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研究生:林芸琪
研究生(外文):Yun-Chi Lin
論文名稱:台灣東北沿岸生態系中藍綠細菌(Synechococcus)與色素型鞭毛蟲攝食連鎖之關係
論文名稱(外文):The trophic cascade effect between Synechococcus and pigmented-flagellates in coastal ecosystem in northeast Taiwan
指導教授:蔣國平蔣國平引用關係
指導教授(外文):Kuo-Ping Chiang
學位類別:碩士
校院名稱:國立臺灣海洋大學
系所名稱:環境生物與漁業科學學系
學門:農業科學學門
學類:漁業學類
論文種類:學術論文
論文出版年:2006
畢業學年度:94
語文別:中文
論文頁數:58
中文關鍵詞:藍綠細菌色素型鞭毛蟲攝食連鎖
外文關鍵詞:Synechococcuspigmented-flagellatestrophic cascade
相關次數:
  • 被引用被引用:3
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  • 下載下載:0
  • 收藏至我的研究室書目清單書目收藏:1
本研究自2005年1月至2006年1月以分割過濾法 (<2、<5、<10及<20 μm) 量測藍綠細菌之成長與其被攝食情況,希望藉此瞭解台灣東北沿岸水域藍綠細菌與不同大小鞭毛蟲間的攝食連鎖(trophic cascade) 關係。色素型鞭毛蟲數量與體型均無季節性變化。色素型鞭毛蟲的大小介於3.2 ~ 4.6 μm,終年以<5 μm之小型鞭毛蟲為主。藍綠細菌之被攝食僅發生在暖季晚上,此時藍綠細菌與色素型鞭毛蟲生物量之斜率介於1 : 1與1 : 2之間。當藍綠細菌數量大於5 × 104 cells ml-1,會產生階梯式連鎖攝食反應,但當藍綠細菌略低5 × 104 cells ml-1之閥值時,由於小型鞭毛蟲量不足,所以中、大型鞭毛蟲也會攝食藍綠細菌,因此造成最大淨成長率出現在<2 μm之實驗組,此後較大過濾組依次淨成長率逐漸降低的現象。藍綠細菌成長率介於 -0.005 ~ 0.051 h-1,成長率主要是跟溫度成正相關,但有時也會受到營養鹽之限制。
中文摘要 ................................................................................... Ⅰ
英文摘要 ................................................................................... Ⅱ
目錄 ................................................................................... Ⅳ
表目錄 ................................................................................... Ⅴ
圖目錄 ................................................................................... Ⅵ
前言 ................................................................................... 1
材料與方法 ................................................................................... 4
結果 ................................................................................... 10
討論 ................................................................................... 14
參考文獻 ................................................................................... 21
附表 ................................................................................... 27
附圖 ................................................................................... 31
附錄 ................................................................................... 45
陳焜銘。2001。沿岸及陸棚生態系中纖毛蟲對聚球藻捕食率的時空變
異在生物碳循環中的重要性。博士論文。海洋生物所。國立臺灣海
洋大學。

廖嘉文。2003。臺灣附近海域聚球藻 (Synechococcus ) 生長率受到營養鹽種類限制之研究。碩士論文。海洋生物所。國立臺灣海洋大學。

蔡安益。2005。臺灣東北沿岸海域細菌與藍綠細菌日夜豐度變動之季節變化與微細鞭毛蟲攝食損耗之研究。博士論文。環境生物與漁業科學研究所。國立臺灣海洋大學。

Agawin, N. S. R., C. M. Duarte and S. Agusti (1998). Growth and abundance of Synechococcus sp. in a Mediterranean Bay: seasonality and relationship with temperature. Mar. Ecol. Prog. Ser. 170: 45-53.

Ayukai, T. (1996). Possible limitation of the dilution technique for estimating growth and grazing morality rates of picoplanktonic cyanobacteria in oligotrophic tropical waters. J. Exp. Mar. Biol. Eol. 198: 101-111.

Berninger, U. G., B. J. Finlay and P. Kuuppo-Leinikki (1991). Protozoan control of bacterial abundances in freshwater. Limnol. Oceanogr. 36: 139-147.

Boenigk, J., C. Matz, K. J�卣gens and H. Arndt (2002). Food concentration-dependent regulation of food selectivity of interception-feeding bacterivorous nanoflagellates. Aquat. Microb. Ecol. 27: 195-202.

Callieri, C., S. M. Karjalainen and S. Passoni (2002). Grazing by ciliates and heterotrophic nanoflagellates on picocyanobacteria in Lago Maggiore, Italy. J. Plankton Res. 24: 785-796

Calbet, A. and M. R. Landry (1999). Mesozooplankton influences on the microbial food web: Direct and indirect trophic interactions in the oligotrophic open ocean. Limnol. Oceanogr. 44: 1370-1380.

Calbet, A., M. R. Landry and S. Nunnery (2001). Bacteria-flagellate interactions in the microbial food web of the oligotrophic subtropical North Pacific. Aquat. Microb. Ecol. 23: 283-292.

Caron, D. A., H. G. Dam, P. Kremer, E. J. Lessard, L. P. Madin, T. C. Malone, J. M. Napp, E. R. Peele, M. R. Roman and M. J. Youngbluth (1995). The contribution of microorganisms to particulate carbon and nitrogen in surface waters of the Sargasso Sea near Bermuda. Deep-Sea Res. 42: 943-972.

Caron, D. A., E. R. Peele, E. L. Lim and M. R. Dennett (1999). Picoplankton and nanoplankton and their trophic coupling in surface waters of the Sargasso Sea south of Bermuda. Limnol. Oceanogr. 44: 259-272.

Chang, J., K. H. Lin, K. M. Chen, G. C. Gong and K. P. Chiang (2003). Synechococcus growth and mortality rate in the East China Sea : range of variations and correlation with environmental factors. Deep-Sea Res. 50: 1265-1278.

Chiang, K. P., M. C. Kuo, J. Chang, R. H. Wang and G. C. Gong (2002). Spatial and temporal variation of the Synechococcus population in the East China Sea and its contribution to phytoplankton biomass. Cont. Shelf Res. 22: 3-13.

Christaki, U., A. Giannakourou, F. Van Wambeke and G. Gr�縵ori (2001). Nanoflagellate predation on auto- and heterotrophic picoplankton in the oligotrophic Mediterranean Sea. J. Plankton Res. 23:1297-1310.

Gasol, J. M. (1994). A framework for the assessment of top-down vs bottom-up control of heterotrophic nanoflagellate abundance. Mar. Ecol. Prog. Ser. 113: 291-300.

Gurung, T. B., G. M. Nakanishi and J. Urabe (2000). Seasonal and vertical difference in negative and positive effects of grazers on heterotrophic bacteria in Lake Biwa. Limnol. Oceanogr. 45: 1689-1696.

Iturriaga, R. and J. Marra (1988). Temporal and spatial variability of chroococcoid cyanobacteria Synechococcus spp. Specific growth rates and their contribution to primary production in the Sargasso Sea. Mar. Ecol. Prog. Ser. 44: 175-181.

Kleppel, G. S. (1993). On the diets of calanoid copepods. Mar. Ecol. Prog. Ser. 99: 183-195.

Liu, H., L. Campbell and M. R. Landry (1995). Growth and mortality rates of Prochlorococcus and synechococcus measured with a selective inhibitor technique. Mar. Ecol. Prog. Ser. 116: 283-287.

Murrell, M. C. amd J. T. Hollibaugh (1998). Microzooplankton grazing in northern San Francisci Bay measured by the dilution method. Aquat. Microb. Ecol. 15: 53-63.

Proctor, L. M. and J. A. Fuhrman (1990). Viral mortality of marine bacteria and cyanobacteria. Nature. 343: 60-62.

Putland, J. N. (2000). Microzooplankton herbivory and bacterivory in Newfoundland coastal waters during spring, summer and winter. J. Plankton Res. 22: 253-277.

Sieracki, M. E., L. W. Haas, D. A. Caron, and E. J. Lessard (1987) Effect of fixation on particle retention by microflagellates: Underestimation of grazing rates. Mar. Ecol. Prog. Ser. 38: 251-258.

Sherr, E. B. and B. F. Sherr (1994). Bacterivory and herbivory: key roles of phagotrophic protists in pelagic food webs. Microb. Ecol. 28: 223-235.

Sherr, E. B., B. F. Sherr and L. Fessenden (1997) Heterotrophic protests in the Central Arctic Ocean. Deep-Sea Res. 44: 1665-1682.

Tsai, A. Y., K. P. Chiang, J. Chang and G. C. Gong (2005). Seasonal diel variations of picoplankton and nanoplankton in a subtropical western Pacific coastal ecosystem. Limnol. Oceanogr. 50: 1221-1231.

Umani, S. F. and A. Beran (2003). Seasonal variations in the dynamics of microbial plankton communities: first estimates from experiments in the Gulf of Trieste, Northern Adriatic Sea. Mar. Ecol. Prog. Ser. 247: 1-16.

Waterbury, J. B. and F. W. Valois (1993). Resistance to co-occuring phages enables marine synechococcus communities to coexist with cyanophages abundant in seawater. Appl. Environ. Microbiol. 59: 3393-3399.

Wickham, S. A. (1995). Trophic relations between cyclopoid copepods and ciliated protests complex interactions link the microbial and classic food webs. Limnol. Oceanogr. 40: 1173-1181.

Wikner, J. and ��. Hagstr�卌 (1988). Evidence for a tightly coupled nanoplanktonic predator - prey link regulating the bacterivores in the marine environment. Mar. Ecol. Prog. Ser. 50: 137-145.

Wright, R. T. and R. B.Coffin (1984). Measuring microzooplankton grazing on planktonic marine bacteria by its impact on bacterial production. Microb. Ecol. 10: 137-149.
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