請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/32199完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 陳秀男 | |
| dc.contributor.author | Jeng-Tzyo Shie | en |
| dc.contributor.author | 謝政佐 | zh_TW |
| dc.date.accessioned | 2021-06-13T03:36:21Z | - |
| dc.date.available | 2006-07-29 | |
| dc.date.copyright | 2006-07-29 | |
| dc.date.issued | 2006 | |
| dc.date.submitted | 2006-07-26 | |
| dc.identifier.citation | 中華民國台灣地區漁業統計年報,1998。行政院農業委員會。
中華民國台灣地區漁業統計年報,2004。行政院農業委員會。 江永棉、賴春福,1975。九孔之嗜食性之研究。中國水產,238, 6-7。 朱金錫、 鍾虎雲、 陳弘成和林恆雄, 1990。 台北縣九孔池水質與病害之初步研究. 中國水產 451, 13-17。 林德彥,1996。飼料中添加藻粉對九孔幼貝成長之研究。國立臺灣大學漁業科學研究所,碩士學位論文。 吳清雄,1987,海藻的食用價值。中國水產,417:21-26。 陳巧玲,2005。葡聚多醣體與維他命C對點帶石斑魚的非特異性免疫反應及生理之影響。國立台灣海洋大學水產養殖研究所,碩士學位論文。 陳冠全,2004。舟行藻Navicula sp.及雙眉藻Amphora sp.在不同溫度及光照下之成長及植入此兩種矽藻對九孔附著苗活存之研究。國立台灣海洋大學水產養殖研究所,碩士學位論文。 陳茂松,1980,用龍鬚菜製造洋菜。豐年,30(23):38-40。 莊豐銘,2002,鹽度對台灣鮑魚免疫反應的影響。國立屏東科技大學熱帶農業研究所,碩士學位論文。 曾文陽, 1985。 鮑魚養殖學。養殖世界雜誌社,1-131。 黃正臺,2005。不同免疫激活物對白蝦非特異性免疫反應及生理之影響。國立台灣海洋大學水產養殖研究所,碩士學位論文。 黃貴民,1988。鮑全程經濟養殖。水產出版社。 黃貴民,1998。鮑魚養殖。行政院農業委員會,1-136。 張正芳,2000,多醣類應用於強化草蝦抗弧菌與病毒之研究。國立中山大學海洋生物研究所,博士學位論文。 溫鈺娟,2005,九孔血球型態與鋅鎘對血球免疫相關反應之探討。國立台灣海洋大學水產養殖研究所,碩士學位論文。 楊鴻禧、丁雲源,1986。九孔繁殖與養殖試驗。台灣省水產試驗所試驗報告,40: 195-201。 楊錫鑫,2004。九孔培育池底棲性矽藻之分類培養純化及其應用於九孔幼苗養殖之研究。國立台灣海洋大學水產養殖研究所,碩士學位論文。 楊鴻禧,丁雲源,1986,九孔繁殖與養殖試驗。台南水產試驗所試驗報告,40:195-201。 廖述育,2003。葡聚多醣體與維他命C對白蝦非特異性免疫反應的影響。國立台灣海洋大學水產養殖研究所,碩士學位論文。 Referentce Abbas, A.K., Lichtman, A. H., Pober, J. S., 1994. Cellular and molecular immunology. 2nd. Ed. W. B. Saunders Co., Philadelphia, USA. Adrian, S., Toshio, T., Yasuyuki, K., Osamu, I., 2003. Settling and raising postlarval abalone Haliotis diversicolor supertexta (Lischke) on microparticulate diets embedded in a layer of alginate. Aquaculture Res., 34, 561-567. Adrian, E.S., Toshio, T., Yasuyuki, K., 2004. Testing various substances that have been bound to plastic plates with agar to induce larval settlement and metamorphosis of abalone Haliotis discus discus (Reeve). Aquaculture. 231, 54557. Ainsworth A,J., 1994. A β-glucan inhibitable zymosan receptor on channel catfish neutrophils. Veterinary Immunology and Immunopathology., 41, 141-152. Alabi, A,O., 2000. The use of probiotic techniques for controlling bacterial diseases in marine invertebrate hatcheries. J. Shellfish Res., 19: 650. Allen, R.C., Stjernholm, R.L., Steele, R.H., 1972. Ecidence for the generation of an electronic excitation states in human polymorphonuclear leukocytes and its participation in bactericidal activity. Biochem. Biophys. Res. Commun. 47, 679-684. Anderson, D.P., 1992. Immunostimulants, adjuvants, and vaccine carriers in fish: applications to aquaculture. Ann. Rev. Fish. Dis. 1:281-307. Anderson, R.S., Burreson, E.M., Paynter, K.T., 1995. Defense response of hemocytes withdrawn from Crassostrea virginica with Perkinsus marinus. J. Invert. Pathol. 66, 82-89. Ashida, M,. Ishizaki, Y., Iwahana, H., 1983. Activation of prophenol- oxidase by bacterial cell walls or β-1,3-glucans in plasma of the silkworm Bombyx mori. Biochem. Biophys. Res. Commun. 133, 562-568. Asokan, R., Arumugan, H., Nullainadhan, P., 1997. Activation of prophenoloxidase in the plasma and hemocytes of the marine mussel, Perna viridis Linnaeus. Dev. Comp. Immunol. 21, 1~12. Auffert, M., 1988. Bivalve hemocytes morphoiogy. In ” Disease rpcesses in marine bivalve mollusks “ Am. Fish. Soc. Special Publication 18. ed. By W. S. Fisher. Am. Fish. Soc., Washington. D.C. 169-177. Babior, B.M., Kipnes, R.S., Curnutte, J. T., 1973. The production by leucocytes of superoxide, a potential bactricidal agent. J. Clin. Invest. 52,741-744. Bachère, E., 2003. Anti-infectious immune effectors in marine invertebrates: potential tools for disease control in larviculture. Aquaculture, 227, 427-438. Bachère, E., Mialhe, E., Noël, D., Boulo, V., Morvan, A., Rodriguez, J., 1995. Knowledge and research prospects in marine mollusk and crustacean immunology. Aquaculture. 132, 17-32. Bachère, E., Chagot, D., Grizel, H., 1988. Separation of Crassostrea gigas hemocytes by density gradient centrifugation and counter flow centrifugal elutriarion. Dev. Comp. Immunol. 12, 549-559. Bayne, C.J., 1990. Phagocytosis and non-selfrecognition in invertebrates. Phagocytosis appears to be an ancient line of defense. Bioscience. 40, 723-731. Bang, F.B., 1961. Reaction to the injury in the oyster (Crassostrea virginica). Biol. Bull. 121, 57-68. Bannister, J. V., Bannister, W. H., Rotilio, G., 1987. Aspect of the structure, function and applications of superoxide dismutase. Crit. Rev. Biochem., 22,111. Beauchamp, J., Fridovich, I., 1971. Superoxide dismutase;improved assays and an assay applicable to acrylamide gels. Analytical Biochem. 44, 276-287. Bell, K. L., Smith, V. J., 1993. In vitro superoxide production by hyaline cell of the shore crab Carcinus maenas. Dev. Comp. Immunol. 17, 211-219. Benkova, M., Boroskova, Z., Soltys, J., 1991. Immunostimulance ucinky niketorych latok pri experimentalnej askaridoze prasat (In Czech). Vet. Med. 36: 717-724. Beschin, A., Bilej, M., Hanssens, F., Raymakers, J., Van, Dyck, E., Revets, H., Brys, L., Gomez, J., De, Baetselier, P., Timmermans, M., 1998. Identification and cloning of a glucan and lipopolysaccharide-binding protein from Eisenia foetide earthworm involved in the activation of prophenoloxidase cascade. J. Biol. Chem. 273: 24948-24954. Buddle, B.M., Pulford, H.D., Ralston, M., 1988. Protective effect of glucan against experimentally induced Staphylococcal mastitis in ewse. Vet. Microbiol. 16: 65-76. Campa-Córdrva, A.I., Hernandez-Saavedra, N.Y., De Phillippis,, R., Ascencio, F., 2002. Generation of superoxide anion and SOD activity in haemocytes and muscle of American white shrimp (Litopenaeus vannamei) as a response to β-glucan and sulphated polysaccharide. Fish and Shellfish Immunol. 12, 353-366. Carballal, M.J., López, C., Azevedo, C., Villalba, A., 1997. Enzymes involved in defence function of haemocytes of mussel Mytilus galloprovincialis. J. Invert. Pathol. 70, 96-105. Chang, C.F., Su, M.S., Chen, H.Y., Lo, C.F., Kou, G.H., Liao, I.C., 1999. Effect of dietary β-1,3-glucan on resistance to white spot syndrome virus ( WSSV ) in postlarvae and juvenile Penaeus monodon. Dis. Aquat. Org. 36, 163 – 168. Chang, C.F., Chen, H.Y., Su, M.S., Liao, I.C., 2000. Immunomodulation by dietary β-1,3-glucan in the brooders of the black tiger shrimp Penaeus monodon. Fish and Shellfish Immunol. 10, 505-514. Chen, D., Ainsworth, A.J., 1992. Glucan administration potentiates immune defense mechanisms of channel catfish, Ictalurus punctatus Rafineque. J. Fish Dis. 15, 295-304. Chen, H. C., 1989. Farming the small abalone, Haliotis diversicolor supertexra , in Taiwan. In: Hahn, K.O.(Ed.), Handbook of Culture of Abalone and Other Marine Gastropods. CRC Press, Boca Raton FL, pp.265-283. Chen, J.H., 1996. Hemolymph collection in abalone (Haliotis diversicolor). Acta. Zool. Taiwan. 7, 61-71. Chen, J.H., Yang, H.Y., Peng, S.W., Chen, Y.J., Tsai, K.T., 1996. Characterization of abalone Haliotis diversicolor hemocytes in vitro. Biol. Bull. NTNU. 31(1), 31-38. Chen, H., Mai, K.G., Zhang, W.B., Liufu, Z.G., Xu, W., Tan, B.P., 2005. Effects of dietary pyridoxine on immune responses in abalone, Haliotis discus hannai Ino. Fish and Shellfish Immunol. 19, 241-252. Chen, J. H., and C. J. Bayne. 1995. Bivalve mollusk hemocyte behaviors: characterization of hemocyte aggregation and adhesion and their inhibition in the California mussel (Mytilus californianus). Biol. Bull., 188, 255-266. Chen, L.C., 1990. Abalone culture. In: Chen, L.C., editors. Aquaculture in Taiwan Fishing News Books, Oxford. 210-215. Cheng, T. C., 1975. Functional morphology and biochemistry of molluscan phagocytes. Ann. N.Y. Acad. Sci. 266, 233-300. Cheng, W.T., Liu, C.H., Yeh, S.T., Chen, J.C., 2003. The immune stimulatory effect of sodium alginate on the white shrimp Litopenaeus vannamei and its resistance against Vibrio alginolyticus. Fish and Shellfish Immunol. 17, 41-51. Cheng, W.T., Hsiao, I.S., Hsu, C.H., Chen, J.C., 2004a. Change in water temperature on the immune response of Taiwan abalone Haliotis diversicolor supertexta and its susceptibility to Vibrio parahaemolyticus. Fish and Shellfish Immunol. 17, 235-243. Cheng, W.T., Juang, F.M., Chen, J.C., 2004b. The immune response of Taiwan abalone Haliotis diversicolor supertexta and its susceptibility to Vibrio parahaemolyticus at different salinity levels. Fish and Shellfish Immunol. 16, 295-306. Cheng, W. T., Li, H. C., Chen, J. C., 2004c. Effect of dissolved oxygen on the immune response of Haliotis diversicolor supertexta and its susceptibility to Vibrio parahaemolyticus. Aquaculature 232, 103-115. Chu, F. L., 1988. Humoral defence factors in marine bivalves. American Fisheries Society Special Publication. 18, 178-188. Cushing, J. E., Evans, E.E., Evans, M.L., 1971. Induced bactericidal responses of abalones. J. Invert. Pathol. 17, 446-449. Couso, N., Castro, R., Noya, M., Obach, A., Lamas, J., 2001. Location of superoxide production sites in turbot neutrouphils and gilthead seabream acidophilic granulocytes during phagocytosis of glucan particles. Dev. Comp. Immunol. 25, 607-618. Danielle, J., Natalie, M., Jarrod, W., 2005. Development of the radula and digestive system of juvenile blacklip abalone (Haliotis rubra): Potential factors responsible for variable weaning success on artificial diets. Aquaculture. 250, 341-355. Daume, S., Brand-Gardner, S., Woelkerling, W.J., 1999. Settlement of abalone larvae (Haliotis laevigata Donovan) in response to non-geniculate coralline red algae (Corallinales, Rhodophyta). J. Exp. Mar. Biol. Ecol. 234, 125-143. Daume, S., Huchette, S., Ryan, S., Day, R.W., 2004. Nursery culture of Haliotis rubra: the effect of cultured algae and larval density on settlement and juvenile production. Aquaculture. 236, 221-239. Engstad R,E., Robersen B., 1993. Recongnition of yeast cell wall glucan by Atlantic salmon (salmo salar L) macrophages. Dev. Comp. Immunolgy. 17, 319-330. Erasmus, J.H., Cook, P.A., Coyne, V.E., 1997. The role of bacteria in the digestion of seaweed by the abalone Haliotis midae. Aquaculture. 155, 377-386. Feletti, F., De, Bernardi, di, Valserra, M., Contos, S., Mattaboni, P., Gemogli, R., 1992. Chronic study on a new glucan extracted from Candida albicans in rats. Dug Res. 42, 1363-1367.. Feng, S. Y., 1988. Cellular defense mechanisms of oyster and mussels. In “ Diesease Processes in Marine Nivalve Molluscs “ W. S. Fisher(ed.). American Fisheries society, Benthesda, Maryland, USA., 18, 153-168. Feng, S.Y., Feng, J.S., Burke, C.N., Khairallah, L.H., 1971. Light and electron microscopy of the hemocytes of Crassostrea virginica (Mollusca Pelecypoda). Zeitschrift fur Zellforschung und mik roskopische Anatomie. 120, 225-243. Fisher, W. S., Newell, R. I. E., 1986. Salinity effects on the activity of granular hemocytes of American oysters, Crassostrea virginica. Biol. Bull. Mar. Biol. Lab. Woods. Hole. 170(1) , 122-134. Ford, S. E., 1988. Host parasite interactions in oysters, Crassostrea virginica selected for resistance to Haplosporidium nelsoni (MSX) disease: survival mechanisms against a natural pathogen. American Fisheries Society Special Publications. 18,206-24. Gall, G. L., Bachère, E., Mialhe, E., 1991. Chemiluminescence analysis of the activity of Pecten maximus hemocytes stimulated with zymosan and host-specific Rickettsiales-like organisms. Dis. Aquat. Org. 11, 181-186. Greger, E. A., Drum, A.S., Elston, R.A., 1995. Measurement of oxidative activity in haemocytes of the Pacific razor clam, Siliqua patula, and the oyster, Crassostrea gigas, using lucigenin- and luminal-dependent chemiluminescence. J. Invert. Pathol. 65, 48-60. Grant, J.F., 1981. Abalone culture in Japan: development and current commercial practice. Tasman. Fish. Res. 23, 2-17. Hahn, K.O., 1989. Handbook of Culture of Abalone and Other Marine Gastropods CRC Press, Boca Raton, FL. Ino, T., 1966. Abalone Science and its Propagation in Japan. Transl. Ser.-Fish. Res. Board Can., Ottawa, Ont. 1078 ,209 pp. Itami, T., Asano, M., Tokushige, K., Kubono, K. and Nakagawa, A., 1998. Enhancement of disease resistance of kuruma shrimp, Penaeus japonicus, after oral administration of peptidoglycan derived from Bifidobacterinm thermophilum. Aquaculture, 164, 177-188. Itami T, Takahashi Y, Tsuchihira E, Igusa H, Kondo M., 1994. Enhancement of disease resistance of kurma prawn Panaeus japonicus and increase in phagocytic activity of prawn hemoncytes after oral administration of β -1,3-glucan (Schizophyllan).In: Chou LM, Munro AD, Lam JJ, Chen TW, Cheong LKK,Ding JK, Hooi KK, Khoo DW, Phang VPE, Shim KF, Tan CH (Eds), The Third Asian Fisheries Society, Manila, Philippines, pp. 375-368. Jeney, G., Nemcsok, J., Jeney, Zs., Olah, J., 1992. Acute effect of sublethal ammonia concentrations on common carp (Cyprinus carpio L.). II. Effect of ammonia on blood plasma transaminase (GOT, GPT), GIDH enzyme activity, and ATP value. Aquaculture. 104, 149-156. Jeyasekaran, G., Selvaraj, S., Shakila, R. J. and Jayanth, K., 2003. Putative probiotic marine bacteria for Aquaculture Systems. Fish Farmer, 26, 46-48. Jolles, P., Jolles, J., 1984. What’s new in lysozyme research? Mol. Cell Biochem. 63, 165-189. Jørgensen, J.B., Sharp, G.J.E., Seconmbes, C.J., Robertsen, B., 1993. Effect of a yeast-cell-wall glucan on the bactericidal activity of rainbow trout macrophages. Fish Shellfish Immunol. 3, 267-277. Karunasagar, I., Otta, S.K., Devaraj, T.N., Shubha, G. & Iddya, K. 1999. Immunostimulation of Penaeus monodon through the oral route. Workshop: Shrimp Immunity and Disease Control Thailand. Kawamura, T., Kikuchi, H., 1992. Effects of benthic diatoms on settlement and metamorphosis of abalone larvae. Suisanzoshoku 40, 403-409. Kikuchi, S., 1965. Study of the culture of abalone, Haliotis discus hannai Ino. Papers Presented at the Peking Symposium, Agriculture Science II. Science and Technical Association of People’s Republic of China. Peking, Beijing, China, pp. 861-878. Kopácek, p., Hall, M., Söderhäll, K., 1993. Characterization of a clotting protein isolated from plasma of the freshwater crayfish Pacifastacus leniusculus. Eur. J. Biochem. 213, 591-597. Lacoste, A., Malham, S.K., Gélébart, F., Cueff, A., Poulet, S.A., 2002. Stress-induced immune changes in the oyster Crassostrea gigas. Dev. Comp. Immunol. 26, 1-9. La, Peyre, J.F., Chu, F.-L.E., Meyers, J.M., 1995. Haemocytic and humoral activities of eastern and Pacific oysters following challenge by the protozoan Perkinsus marinus. Fish and Shellfish Immunology 5, 179-90. Liu, P.C., Chen, Y.C., Huang, C.Y., Lee, K.K., 2000.Virulence of Vibrio parahaemolyticus isolated from culture small abalone, Haliotis diversicolor supertexta, with withering syndrome. Lett. Appl. Microbiol. 31, 433-437. Livingstone, D.R., Lemaire, P., Mathews, A., Peter, L., Bucke, D., Law, R.J., 1993. Pro-oxidant antioxidant and 7-ethoxyesonifin-Decthylase activity response in liver of dab, Limanda limanda, exposed to sediment contaminated with hydrocarbons and other chemicals. Mar. Pollut. Bull. 26, 602-606. Luna-González, A., Maeda-Martínez, A.N., Vargas-Albores, F., Ascencio-Valle, F., Robles-Mungaray, M., 2003. Phenoloxidase activity in larval and juvenile homogenates and adult plasma and haemocytes of bivalve molluscs. Fish and Shellfish Immunol. 15, 275-282. Malham, S.K., Lacoste, A., Gèlèbart, F., Cueff, A., Poulet, S.A., 2003. Evidence for a direct link between stress and immunity in the mollusc Haliotis tuberculata. J. Exper. Zool. 295A, 136-144. Matsumoto, T., Osada, M., Osawa, Y., Mori, K., 1997. Gonadal estrogen profile and immunohistochemical localization of steroidogenic enzymes in the oyster and scallop during sexual maturation. Comp. Biochem. Physiol. 118B, 811 – 817. McCord, J.M., 1979. Superoxide dismutase: occurance function and ecolution. Curr. Top.Biol. Med. Res. 3, 1-25. Millar, D.A., Ratcliffe, N.A., 1994. Invertebrates. In: Turner R.J., editor. Immunology: a comparative approach. John Wiley and Sons Ltd, England. 29-68. Monje, H., Viama, M.T., 1998. The effect of cellulose on the growth and cellulolytic activity of abalone Haliotis fulgens when used as an ingredient in formulated diets. J. Shellfish Res., 17,667-671. Mori, K., Murayama, K., Kanno, N., Nakamura, M., Ohira, E., Kato, Y., Nomura, T., 1984. Occurrence and characterization of the Japanese oyster Crassostrea gigas. Tohoku J. Agric. Res. 35, 55-68. Moss, G.A., Tong, L.J., 1992. Effect of stage of larval development on the settlement of the abalone, Haliotis iris. N. Z. J. Mar. Freshw. Res. 26, 69– 73. Moore, M. N., Eble, A. F., 1977. The cytology and cytochemistry of the hemocytes of Mytilus edulis and their responses to experimentally injected carbon particles. J. Invertebr. Pathol. 29, 248-256. Ogino, C., Kato, E., 1964. Studies on the nutrition-II.Protein requirement for growth of abalone, Haliotis discus Reeve, with artificial diets. Bull. Jpn. Soc. Sci. Fish. 30, 523-526. Ogino, C., Ohta, E., 1963. Studies on the nutrition- I.Feeding trials of abalone,Haliotis discus Reeve, with artificial diets.Bull. Jpn. Soc. Sci. Fish. 29, 691-694. Ohno, N., Emori, Y., Yadomate, T., 1990. Reactivity of Limunus ampebocyte lysate towards(1→3)-β-D-glucans. Carbohydra. Res.207, 311-318. Ordás, M.C., Novoa, B., Figueras, A., 2000. Modulation of the chemiluminescence response of Mediterranean(Mytilus galloprovincialis) haemocytes. Fish and Shellfish Immunol. 10, 611-622. Renwrantz, L., Yoshino, T.P., Cheng, T.C., Auld, K.R., 1979. Size determination of hemocytes from the Americian oyster, Crassostrea virginica, and the description of the phagocytosis mechanism. Zool. Physiol. 83, 1-12. Roberts, R., Lapworth, C., 2000. Starvation tolerance of post-larval abalone (Haliotis iris). J. Shellfish Res. 19, 529. Santarem, M., Novoa, B., Figueras, A., 1997. Effect of β-glucan on the non-specific immune response of turbot (Scophthalmus maximus L.). Fish and Shellfish Immunol. 7, 429-437. Sakai, M., 1999. Current research status of fish immunostimulants. Aquaculture. 172: 63-92. Sakata, K., Ina, K., 1985. Digalactosyldiacylglycerols and phosphatidylcholines isolated from a brown alga as effective phagostimulants for a young abalone. Bull. Jpn. Soc. Sci. Fish. 51, 659-665. Seki, T., 1980. An advanced biological engineering system for abalone seed production. International Symposium on Coastal Pacific Marine Life. Western Washington University, Bellingham, pp. 45– 54. Seki, T., Kanno, H., 1981. Induced settlement of Japanese abalone, Haliotis discus hannai, veliger by the mucus trails of the juvenile and adult abalone. Bull. Tohoku Reg. Fish. Res. Lab. 43, 29– 36 (in Japanese with English abstract). Söderhäll, K., Smith, V.J., 1983. Separation of the hemocyte populations of Carcinus maenas and other marine decapods and prophenoloxidase distribution. Dev. Comp. Immunol. 7, 229-239. Sung, H. H., Kou, G. H., and Song, Y. L., 1994. Vibriosis resistance induced by glucan treatment in tiger shrimp (Penaeus mondon). Fish Pathol. 29, 11-17. Sung, H. H., Yang, Y, L., and Song, Y. L. 1996. Microbicidal reaction enhancement in tiger shrimp (Penaeus monodon) via immunostimulants. J.Biol. Crus. 16, 276-285. Sung, H.H., Chang, H.J., Her, C.H., Chang, J.C., Song, Y.L., 1998. Phenoloxidase activity of hemocytes derived form Penaeus monodon and Macrobrachium rosenbergii. J. Invertabr. Pathol. 71:26-33. Song, Y.L., Hsieh, Y.T., 1994. Immunostimulation of tiger shrimp (Penaeus monodon) hemocytes for generation of microbicidal substances: analysis of reactive oxygen species. Dev. Comp. Immunol. 18, 201-209. Song, Y.L., Yu, C.I., Lien, T.W., Huang, C.C., Lin, M.N., 2003. Haemlymph parameters of Pacific white shrimp (Litopenaeus vannamei) infected with Taura syndrome virus. Fish and Shellfish Immunol. 14, 317-331. Stott, A., Takeuchi, T., Koike, Y., Yamakawa, H., Imada, K., 2002. Using microparticulate diets to replace diatoms for feeding post-larval abalone Haliotis discus discus. (Reeve). Fisheries Science 68, 1088-1093. Sritunyalucksana, K., Gangnonngiw, W., Archakunakorn, S., Fegan, D., Flegel, W., 2005. Bacterial clearance rate and a new differential hemocyte staining method to assess immunostimulant activity in shrimp. Dis. Aquat. Org. 63, 89-94. Srimal, S., Dorai, D.T., Somasundaran, M., Bachhawat, B.K., Miyata, T., 1985. A new haemagglutinin from the amoebocytes of the horseshoe crab Carcinoscorpius rotundicauda. Purification and role in cell aggregation. Biochem. J. 230(2), 321-327. Sminia, T. 1981. Gastropods. In”Invertebrate Blood Cells” ed. By N.A. Ratcliffe & A.F. Rowley (eds.), Academic Press, New York, pp.191-232. Sung, H. H., Kou, G. H., and Song, L., 1994. Vibriosis resistance induced by glucan treatment in tiger shrimp (Penaeus monodon). Fish Pathology 29, 11–17. Takatsuki, S., 1934. On the nature and functions of the amoebocytes of Ostrea edulis. Quart. J. Microsc. Sci. 76, 379-428. Tzeng, W. N., 1977. Studies on the growth and rearing environment of the abalone, Haliotis diversicolor supertexta Lischke. China Fish Month. 292, 2-7. Uki, N., Watanabe, T., 1992. Review of nutritional requirements of abalone (Haliotis spp ) and development of more efficient artificial diets. In: Shepherd, S.A., Tegner, M.J., Del Proo, G. (Eds.), Abalone of the word: Biology, Fisheries and Culture. Proceedings of 1st International Symposiom on abalone. Fishing News Book, Blackwell Scientific Publications Ltd, London, pp. 504-517. Unestam, T., Söderhäll, K., 1977. Soluble fragments from fungal cell walls elicit degence reactions in crayfish. Nature 267, 45-46. Vetvicka, V., Sima, P., 2004. β-Glucan in invertebrates. ISJ (1), 60-65. Volety, A.K., Chu, F.E., 1995. Suppression of chemiluminescence of estern oyster(Crassostrea virgenica) hemocytes by the protozoan parasite Perkinsus marinus. Dev. Comp. Immunol. 19, 135-142. Wong, V.L., Burke, J.J.,Allen, R.D., 1991. Isolation and sequence analysis of cDNA that encodes pea manganese superoxide dismutase. Plant Mol. Biol. 17, 1271-1274. Zhang, F., Li, G.Y., 2000. Chemiluminescence of phagocytosis of Haliotis discus hannai hemocytes. J. Fish. Sci. China. 31(4), 386-391. Zhang, F., Li, G.Y., Zhang, P.J., 1999. Study on the generation of reactive oxygen species by hemocytes in Haliotis discus. J. Fish. Sci. China. 6(3), 36-40. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/32199 | - |
| dc.description.abstract | 本研究目的在於探討臺灣鮑 (Haliotis diversicolor supertexta)經 β-glucan 餵食後對其非特異性免疫因子之影響,以及應用β-glucan 及藻酸鈉於臺灣鮑苗附板及活存之研究。
本研究第一部分比較螺旋藻粉、藍綠藻粉、綠藻粉、龍鬚菜粉、石蓴粉及藻酸鈉對臺灣鮑攝食之影響,結果發現藻酸鈉有最佳誘引效果。第二部份,比較臺灣鮑餵食不同添加量的β-glucan各組別,包括未添加的控制組、添加2g/㎏、4g/㎏、8g/㎏、16g/㎏β-glucan及龍鬚菜組等處理組,其非特異性免疫能力之影響;實驗結果發現餵食0、2、4、8、16g/kg β-glucan不會導致臺灣鮑血淋巴HLS (hemolymph lysate supernatant)的轉氨基酵素 GOT (Glutamate oxalacetate transaminase)、GPT (Glutamate oxalacetate transaminase)及SOD(superoxide dismutase) 活性上升,顯示餵食β-glucan 不會對臺灣鮑造成傷害;但對於臺灣鮑THC (Total haemocyte counts)、O2-、PR (phagocytic rate)、PI (phagocytic index) 及血淋巴ROIs 反應等免疫活性均有促進效果;尤其以餵食4g/㎏ β-glucan處理組,在第8 天的O2-的誘發率高達0.563 ± 0.004及PR值 0.199 ± 0.014%,提升效果最為顯著,且與對照組有顯著差異(p<0.05)。顯示餵食添加 β-glucan 可以提升臺灣鮑非特異性免疫防禦能力,且建議飼料添加量為4g/kgβ-glucan。 本研究第三部份,利用agar(1%)當黏著劑,添加藻酸鈉或4g/㎏ β-glucan塗抹於浪板上,觀察鮑苗附板量及活存之影響。實驗發現以agar(1%)+添加藻酸鈉 (24.5%)附板量最高每片浪板219.66±9.07隻且顯著高於對照組(p<0.05);於實驗第15天,又以添加agar (1%)+4g/kg β-glucan 的處理組鮑苗的活存率高達79.36±5.13%且顯著高於對照組(p<0.05)。實驗結果顯示,在浪板上塗抹藻酸鈉的藻膠可提高鮑苗的附板量,以及添加β-glucan的藻膠,可以有效提高鮑苗的活存率。 | zh_TW |
| dc.description.abstract | This purpose of this study is aimed to know the effect of dietary β-glucan on non-specfic immune response in small abalone (Haliotis diversicolor supertexta) and use sodium alginate with β-glucan to observe survival and attachment of small abalone post-larvae.
In experiment 1 to compare agar (1%)+Spirulina powder (24.5%), agar (1%)+blue-green algae powder (24.5%), agar (1%)+Chlorella powder (24.5%), agar (1%)+Gracilaria powder (24.5%), agar (1%)+Ulva powder (24.5%),agar (1%)+Sodium alginate (24.5%),agar (1%),Sodium alginate (24.5%) to induce ingestion agents. The best treatment is Sodium alginate (24.5%). In experiment 2 to compare the control (without β-glucan), 2, 4, 8, 16 g/kg β-glucan and blank (Gracilaria sp.) by observing the THC (total haemocyte counts), O2-, PR (phagocytic rate), PI (phagocytic index), PO (phenoloxidase), GOT (glutamate oxalacetate transaminase), GPT (glutamate pyruvate transaminase), luminol- and lucigenin- enhanced chemiluminescence. The result showed that dietary β-glucan can enhance THC, O2-, PR, PI, luminol- and lucigenin- enhanced chemiluminescence. In all treatments showed that no significant differences in SOD, GOT and GPT. That means β-glucan can enhance non-specfic immune responses in small abalone. The treatment in 4g/kg β-glucan is the best effect on O2- activity(0.563±0.004) and PR(0.199±0.014%). In experiment 3 to compare sodium alginate and 4g/kg β-glucan by adding into agar (1%) to observe attachment number and survival. The result showed that sodium alginate can increase post-larvae of small abalone attachment number(219.66±9.07). This treatment of 4g/kg β-glucan add into agar (1%) can enhance post-larvae of small abalone survival on plate during 15 days. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-13T03:36:21Z (GMT). No. of bitstreams: 1 ntu-95-R93b45001-1.pdf: 1570605 bytes, checksum: 59ac9b6adff3768999bad1cc149659a4 (MD5) Previous issue date: 2006 | en |
| dc.description.tableofcontents | 謝辭------------------------------------------------------------------------------i
中文摘要-----------------------------------------------------------------------iii 英文摘要------------------------------------------------------------------------v 目錄----------------------------------------------------------------------------vii 圖目錄-------------------------------------------------------------------------viii 表目錄-------------------------------------------------------------------------ix 前言------------------------------------------------------------------------------1 文獻整理------------------------------------------------------------------------4 材料與方法--------------------------------------------------------------------19 結果-----------------------------------------------------------------------------32 討論-----------------------------------------------------------------------------49 結論-----------------------------------------------------------------------------60 參考文獻-----------------------------------------------------------------------61 附錄-----------------------------------------------------------------------------92 | |
| dc.language.iso | zh-TW | |
| dc.subject | 藻酸鈉 | zh_TW |
| dc.subject | 台灣鮑 | zh_TW |
| dc.subject | 非特異性免疫反應 | zh_TW |
| dc.subject | 活存 | zh_TW |
| dc.subject | 葡聚多醣 | zh_TW |
| dc.subject | sodium alginate | en |
| dc.subject | β-glucan | en |
| dc.subject | Non-specific Immune Response | en |
| dc.subject | Survival | en |
| dc.subject | Abalone | en |
| dc.subject | Haliotis diversicolor supertexta | en |
| dc.title | 葡聚多醣對台灣鮑非特異性免疫反應和活存之影響 | zh_TW |
| dc.title | The Effects of Dietary β-glucan on Non-specific Immune Response and Survival of Small Abalone (Haliotis diversicolor supertexta) | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 94-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.coadvisor | 冉繁華 | |
| dc.contributor.oralexamcommittee | 沈士新,王俊順 | |
| dc.subject.keyword | 葡聚多醣,台灣鮑,非特異性免疫反應,活存,藻酸鈉, | zh_TW |
| dc.subject.keyword | β-glucan,Non-specific Immune Response,Survival,Abalone,Haliotis diversicolor supertexta,sodium alginate, | en |
| dc.relation.page | 93 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2006-07-27 | |
| dc.contributor.author-college | 生命科學院 | zh_TW |
| dc.contributor.author-dept | 漁業科學研究所 | zh_TW |
| 顯示於系所單位: | 漁業科學研究所 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-95-1.pdf 未授權公開取用 | 1.53 MB | Adobe PDF |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
