DOI QR코드

DOI QR Code

경기만 일대에서 번식하는 저어새(Platalea minor)의 포란 행동에 영향을 미치는 요인

Factors Affecting Incubation Rhythm of the Black-faced Spoonbill (Platalea minor) Breeding in Gyeonggi Bay, Korea

  • 박종현 (삼육대학교 동물자원학과) ;
  • 이기섭 (한국물새네트워크) ;
  • 권인기 (국립생태원 멸종위기종복원센터 복원연구실) ;
  • 정훈 (삼육대학교 동물자원학과)
  • Park, Jong-Hyun (Department of Animal Science, Sahmyook University) ;
  • Lee, Kisup (Waterbird Network Korea) ;
  • Kwon, In-Ki (Division of Restoration Research, Research Center for Endangered Species, National Institute of Ecology) ;
  • Chung, Hoon (Department of Animal Science, Sahmyook University)
  • 투고 : 2019.06.03
  • 심사 : 2019.09.16
  • 발행 : 2019.09.30

초록

Our study was conducted to examine differences in incubation behavior among breeding sites and the relationship between factor affecting environmental change and incubation behavior of the Black-faced Spoonbill (Platalea minor). We set up the remote sensor cameras at three breeding sites (Mae-do, Namdongji, Guji-do) to observe incubation behavior in Gyeonggi Bay, South Korea from 2015 to 2018. We analyzed effects of breeding year, day of incubation started, day of incubation, the time of incubation exchanges and sex on incubation bout length. Mean incubation bout length of females (Mae-do: $7.19{\pm}0.23$ hours, Namdongji: $6.08{\pm}0.23$ hours, Guji-do: $7.96{\pm}0.30$ hours) was longer than males (Mae-do: $6.14{\pm}0.21$ hours, Namdongji: $5.45{\pm}0.28$ hours, Guji-do: $7.38{\pm}0.29$ hours). Mean incubation bout length was longer in Guji-do than other study sites. Incubation bout length tended to increase with the clutch initiation date. Males incubated their eggs at day time while female did at night time, these tendencies were observed more clearly in Guji-do. The proportion of time spent incubating of females was higher than males. Males' proportion increased as incubation progressed and increased rate in Guji-do was higher than other study sites. Our results showed that incubation rhythm of the Black-faced Spoonbill differed among breeding sites and varied with the environmental cycle.

키워드

참고문헌

  1. Kwon IK, Kang JH, Lee KS, Kim IK, Yoo JC (2015) Breeding status and nest site characteristics of Blackfaced Spoonbills Platalea minor on Chilsando Islands, Korea. Korean J Environ Ecol 29(5):703-709 https://doi.org/10.13047/KJEE.2015.29.5.703
  2. Kim KW, Lee KJ, Han BH, Choi TY (2011) A Study on the Biotope Mapping and Management Plan of the Habitat of Black-faced Spoonbill at Namdong Reservoir, Incheon. Korean J Environ Ecol 21(2):59-62
  3. Kim IC (2006) Breeding status and feeding ecology of black-faced spoonbill (platalea minor) during its breeding season in South Korea. M.D. Thesis, Korea National University of Education, 86 p
  4. Kim JG (2018) Researches on the habitat status and characteristics of Black-faced Spoonbill (Platalea minor) during breeding season in Ganghwa province. M.D. Thesis, Korea National Open University, 55 p
  5. Yoo SY (2018) Habitat selection and feeding behavior of Black-faced Spoonbill Platalea minor in rice fields during breeding season. M.D. Thesis, Kyung Hee University, 37 p
  6. Lee KS, Kwon IK, Lee JY, Kim WC (2014) Breeding situation of the Black-faced Spoonbill in Korea. In: proceeding of the Black-faced Spoonbill Forum, Incheon Black-faced Spoonbill Network, Incheon, pp 5-17
  7. Lee KS, Chung H, Kim WC, Kim EM, Lee JY, Jung MS (2013) Study on breeding ecology of the Black-faced Spoonbill and habitat management, Incheon Green Environment Center, Incheon, 75 p
  8. Nam (2014) Habitat use of the Black-faced Spoonbill in Song-do and Yeongjong-do In: proceeding of the Blackfaced Spoonbill Forum, Incheon Black-faced Spoonbill Network, Incheon, pp 57-68
  9. Jung MS (2014) Temporal and spatial changes in the diet of young black-faced spoonbills (Platalea minor) revealed by stable isotope analysis. M.D. Thesis, Seoul National University, 70 p
  10. Cho HS (2010) Development of mitigated habitat model for conservation of black-faced spoonbill (Platalea minor) during breeding season in Korea. M.D. Thesis, Seoul National University, 86 p
  11. Afton AD, Paulus SL (1992) Incubation and brood care. In: Batt BDJ, Anderson MG, Afton AD (eds) Ecology and management of breeding waterfowl. University of Minnesota Press, Minneapolis, 664 p
  12. Aguilera E (1990) Sexual differences in nest attendance and chick-feeding rhythms of White Spoonbills. Auk 107(2):416-420 https://doi.org/10.2307/4087631
  13. Aguilera E, Alvarez F (1989) Copulations and mate guarding of the Spoonbill (Platalea leucorodia). Behaviour 110(1):1-22 https://doi.org/10.1163/156853989X00358
  14. Amat JA, Masero JA (2004) Predation risk on incubating adults constrains the choice of thermally favourable nest sites in a plover. Anim Behav 67(2):293-300 https://doi.org/10.1016/j.anbehav.2003.06.014
  15. Birdlife International (2018) International union for conservation nature. www.incnredlist.org Accessed 14 Dec 2018
  16. Boersma PD, Rebstock GA (2009) Foraging distance affects reproductive success in Magellanic penguins. Mar Ecol-Prog Ser 375:263-275 https://doi.org/10.3354/meps07753
  17. Bulla M, Valcu1 M, Dokter AM, Dondua AG, Kosztolanyi A, Rutten AL, Helm B, Sandercock BK, Casler B, Ens BJ, Spiege CS, Hassell CJ, Kupper C, Minton C, Burgas D, Lank DB, Payer DC, Loktionov EY, Nol E, Kwon E, Smith F, Gates HR, Vitnerova H, Pruter H, Johnson JA, St Clair JJH, Lamarre J-F, Rausch J, Reneerkens J, Conklin JR, Burger J, Liebezeit J, Bety J, Coleman JT, Figuerola J, Hooijmeijer JCEW, Alves JA, Smith JAM, Weidinger J, KoivulaK, Gosbell K, Exo K-M, Niles L, Koloski L, McKinnon L, Praus L, Klaassen M, Giroux M-A, Sladecek M, Boldenow ML, Goldstein MI, Salek M, Senner N, Ronka N, Lecomte N, Gilg O, Vincze O, Johnson OW, Smith PA, Woodard PF, Tomkovich PS, Battley PF, Bentzen R, Lanctot RB, Porter R, Saalfeld ST, Freeman S, Brown SC, Yezerinac S, Szekely T, Montalvo T, Piersma T, Loverti V, Pakanen V-M, Tijsen W, Kempenaers B (2016) Unexpected diversity in socially synchronized rhythms of shorebirds. Nature 540:109-113 https://doi.org/10.1038/nature20563
  18. Bulla M, Valcu M, Rutten AL, Kempenaers B (2013) Biparental incubation patterns in a high-Arctic breeding shorebird: how do pairs divide their duties? Behav Ecol 25(1):152-164 https://doi.org/10.1093/beheco/art098
  19. Bulla M, Valcu M, Rutten AL, Kempenaers B (2017) Temporary mate removal during incubation leads to variable compensation in a biparental shorebird. Front Ecol Environ (in press)
  20. Chong JR, Rim UI, Park UI, Kim TS (1996) Breeding biology of the Black-faced Spoonbill Platalea Minor. J Field Ornithol 14:1-10
  21. Deeming DC (2002) Avian incubation: behaviour, environment and evolution. Oxford University Press, Oxford, 421 p
  22. Ding W, Lei F, Yin Z, Liu R (1999) The breeding sites of the Black-faced Spoonbill Platalea minor have been discovered in Northern China. Bird Conser Int 9(3):284-290
  23. Dunn P (2004) Breeding dates and reproductive performance. Adv Ecol Res 35:69-87 https://doi.org/10.1016/S0065-2504(04)35004-X
  24. Gonzalez-Solis J, Croxall JP, Wood AG (2000) Sexual dimorphism and sexual segregation in foraging strategies of Northern Giant petrels, Macronecte shalli, during incubation. Oikos 90(2):390-398 https://doi.org/10.1034/j.1600-0706.2000.900220.x
  25. Hancock J, Kushlan JA, Kahl MP (1992) Storks, ibises and spoonbills of the world. A&C Black, London, 385 p
  26. Jung, SM, Lee KS, Kang JH, Lee SW, Oh HS (2015) Using GPS-mobile based telemetry (WT-200) to study moving distances and habitat use of juvenile Black-faced Spoonbills in the border area of South Korea. Korean J Ornith 22(1):21-30
  27. Kang JH, Kim IK, Lee KS, Lee HS, Rhim SJ (2016) Distribution, breeding status, and conservation of the Black-faced Spoonbill (Platalea minor) in South Korea. Forest Sci Tech 12(3):162-166 https://doi.org/10.1080/21580103.2015.1090483
  28. Kennerley PR (1990) A review of the status and distribution of the Black-faced Spoonbill. Hong Kong Bird Report 1989:116-125
  29. Klimczuk E, Halupka L, Czyz B, Borowiec M, Nowakowski JJ, Sztwiertnia H (2015) Factors driving variation in biparental incubation behaviour in the reed warbler Acrocephalus scirpaceus. Ardea 103(1):51-59 https://doi.org/10.5253/arde.v103i1.a5
  30. Kwon IK (2017) Breeding and conservation biology of the Black-faced Spoonbill Platalea minor in Korea. Ph. D. Thesis, Kyung Hee University, 137 p
  31. Kwon IK, Lee KS, Lee JY, Park JH, Yoo JC (2017) Hybridization between the Black-faced Spoonbill (Platalea minor) and Eurasian Spoonbill (Platalea leucorodia) in South Korea. Waterbirds 40(1):77-81 https://doi.org/10.1675/063.040.0112
  32. Lee KS (2015) Breeding situation of Black-faced Spoonbill in Korea. In: Lee KS (ed) Proceeding of international Black-faced Spoonbill workshop for conservation activities. Waterbird Network Korea, Seoul, pp 11-45
  33. Lee MY, Kwon IK, Lee K, Choi SK, Jeon HS, Lee JY, Eo KY, Kim HJ, Kim JH, Johnson WE, Yoo JC, An J (2017) Genetic diversity and population structure of the Black-faced Spoonbill (Platalea minor) among its breeding sites in South Korea: implication for conservation. Biochem Syst Ecol 71:106-113 https://doi.org/10.1016/j.bse.2017.01.014
  34. Martin GR, Portugal SJ (2011) Differences in foraging ecology determine variation in visual fields in ibises and spoonbills (Threskiornithidae). Ibis 153(4):662-671 https://doi.org/10.1111/j.1474-919X.2011.01151.x
  35. Matysiokova B, Remes V (2018) Evolution of parental activity at the nest is shaped by the risk of nest predation and ambient temperature across bird species. Evolution 72(10):2214-2224 https://doi.org/10.1111/evo.13580
  36. National Institute of Biological Resources (2019) Migratory bird information system. https://species.nibr.go.kr Assessed 20 July 2019
  37. Oring LW, Reed JM, Colwell MA, Lank DB, Maxon SJ (1991) Factors regulating annual mating success and reproductive success in spotted sandpipers (Actitis macularia). Behav Ecol Sociobiol 28:433-442 https://doi.org/10.1007/BF00164125
  38. Shibaev YV (2010) Breeding of the Black-faced Spoonbill (Platalea minor) in Peter the Great Bay (Primorye, Russia) Situation and prospects. Annual Report Pro Natura Fund 19:151-164
  39. Smith PA, Gilchrist HG, Forbes MR, Martin JL, Allard K (2010) Inter-annual variation in the breeding chronology of Arctic shorebirds: effects of weather, snow melt and predators. J Avian Biol 41(3):292-304 https://doi.org/10.1111/j.1600-048X.2009.04815.x
  40. St Clair JJ, Herrmann P, Woods RW, Szekely T (2010a) Female-biased incubation and strong diel sex-roles in the Two-banded Plover Charadrius falklandicus. J Ornithol 151(4):811-816 https://doi.org/10.1007/s10336-010-0517-9
  41. St Clair JJ, Kuepper C, Herrmann, P, Woods RW, Szekely T (2010b) Unusual incubation sex-roles in the Rufouschested Dotterel Charadrius modestus. Ibis 152(2):402-404 https://doi.org/10.1111/j.1474-919X.2009.01003.x
  42. Szekely T, Reynolds JD (1995) Evolutionary transitions in parental care in shorebirds. P R Soc B 262:57-64 https://doi.org/10.1098/rspb.1995.0176
  43. Wei GA, Yin ZH, Lei FM (2005) Copulation and mate guarding of the Chinese egret. Waterbirds 28:527-530 https://doi.org/10.1675/1524-4695(2005)28[527:CAMGOT]2.0.CO;2
  44. Yeung CL, Yao CT, Hsu YC, Wang JP, Li SH (2006) Assessment of the historical population size of an endangered bird, the black-faced spoonbill (Platalea minor) by analysis of mitochondrial DNA diversity. Anim Conserv 9(1):1-10 https://doi.org/10.1111/j.1469-1795.2005.00007.x
  45. Yohannes E, Valcu M, Lee RW, Kempenaers B (2010) Resource use for reproduction depends on spring arrival time and wintering area in an arctic breeding shorebird. J Avian Biol 41:580-590 https://doi.org/10.1111/j.1600-048X.2010.04965.x
  46. Yu YT, Swennen C (2004) Habitat use of the Black-faced Spoonbill. Waterbirds 27(2):129-134 https://doi.org/10.1675/1524-4695(2004)027[0129:HUOTBS]2.0.CO;2
  47. Yu YT, Chan KT, Tse IWL, Fong HHN (2018) International Black-faced Spoonbill census 2017. https://www.hkbws.org.hk/web/chi/documents/report/bfs_census_2017.pdf Assessed 20 July 2019
  48. Yu YT, Fong HHN, Tse IWL, Fong HHN (2017) International Black-faced Spoonbill census 2016. https://eaaflyway.net/wp-content/uploads/2018/01/bfs_census_2016.pdf Assessed 20 July 2019
  49. Weimerskirch H, Salamolard M, Sarrazin F, Jouventin P (1993) Foraging strategy of wandering albatrosses through the breeding season: a study using satellite telemetry. Auk 110(2):325-342
  50. Zhang L, Shu M, An B, Zhao C, Suo Y, Yang X (2017) Biparental incubation pattern of the black-necked crane on an alpine plateau. J Ornithol 158(3):697-705 https://doi.org/10.1007/s10336-017-1439-6