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完整後設資料紀錄
DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.advisor | 戴昌鳳(Chang-Feng Dai) | |
dc.contributor.author | Yi-hsuan Ho | en |
dc.contributor.author | 何宜璇 | zh_TW |
dc.date.accessioned | 2021-05-16T16:24:00Z | - |
dc.date.available | 2013-07-19 | |
dc.date.available | 2021-05-16T16:24:00Z | - |
dc.date.copyright | 2013-07-19 | |
dc.date.issued | 2013 | |
dc.date.submitted | 2013-07-03 | |
dc.identifier.citation | 郭世榮 (1989) 墾丁國家公園海域產雀鯛科魚類攝食生態學之研究。國立臺灣大學碩士論文。141頁
陳玟雅 (1991) 臺灣北海岸變色雀鯛之生殖生態研究。國立臺灣大學碩士論文。60頁 Allen JRM, Wootton RJ (1982a) Effect of food on the growth of carcase, liver and ovary in female Gasterosteus aculeatus L. J Fish Biol 21:537-547 Allen JRM, Wootton RJ (1982b) Age, growth and rate of food-consumption in an upland population of the three-spined stickleback, Gasterosteus-aculeatus L. J Fish Biol 21:95-105 Bonnet X, Bradshaw D, Shine R (1998) Capital versus income breeding: an ectothermic perspective. Oikos 83:333-342 Bunn SE, Davies PM, Winning M (2003) Sources of organic carbon supporting the food web of an arid zone floodplain river. Freshwater Biol 48:619-635 Bunnell DB, Thomas SE, Stein RA (2007) Prey resources before spawning influence gonadal investment of female, but not male, white crappie. J Fish Biol 70(6):1838-1854 Cole KS (2007) Observations on spawning behavior and periodicity in the Bluegreen Chromis (Pomacentridae: Chromis viridis), in Madang Lagoon, Papua New Guinea. Aqua 14:27-34 David R (1983) The Structure Of guppy life histories: the trade-off between growth and reproduction. Ecology 64(4):862-873 Davis AR (1988) Effects of variation in initial settlement on distribution and abundance of Podoclavella moluccensis Sluiter. J Exp Mar Biol Ecol 117:157-167 Doherty PJ (1983) Diel, lunar and seasonal rhythms in the reproduction of two tropical damselfishes: Pomacentrus flavicauda and P. wardi Mar Biol 75:215-224 Dos Santos RN, Amadio S, Ferreira EJG (2010) Patterns of energy allocation to reproduction in three Amazonian fish species. Neotropical Ichthyology 8(1):155-161 Doucett RR, Booth RK, Power G,McKinley RS (1999) Effects of the spawning migration on the nutritional status of anadromous Atlantic salmon (Salmo salar): insights from stable-isotope analysis. Can J Fish Aquat Sci 56(11):2172-2180 Drent RH, Daan S (1980) The prudent parent: energetic adjustments in avian breeding. Ardea 68:225-252 Eggleton MA, Schramm HL (2004) Feeding ecology and energetic relationships with habitat of blue catfish, Ictalurus furcatus, and flathead catfish, Pylodictis olivaris, in the lower Mississippi River, U.S.A. Env Biol Fish 70(2):107-121 Finstad AG, Berg OK, Lohrmann A (2003) Seasonal variation in body composition of Arctic char, Salvelinus alpinus, from an ultraoligotrophic alpine lake. Ecol Freshw Fish 12:228-235 Hobson KA, Atwell L, Wassenaar LI, Yerkes T (1993) Estimating endogenous nutrient allocations to reproduction in Redhead Ducks: a dual isotope approach using delta D and delta C-13 measurements of female and egg tissues. Funct Ecol 18(5):737-745 Hoey J, McCormick MI, Hoey AS (2007) Influence of depth on sex-specific energy allocation patterns in a tropical reef fish. Coral Reefs 26:603-613 Hughes FL (1990) Recruitment limitation, mortality, and population regulation in open systems: a case study. Ecology 71(1):12-20 Hyslop EJ (1980) Stomach contents analysis - a review of methods and their application. J Fish Biol 17(4):411-429 Jardine TD, MacLatchy DL, Fairchild WL, Cunjak RA, Brown SB (2004) Rapid carbon turnover during growth of Atlantic salmon (Salmo salar)s smolts in sea water, and evidence for reduced food consumption by growth-stunts. Hydrobiologia 527(1):63-75 Jardine TD, Gray MA, McWilliam SM, Cunjak RA (2005) Stable isotope variabiltiy in tissues of temperate stream fishes. Trans Am Fish Soc 134:1103-1110 Johnson BM, Martinez PJ, Stockwell JD (2002) Tracking trophic interactions in coldwater reservoirs using naturally occurring stable isotopes. Trans Am Fish Soc 131:1-13 Jonsson N, Jonsson B, Hansen LP (1991) Energetic cost of spawning in male and female Atlantic salmon (Salmo salar L.). J Fish Biol 39: 39-744 doi:10.1111/j.1095-8649.1991.tb04403.x Jorgensen C, Ernande B, Fiksen O, Dieckman U (2006) The logic of skipped spawning in fish. Canadian Journal of Fisheries and Aquat Sci 63:200-211 Junk WJ (1985) Temporary fat storage, an adaptation of some fish species to the river level fluctuations and related environmental changes of the Amazon river. Amazoniana 9:315-351 Logan JM, Jardine TD, Miller TJ, Bunn SE, Cunjak RA, Lutcavage ME (2008) Lipid corrections in carbon and nitrogen stable isotope analyses: comparison of chemical extraction and modelling methods. J Anim Ecol 77:838-846 Macko SA, Estep MLF, Engel MH, Hare PE (1986) Kinetic fractionation of stable nitrogem isotopes during amino-acid transamination. Geochim Cosmochim Ac 50(10):2143-2146 Perga ME, Gerdeaux D (2005) ‘Are fish what they eat’ all year round? Oecologia 144:598-606 Peterson B, Fry B, Deegan L, Hershey A (1993) The trophic significance of epilithic algal production in a fertilized tundra river system. Limnol Oceanogr 38:872-878 Pinnegar JK, Polunin NVC (1999) Differential fractionation of δ13C and δ15N among fish tissues: implications for the study of trophic interactions. Funct Ecol 13:225-231 Potts GW, Wootton RJ (1984) Fish reproduction : strategies and tactics, 410pp Reznick D (1983) The sturcture of guppy life histories - the tradeoff between growth and reproduction. Ecology 64(4):862-873 Rideout RM, Rose GA, Burton MPM (2005) Skipped spawning in female iteroparous fishes. Fish Fish 6:50-72 Rocha MJ, Arukwe A, Kapoor BG (2008) Fish Reproduction. Science Publishers, Enfield, NH, USA, 351pp Roff DA (1992) The Evolution of Life Histories. New York: Chapman & Hall, 535pp Sasaki M, Tachihara K (2001) Reproductive ecology of the Blue-green Damselfish Chromis viridis at Zampa, Okinawa Island, Japan. Biol Mag Okinawa 39:37-47 Shulman MJ, Ogden JC, Ebersole JP, Mcfarland WN, Miller SL, Wolf NG (1983) Priority effects in recruitment of juvenile coral reef fishes. Ecology 64:1508-1513 Stearns SC (1992) The evolution of life histories. Oxford; New York: Oxford University Press, 249pp Syvaranta J, Hamalainen H, Jones RI (2006) Within-lake variability in carbon and nitrogen stable isotope signatures. Freshwater biol 51(6):1090-1102 Townsend CR, Calow P (1981) Physiological ecology. Blackwell Scientific Publications, p. 393 Tytler P, Calow P (1985) Fish Energetics: new perspectives. Sydney, Croom Helm, p.349 Victor BC (1983) Recruitment and population dynamics of a coral reef fish. Science 219:419-420 Waddington K, MacArthur L (2008) Diet quality and muscle tissue location influence consumer-diet discrimination in captive-reared rock lobsters (Panulirus cygnus). Mar Biol 154:569-576 Wyatt ASJ, Waite AM, Humphries S (2010) Variability in isotope discrimination factors in coral reef fishes: implications for diet and food web reconstruction. PLoS ONE 5(10): e13682, 1-10 doi:10.1371/journal.pone.0013682 | |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/6244 | - |
dc.description.abstract | 位於南灣附近的核三廠入水口(21°57'N, 120°45'E)為一小海灣,在此棲息著很大族群的藍綠光鰓雀鯛 (Chromis viridis Cuvier, 1830)。本種雀鯛主要以浮游生物為食,灣內穩定的海流為其帶來食物。這裡的藍綠光鰓雀鯛有週年生殖的現象,為了瞭解在此一環境中,魚類個體在生殖時其體內能量如何分配,乃於2011年1月至2012年2月之間,每個月到此採集藍綠光鰓雀鯛標本,分別測量雌、雄個體之白肉、肝臟及生殖腺組織的C/N值與穩定同位素δ13C、δ15N,以檢視生殖時期魚體內部組織間能量轉換的情形。
結果顯示雌魚生殖腺組織的C/N值與GSI (gonadosomatic index)間呈現正相關,在雄魚則反之。由於組織之δ13C值會受到C/N值所影響,因此做進一步比較前,先經脂質校正,並以δ13C'表示之。 雄魚生殖腺和肝臟δ13C'之間的差值(亦即生殖腺的δ13C'-肝臟的δ13C'),呈現出正負相間的現象,並且其分布與GSI間,未具相關性,顯示雄魚生殖腺中的有機碳或非直接從食物經肝臟轉移過來。雄魚生殖腺與肝臟的δ15N差值大部分為負值,其分布亦不受GSI所影響,顯示有機氮可能是由肝臟傳遞至生殖腺,但不受到生殖腺大小或成熟度所影響。 雌魚生殖腺與肝臟間同位素的δ13C'差值,當GSI≦3時,變化範圍高達3‰;當GSI>3時,負值增加,惟變化範圍變小。造成此現象的原因可能為未發育及排卵後的個體均呈現低GSI,外觀型態及重量相似,但是內部的有機碳來源卻有所不同:未發育的個體有較重的有機碳,且尚未從肝臟轉入新的有機碳,因此其差值為正值;排卵後的個體生殖腺內仍含有未排出的卵,含較輕的有機碳,而此碳源為發育期間直接源自於肝臟,故差值為負。至於GSI>3時負值增加,顯示食物內的有機碳會經肝臟直接輸送至生殖腺。在δ15N方面,雌性個體生殖線與肝臟的差異,以正值居多,表示雌魚的生殖腺在發育的過程中,其蛋白質並非直接源自肝臟,或者肝臟並未提供其新得自於食物的蛋白質。 藍綠光鰓雀鯛因應生殖時所需的能量最終可能多係源自於肝臟,亦即得自於所攝食的食物,惟在雌、雄之間,體內能量的分配方式有所不同,導致此種變化的機制尚未清楚。本魚種在研究地點終年皆出現生殖現象,是否在上述能量分配方式下,較能有效利用環境中的營養來源,達到生殖的目的,則仍有待進一步的探討。 | zh_TW |
dc.description.abstract | A large population of the blue-green damsel (Chromis viridis Cuvier, 1830) inhabits the small embayment encompassing the water inlet of the Third Nuclear Power Plant at Nanwan, southern Taiwan (21°57'N, 120°45'E). This damselfish mainly feeds on zooplankton. Continuous water flow in the embayment brings in its food. The fish spawns yearly round in this area. To study the energy allocation for reproduction in the blue-green damsel in this environment, monthly specimen collections were made during January 2011 and February 2012, and data on the C/N ratio, stable isotopes of δ13C, δ15N in white muscle, liver and gonad were gathered from both sexes for analyses.
The C/N ratio in female’s gonad was positively related with the gonadal somatic index (GSI), while the relationship was negative in the male. Due to that the δ13C tends to be affected by the C/N ratio in the tissue, calibration of the δ13C was made (denoted as δ13C') according to the corresponding C/N value for further comparisons. In the male, both positive and negative values occurred in the difference of δ13C' between gonad and liver (viz., δ13C' in gonad minuses δ13C' in liver) and its distribution seemed not affected by the GSI, showing that the organic carbon in the gonad might not have directly come from the food through the transfer of liver. Meanwhile, negative values occurred in the majority of the difference of δ15N, and the distribution again was not affected by the GSI, showing that the organic nitrogen was transferred from liver to gonad for development and the transfer was not governed by the size or the developmental stage of the gonad. In the female, the difference of δ13C' between gonad and liver showed that: for GSI≦3, both negative and positive values occurred, where they centered in zero but were distributed in the range of about 3‰; for GSI>3, more negative values occurred and distributional range was smaller. This might be due to that: despite that both undeveloped gonad and discharged ovary bore low GSI, their organic carbons might have stemmed from different origins. The undeveloped gonad might bear organic carbons with heavier (hence positive values) δ13C' signatures. These organic carbons were not newly transferred from the liver. By contrast, the discharged gonads contained remains of the developed ovary that bore lighter (hence negative values) signatures because the organic carbons mainly originated from the liver. The latter case also explained sufficiently the situation of GSI>3. In the difference of δ15N, positive values prevailed, indicating either that the organic nitrogen for the ovary development might not come from the liver, or that the liver did not provided the gonad with the nutrients newly obtained from the food. In the blue-green damsel, the energy demanded for reproduction might have eventually come from foods through the transfer of the liver. However, the way of energy allocation seemed to differ between sexes. Mechanisms underlying the difference are yet to know. At the study area, spawning of this damselfish was observed throughout the year. Whether the fish may enhance its reproductive gains with the above way of energy allocation remains to be studied. | en |
dc.description.provenance | Made available in DSpace on 2021-05-16T16:24:00Z (GMT). No. of bitstreams: 1 ntu-102-R99241211-1.pdf: 1655914 bytes, checksum: e9b3a5cbad50c0915e58b18e449dcbc4 (MD5) Previous issue date: 2013 | en |
dc.description.tableofcontents | 誌謝 I
摘要 II Abstract IV 目錄 VI 圖目錄 VIII 表目錄 IX 附錄目錄 X 壹、前言 1 貳、材料與方法 4 2.1研究物種 4 2.2研究時間與地點 4 2.3採集樣本及處理 4 2.4胃內含物分析 5 2.5測量穩定同位素 5 2.6石蠟切片 6 2.7資料分析 7 參、結果 8 3.1胃內含物分析 8 3.2體指數 9 3.3碳/氮比 (C/N ratio) 11 3.4穩定同位素分析 12 3.4.1穩定同位素在組織內的變動 12 3.4.2組織同位素值與體指數之間的關係 14 3.4.3去除脂質影響後的δ13C′ 14 3.4.4同位素在組織間的差異 15 3.5食物源 16 肆、討論 18 4.1 藍綠光鰓雀鯛的生殖期 18 4.2 C/N ratio 18 4.3穩定同位素分析 19 4.3.1同位素在組織內的變動 19 4.3.2同位素在組織間的差異 19 4.4 結論 21 伍、參考文獻 22 陸、圖 26 柒、表 49 附錄 54 | |
dc.language.iso | zh-TW | |
dc.title | 臺灣南部海域藍綠光鰓雀鯛(Chromis viridis)生殖時的能量分配 | zh_TW |
dc.title | Energy allocation in relation with fractionation of stable isotopes δ13C and δ15N in reproduction of Chromis viridis | en |
dc.type | Thesis | |
dc.date.schoolyear | 101-2 | |
dc.description.degree | 碩士 | |
dc.contributor.coadvisor | 詹榮桂(Rong-Quen Jan) | |
dc.contributor.oralexamcommittee | 陳正平,陳正虔 | |
dc.subject.keyword | 雀鯛,生殖,穩定同位素,能量分配, | zh_TW |
dc.subject.keyword | damselfish,reproduction,stable isotope,energy allocation, | en |
dc.relation.page | 62 | |
dc.rights.note | 同意授權(全球公開) | |
dc.date.accepted | 2013-07-03 | |
dc.contributor.author-college | 理學院 | zh_TW |
dc.contributor.author-dept | 海洋研究所 | zh_TW |
顯示於系所單位: | 海洋研究所 |
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