies can expect to be greatly improved in the future.

    In our study, the primer pairs P2/P8 and sex1/sex2 were both used for sex identification in Passeriformes. Regardless of their wide application (Ellegren and Sheldon, 1997; Whittingham and Dunn, 2000; Dreiss et al., 2006), certain deficiencies remain with each primer pair. We needed a high concentration of primers and high-quality DNA when using P2/P8, without which the preferential amplification of CHD-Z fragments occurred (Fig. 1a). However, the primer pair sex1/sex2 can generally cause the preferential amplification of CHD-W fragments (Fig. 1c, except in L. striata) because of their characteristics, i.e., they match CHD-W more closely than CHD-Z in the Passeriformes (at most a 2-bp difference in CHD-W versus at least a 4-bp difference in CHD-Z). We paired the modified sex1 (sex1′) with either sex2 or sex-mix, and found that sex1′/sex-mix caused evident preferential amplification of CHD-Z fragments in Aegithalos concinnus, C. corone, P. montanus, Emberiza aureola, Luscinia svecicus, Ficedula zanthopygia, and L. striata (see examples in Fig. 1b). We speculated that when using sex1′/sex-mix, the CHD-W fragments would hardly anneal with these primers, while this same combination can result in the preferential amplification of shorter CHD-Z fragments. Given that the preferential amplification of CHD-Z fragments may cause a more serious misidentification problem than that of CHD-W fragments that can at least imply the female sex, we ultimately chose sex1′/sex2 for sexing because sex1′ corresponds to the exons of both the CHD-W and CHD-Z fragments (i.e., no biased annealing to CHD-W occurs), and sex2 corresponds only with the exons of CHD-W fragments in Passeriformes (eliminating the potential preferential amplification of CHD-Z). Therefore, we postulated that limited preferential amplification of both CHD-Z and CHD-W fragments would occur. The results shown in Fig. 1d strongly support our hypothesis. Given that the differences in the successful sex rate were mainly caused by preferential amplification in our study, we recommend that the primer set sex1′/sex2 is a better choice as molecular sex identification primers. Nevertheless, the primer set sex1/sex2 is also useful in certain species with preferential amplification of CHD-W (whose lengths, much different from that of CHD-Z, would be preferred) because the appearance of CHD-W implies the female sex, and researchers can document the variable lengths of CHD-W from known female birds.

    In total, we sexed 99 individuals from 17 Passeriform species using different primer combinations (Table 1). After comparing the products amplified by the different primer sets, we found that sex1′/sex2 showed clear, reliable results when sexing Passeriformes. Presently, they are being frequently used in population studies of Aegithalos concinnus, which shows cooperative breeding behavior (Hatchwell and Russell, 1996; McGowan et al., 2003) and we are interested in exploring the sex allocation in different breeding groups. Moreover, the sex identification of Lonchura striata (a model bird in studying the learning activity of songs in the Physiology Lab of Beijing Normal University) is also benefiting from the use of sex1′/sex2. In the near future, we can expect more applications of this primer pair to further studies in Passeriformes.

    This work was supported by the National Natural Science Foundation of China (Nos. 30570234, 30330050). We thank Drs. Geoffrey Davison, Xiangjiang Zhan, and Yang Liu for their helpful comments on the manuscript.

  • Agostini, N., Panuccio, M., Pasquaretta, C., 2015. Morphology, flight performance, and water crossing tendencies of Afro-Palearctic raptors during migration. Curr. Zool. 61, 951-958. .
    Alerstam, T., 2011. Optimal bird migration revisited. J. Ornithol. 152, 5-23. .
    Alexeyenko, M.N., Povarintsev, A.I., Fefelov, I.V., 2018. Autumn migration of eagles in the South Baikal migratory pass: dynamics for 30 years. Proceedings of Conferences. Raptors Conserv. Suppl. 1, 57-59.
    Bednarz, J., Klem, D., Goodrich, L., Senner, S., 1990. Migration counts of raptors at Hawk Mountain, Pennsylvania, as indicators of population trends, 1934–1986. Auk 107, 96-109. .
    Bildstein, K.L., 2006. Migrating Raptors of the World: Their Ecology & Conservation. Cornell University Press, Ithaca, NY.
    Bildstein, K.L., Bechard, M.J., Farmer, C., Newcomb, L., 2009. Narrow sea crossings present major obstacles to migrating Griffon Vultures Gyps fulvus. Ibis 151, 382-391. .
    Birdlife International, 2023. Greater spotted eagle (Clanga clanga) – BirdLife species factsheet. , 9.22.23.
    Cheng, W., Dong, H., 2013. Raptor migration monitoring in the spring of 2009 at Baiwangshan, Beijing. Chinese Birds 4, 319-327. .
    De Pascalis, F., Panuccio, M., Bacaro, G., Monti, F., 2020. Shift in proximate causes of mortality for six large migratory raptors over a century. Biol. Conserv. 251, 108793 .
    DeCandido, R., Allen, D., Bildstein, K.L., 2001. The migration of Steppe Eagles (Aquila nipalensis) and other raptors in central Nepal, autumn 1999. J. Raptor Res. 35, 35-39.
    Ferguson-Lees, J., Christie, D.A., 2001. Raptors of the World. Houghton Mifflin Harcourt, Boston.
    Forsman, D., 2016. Flight Identification of Raptors of Europe, North Africa and the Middle East. Christopher Helm, London.
    Hake, M., Kjellén, N., Alerstam, T., 2003. Age-dependent migration strategy in honey buzzards Pernis apivorus tracked by satellite. Oikos 103, 385-396. .
    Kerlinger, P., 1985. Water-crossing behavior of raptors during migration. Wilson Bull. 97, 109-113.
    Klaassen, R.H.G., Hake, M., Strandberg, R., Koks, B.J., Trierweiler, C., Exo, K.M., et al., 2014. When and where does mortality occur in migratory birds? Direct evidence from long-term satellite tracking of raptors. J. Anim. Ecol. 83, 176-184. .
    MaMing, R., Chen, W., Zhong, Y., 2022. New wintering places of the greater spotted eagle in Xinjiang, China. Raptors Conserv. 0, 89-94. .
    Mcgrady, M., Schmidt, M., Andersen, G., Meyburg, C., Väli, Ü., Allamki, F., et al., 2021. Movements of a male greater spotted eagle (Clanga clanga) during its 2 nd and 3 rd calendar years. Slovak Raptor J. 15, 1-15. .
    Mellone, U., 2020. Sea crossing as a major determinant for the evolution of migratory strategies in soaring birds. J. Anim. Ecol. 89, 1298-1301. .
    Mellone, U., Limiñana, R., Mallia, E., Urios, V., 2011. Extremely detoured migration in an inexperienced bird: interplay of transport costs and social interactions. J. Avian Biol. 42, 468-472. .
    Mellone, U., Lucia, G., Mallìa, E., Urios, V., 2016. Individual variation in orientation promotes a 3000-km latitudinal change in wintering grounds in a long-distance migratory raptor. Ibis 158, 887-893. .
    Meyburg, B-U., Angelov, I., Azar, S., 2020. A corridor of soaring bird migration in Lebanon on the Eastern Mediterranean flyway. Sandgrouse 42, 46-58.
    Meyburg, B.U., Bergmanis, U., Langgemach, T., Graszynski, K., Hinz, A., Börner, I., et al., 2017. Orientation of native versus translocated juvenile lesser spotted eagles (Clanga pomarina) on the first autumn migration. J. Exp. Biol. 220, 2765-2776. .
    Meyburg, B.U., Kirwan, G.M., Garcia, E.F., 2016. Greater spotted eagle (Clanga clanga). In: del Hoyo, J., Elliott, A., Sargatal, J., Christie, D.A., de Juana, E. (Eds.), Handbook of the Birds of the World Alive. Lynx Edicions, Barcelona.
    Meyburg, B.U., Matthes, J., Meyburg, C., 2002. Satellite-tracked lesser spotted eagle avoids crossing water at the Gulf of Suez. Br. Birds 95, 372-376.
    Meyburg, B.U., Meyburg, C., Mizera, T., Maciorowski, G., Kowalski, J., 2005. Family break up, departure, and autumn migration in Europe of a family of Greater Spotted Eagles (Aquila clanga) as reported by satellite telemetry. J. Raptor Res. 39, 462-466.
    Min, X., Gao, Z., Lin, Y., Lu, C.H., 2021. Annual long-distance migration strategies and home range of Chinese sparrowhawk (Accipiter soloensis) from South China. Animals 11, 2237. .
    Mischenko, A.L., Sharikov, A.V., Karvovsky, D.A., Grinchenko, O.S., Melnikov, V.N., Bekmansurov, R.H., et al., 2022. Determination of migration routes and areas of summer vagrancy of Greater Spotted Eagles (Clanga clanga, Accipitriformes, Accipitridae) in the first year of their life using GPS–GSM telemetry. Biol. Bull. 49, 1320-1330. .
    Nourani, E., Safi, K., Yamaguchi, N.M., Higuchi, H., 2018. Raptor migration in an oceanic flyway: wind and geography shape the migratory route of grey-faced buzzards in East Asia. R. Soc. Open Sci. 5, 171555 .
    Nourani, E., Yamaguchi, N.M., Manda, A., Higuchi, H., 2016. Wind conditions facilitate the seasonal water-crossing behaviour of Oriental Honey-buzzards Pernis ptilorhynchus over the East China Sea. Ibis 158, 506-518. .
    Oppel, S., Dobrev, V., Arkumarev, V., Saravia, V., Bounas, A., Kret, E., et al., 2015. High juvenile mortality during migration in a declining population of a long-distance migratory raptor. Ibis 157, 545-557. .
    Panuccio, M., Mellone, U., Agostini, N., 2021. Migration Strategies of Birds of Prey in Western Palearctic. CRC Press, Boca Raton.
    Pierce, A.J., Nualsri, C., Sutasha, K., Round, P.D., 2021. Determining the migration routes and wintering areas of Asian sparrowhawks through satellite telemetry. Glob. Ecol. Conserv. 31, e01837. .
    R Core Team, 2019. R: A Language and Environment for Statistical Computing.
    Rotics, S., Kaatz, M., Resheff, Y.S., Turjeman, S.F., Zurell, D., Sapir, N., et al., 2016. The challenges of the first migration: movement and behaviour of juvenile vs. adult white storks with insights regarding juvenile mortality. J. Anim. Ecol. 85, 938-947. .
    Sergio, F., Barbosa, J.M., Tanferna, A., Silva, R., Blas, J., Hiraldo, F., 2022. Compensation for wind drift during raptor migration improves with age through mortality selection. Nat. Ecol. Evol. 6, 989-997. .
    Sergio, F., Tanferna, A., De Stephanis, R., Jiménez, L.L., Blas, J., Tavecchia, G., et al., 2014. Individual improvements and selective mortality shape lifelong migratory performance. Nature 515, 410-413. .
    Shamoun-Baranes, J., Liechti, F., Vansteelant, W.M.G., 2017. Atmospheric conditions create freeways, detours and tailbacks for migrating birds. J. Comp. Physiol. A 203, 509-529. .
    Sharikov, A.V., Pedenko, A.S., Zotov, D.A., Tobolova, E.I., Mischenko, A.L., Melnikov, V.N., et al., 2022. The winter distribution of young Greater Spotted Eagles (Clanga clanga) marked with GPS–GSM trackers in the European part of Russia. Arid Ecosyst. 12, 315-320. .
    Shi, X., Hu, C., Soderholm, J., Chapman, J., Mao, H., Cui, K., et al., 2022. Prospects for monitoring bird migration along the East Asian-Australasian Flyway using weather radar. Rem. Sens. Ecol. Conserv. .
    Shi, X., Xiao, X., Zhao, X., Sun, R., Zhao, X., Choi, C.Y., et al., 2023. Raptor migration at Guantouling, South-west China: phenology, weather influence and persecution pressure. Bird. Conserv. Int. 33, e2. .
    Strandberg, R., Klaassen, R.H.G., Hake, M., Alerstam, T., 2010. How hazardous is the Sahara Desert crossing for migratory birds? Indications from satellite tracking of raptors. Biol. Lett. 6, 297-300. .
    Subedi, T.R., DeCandido, R., Baral, H.S., Gurung, S., Gurung, S., Puan, C.L., et al., 2017. Population structure and annual migration pattern of Steppe Eagles at Thoolakharka watch site, Nepal, 2012-2014. J. Raptor Res. 51, 165-171. .
    Thorup, K., Alerstam, T., Hake, M., Kjellén, N., 2003. Bird orientation: Compensation for wind drift in migrating raptors is age dependent. Proc. R. Soc. B 270. .
    Väli, Ü., Dombrovski, V., MacIorowski, G., Sellis, U., Ashton-Butt, A., 2023. Spatial and temporal differences in migration strategies among endangered European Greater Spotted Eagles Clanga clanga. Bird. Conserv. Int. 33, e6. .
    Väli, Ü., Dombrovski, V., Mirski, P., 2021. Greater spotted eagle Clanga clanga. In: Panuccio, M., Mellone, U., Agostini, N. (Eds.), Migration Strategies of Birds of Prey in Western Palearctic. CRC Press, Boca Raton, pp. 88–100. .
    Vansteelant, W.M.G., Kekkonen, J., Byholm, P., 2017. Wind conditions and geography shape the first outbound migration of juvenile honey buzzards and their distribution across sub-Saharan Africa. Proc. R. Soc. B 284. .
    Vansteelant, W.M.G., Wehrmann, J., Engelen, D., Jansen, J., Verhelst, B., Benjumea, R., et al., 2020. Accounting for differential migration strategies between age groups to monitor raptor population dynamics in the eastern Black Sea flyway. Ibis 162, 356-372. .
  • Related Articles

Catalog

    Figures(4)  /  Tables(1)

    Article Metrics

    Article views (20) PDF downloads (8) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return