Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 生物資源暨農學院
  3. 食品科技研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/42133
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor蔣丙煌(Been-Huang Chiang)
dc.contributor.authorYi-Jie Tsaen
dc.contributor.author蔡依潔zh_TW
dc.date.accessioned2021-06-15T00:48:33Z-
dc.date.available2013-09-02
dc.date.copyright2008-09-02
dc.date.issued2008
dc.date.submitted2008-08-21
dc.identifier.citation三宅義章。1982。魚類加工殘渣酵素分解液發酵處理。日水誌。26(6):366-371。
行政院農業委員會漁業署。2007。漁業年報。臺北,臺灣。
江晃榮,林玉媛。1998。生物科技的奇蹟-甲殼素的強效。世茂出版社。臺北,臺灣。
李宜玲。2004。利用Aeromonas caviae DYU-BT4之幾丁質分解酵素水解幾丁質生產N-乙醯幾丁寡醣。大葉大學生物產業科技研究所碩士論文。彰化,臺灣。
林泓廷。2000。利用纖維素酶製備幾丁寡醣及其免疫功能評估。國立臺灣海洋大學食品科學研究所碩士論文。基隆,臺灣。
林咨吟。2003。Bacillus subtilis W-118所生產幾丁質酶之研究。大葉大學食品工程研究所碩士論文。彰化,臺灣。
洪啟章。1994。Bacillus cereus NTU-FC-4菌株之幾丁質酶及幾丁聚醣酶之研究。臺灣大學農業化學所碩士論文。臺北,臺灣。
莊建隆、李孟芳、鄭建雄。1985。臺灣五種養殖蝦的消化酵素活性比較。臺灣水產學會刊。12:43-53。
淺川明彥、山口勝己、鴻巢章二。1981。呈味成分。日食工誌。28(11):594-599。
陳幸臣、許嘉珍。1997。以微生物分解蝦殼製取幾丁質與其部分去乙醯化。中國農業化學會誌。35(122):342-353。
陳幸臣、薛毓茗、羅淑華。1983。以Bacillus sp. L12液化蝦頭製造醬油及其食品安全接受性之研究。臺灣水產學會刊。10:55-63。
張百根。1988。水解草蝦廢棄物試製蝦醬可行性之探討。國立臺灣大學農業化學研究所碩士論文。臺北,臺灣。
黃安德。1998。利用部分純化之Amycolatopsis orientalis細胞外N-乙醯幾丁葡萄糖胺酶製備N-乙醯幾丁寡醣。國立海洋大學食品科學系碩士論文。基隆,臺灣。
黃登福、鄭森雄。1985。以蝦類廢棄物製造蝦溶漿和蝦粉養殖淡水大蝦之效果。臺灣水產學會刊。12:74-81。
蔡慧君。1996。蝦廢棄物蛋白質水解物及其有用成分之探討。國立臺灣海洋大學水產食品科學研究所碩士論文。基隆,臺灣。
蔡國珍、吳冠政、詹淑玲。2002。幾丁寡醣之抗菌及免疫活性。幾丁質幾丁聚醣研討會論文輯:43-45。中華幾丁質幾丁聚醣學會。基隆,臺灣。
蕭瑞昌。1997。利用水溶液性幾丁聚醣以薄膜超過濾法去除微量之金屬離子。元智工學院化學工程研究所碩士論文。桃園,臺灣。
Agullo E, Rodriguez MS, Ramos V, Albertengo L. 2003. Present and future role of chitin and chitosan in food. Macromol Biosci 3(10):521-530.
Aiba SI. 1992. Studies on chitosan: 4. Lysozymic hydrolysis of partially N-acetylated chitosans. Int J Biol Macromol 14(4):225-228.
Aiba S, Muraka E. 1998. Preperation of higher N-acetylchitooligosaccharides in high yields. In Advances in Chitin Science. Chen, R.H. and Chen, H.C. (Ed.) 89-96.
Alfonso C, Nuero OM, Santamaria F, Reyes F. 1995. Purification of a heat-stable chitin deacetylase from Aspergillus nidulans and it role in cell wall degradation. Curr Microbiol 30(1):49-54.
Allan GG, Peyron M. 1995. Molecular weight manipulation of chitosan. I: Kinetics of depolymerization by nitrous acid. Carbohydr Res 277(2):257-272.
Austin PR. 1988. Chitin solutions and purification of chitin. Methods Enzymol 161: 403-407.
Babu CM, Chakrabarti R, Sambasivarao KRS. 2008. Enzymatic isolation of carotenoid-protein complex from shrimp head waste and its use as a source of carotenoids. LWT 41(2):227-235.
Boller T, Gehri A, Mauch F, Vogeli U. 1983. Chitinase in bean leaves: induction by ethylene, purification, properties and possible function. Planta 157(1):22-31.
Brine CJ, Austin PR. 1981 Chitin variability with species and method of preparation. Comp Biochem Physiol 69(2):283-286.
Capon B, Foster RL. 1970. The preparation of chitin oligosaccharides. J Chem Soc 1654-1655.
Chang WT, Chen YC, Jao CL. 2007. Antifungal activity and enhancement of plant growth by Bacillus cereus grown on shellfish chitin wastes. Bioresour Technol 98(6):1224-1230.
Charoenvuttitham P, Shi J, Mittal GS. 2006. Chitin extraction from black tiger shrimp (Penaeus monodon) waste using organic acids. Sep Sci Technol 41(6):1135-1153.
Chen HC, Ho WL, Moody MW, Jiang SJ. 1992. Modification of Cellulomonas flavigena NTOU 1 characteristics for the production of shrimp hydrolysates. J Food Sci 57(2): 271-276.
Cho YW, Jang J, Park CR, Ko SW. 2000. Preparation and solubility in acid and water of partially deacetylated chitins. Biomacromolecules 1(4):609-614.
Cobos MA, Garcia LE, Gonzalez SS, Barcena JR, Hernandez DS, Perez-Sato M. 2002. The effect of shrimp shell waste on ruminal bacteria and performance of lambs. Anim Feed Sci Technol 95(3-4):179-187.
Collinge DB, Kragh KM, Mikkslesen JD, Nielsen KK, Rasmussen U, Vad K. 1993. Plant chitinase. Plant J 3(1):31-40.
Cira LA, Huerta S, Hall GM, Shirai K. 2002. Pilot scale lactic acid fermentation of shrimp wastes for chitin recovery. Process Biochem 37(12):1359-1366.
Deshpande MV. 1986. Enzymatic degradation of chitin and its biological application. J Sci Ind Res 45:273-277.
Di Colo G, Zambito Y, Burgalassi S, Serafini A, Saettone MF. 2002. Effect of chitosan on in vitro release and ocular delivery of ofloxacin from erodible inserts based on poly(ethylene oxide). Int J Pharm 248(1):115-122.
Domard A, Cartier N. 1989. Glucosamine oligomers: 1. Preparation and characterization. Int J Biol Macromol 11(5):297-302.
Duarte ML, Ferreira MC, Marvao MR, Rocha J. 2002. An optimised method to determine the degree of acetylation of chitin and chitosan by FTIR spectroscopy. Int J Biol Macromol 31(1-3):1-8.
Esaiassen M, Myrnes B, Olsen RL. 1996. Isolation and substrate specificities of five chitinases from the hepatopancreas of northern shrimp, Pandalus borealis. Comp Biochem Physiol 113(4):717-723.
Feng F, Liu Y, Hu K. 2004. Influence of alkali-freezing treatment on the solid state structure of chitin. Carbohydr Res 339(13):2321-2324.
Gildberg A, Batista I, Strom E. 1989. Preparation characterization of peptones obtained by a two-step enzymatic hydrolysis of whole fish. Biotehnol Appl Biochem 11(4):413-423.
Gotoh T, Matsushima K, Kikuchi KI. 2004. Preparation of alginate-chitosan hybrid gel beads and adsorption of divalent metal ions. Chemosphere 55(1):135-140.
Hackman RH. 1965. Studies on chitin. VI. The nature of α-and β-chitin. Bio Sci 18(4):935-946.
Hasegawa M, Yagi K, Iwakawa S, Hirai M. 2001. Chitosn induces apoptosis via caspase-3 activation in bladder tumor cells. Jpn J Cancer Res 92(4):459-466.
Hasegawa M, Isogi A, Onabe F. 1993. Preparation of low molecular weight chitosan using phosphoric acid. Carbohydr Polym 20(4):279-283.
Helander IM, Nurmiaho-Lassila EL, Ahvensinen R, Rhoades J, Roller S. 2001. Chitosan disrupts the barrier properties of the outer membrane of Gram-negative bacteria. Int J Food Microbiol 71(2-3):235-244.
Henrissat B, Bairoch A. 1993. New families in classification of glycosyl hydrolases based on amino acid sequence similarities. Biochem J 293(Pt3):781-788.
Imoto T, Yagishita K. 1971. A simple activity measurement of lysozyme. Agric Biol Chem 35(7):1154-1156.
Inui H, Tsujkubo M, Hirano S. 1995. Low molecular weight chitosan stimulation of mitogenic response to platelet-derived growth factor in vascular smooth muscle cells. Biosci Biotechnol Biochem 59(11):2111-2114.
Islam MS, Khan S, Tanaka M. 2004. Waste loading in shrimp and fish processing effluents: potential source of hazards to the coastal and nearshore environments. Mar Pollut Bull 49(1-2):103-110.
Itoh MI, Izumi SI, Uemura M, Baba N, Suyama K, Kuga Y, Mizuno A, Nakane PK, Koji T. 2000. Prevention of death of axotomized hypoglossal neurons and promotion of regeneration by chitin grafting. Cell Mol Neurobiol 20(5):529-540.
Jeon TI, Hwang SG, Park NG, Jung YR. 2003. Antioxidative effect of chitosan on chronic carbon tetrachloride induced hepatic injury. Toxicology 187(1):67-73.
Jeon YJ, Kim SK. 2000. Continuous production of chitooligosaccharides using a dual reactor system. Process Biochem 35(10):623-632.
Jeon YJ, Kamil JYVA, Shahidi F. 2002. Chitosan as an edible invisible film for quality preservation of herring and Atlantic cod. J Agric Chem 50(18):5167-5178.
Jeon YJ, Kim SK. 1998. Bioactivities of chitosan oligosaccharides and their derivatives. In: Advances in Chitin Science. (RH Chen and HC Chen. ed) Vol. 3, p.328-333. Rita Advertising Co, ROC.
Jeon YJ, Shahidi F, Kim SK. 2000. Preparation of chitin and chitosan oligomers and their applications in physiological functional foods. Food Rev. Int 16(2):159-176.
Jeuniaux C. 1966. Chitinases. Methods Enzymol 8:644-650.
Johnson EA, Villa TG, Lewis MJ, Phaff HJ. 1979. Lysis of the cell wall of yeast Phaffia rhodozyme by lytic complex from Bacillus circulans WL-12. J Appl Biochem 1:273-282.
Jung WJ, Kuk JH, Kim KY, Park RD. 2005. Demineralization of red crab shell waste by lactic acid fermentation. Appl Microbiol Biotechno 67(6):851-854.
Jung WJ, Souleimanov A, Park RD, Smith DL. 2007. Enzymatic production of N-acetyl chitooligosaccharides by crude enzyme derived from Paenibacillus illioisensis KJA-424. Carbohydr Polym 67(2):256-259.
Kafetzopoulos D, Martinou A, Bouriotis V. 1993. Biocoversion of chitin to chitosan: purification and characterization og chitin deacetylase from Mucor rouxii. Proc Natl Acad Sci U S A 90(7):2564-2568.
Kamil JYVA, Jeon YJ, Shahidi F. 2002. Antioxidation activity of chitosan of different viscosity in cooked comminuted flesh of herring (clupea harengus). Food Chem 79(1):69-77.
Kanatt SR, Chander R, Sharma A. 2008. Chitosan and mint mixture: A new preservative for meat and meat products. Food Chem 107(2):845-852.
Kartal SN, Imamura Y. 2005. Removal of copper, chromium, and arsenic from CCA-treated wood onto chitin and chitosan. Bioresour Technol 96(3):389-392.
Kawasumi T, Kiuchi N, Futatsugi Y, Ohba K, Yanagi SO. 1987. High yield preparation of Lentinus edodes (”Shiitake”) protoplasts with regeneration capacity and mating type stability. Agric Biol Chem 51(6):1649-1656.
Kelkar HS, Shankar V, Deshpande MV. 1990. Rapid isolation and regeneration of Sclerotium rolfsii protoplasts and their potential application for starch hydrolysis. Enzyme Microb Technol 12(7):510-514.
Kendra DF, Hadwiger LA. 1984. Characterization of the smallest chitosan oligomer that is maximally antifungal to Fusarium solani and elicits pisatin formation in Pisum sativum. Exp Mycol 8(3):276-281.
Khan W, Prithiviraj B, Smith DL. 2003. Chitosan and chitin oligomers increase phenylalanine ammonia-lyase and tyrosine ammonia-lyase activities in soybean leaves. J Plant Physiol 160(8):859-863.
Khor E, Lim LY. 2003. Implantable applications of chitin and chitosan. Biomaterials 24(13):2339-2349.
Knorr D. 1984. Use of chitinous polymer in food-A challenge for food research and development. Food Technol 38(1):85-97.
Knorr D, Klein J. 1986. Production and conversion of chitosan with cultures of Mucor rouxii or Phycomyces blakesleeanus. Biotechnol Lett 8(10):691-694.
Kobayashi M, Watanabe T, Suzuki S, Suzukim M. 1990. Effect of N-acetylchitohexaose against Candida albicans infection of tumor-bearing mice. Microbiol Immuol 34(5):413-426.
Koga D, Jilka J, Kramer KJ. 1983. Insert endochitinase : glucoproteins from moulting fluid, integument and pupal haemolymph of Manduca sexta L. Insect Biochem 13(3):295-305.
Koga D, Mizuki K, Ide A, Kono M, Matsui T, Shimizu C. 1990. Kinetics of a chitinase from a prawn, Penaeus japonicus. Agric Biol Chem 54(1):2505-2512.
Koga D, Sueshige N, Orkono K, Utsumi T, Tanaka S, Yamada Y, Ide A. 1988. Efficiency of chitinolytic enzyme in the formation of Tricoderma matsutake protoplasts. Agric Biol Chem 52(8):2091-2093.
Koga D, Sueshige N, Utsumi T, Ide A. 1989. Kinetics of chitinase fromyam, Dioscorea oppsita thumb. Agric Biol Chem 53(12):3121-3126.
Konosu S, Yamaguchi K. 1982. The flavor component in fish and shellfish. In: Chemistry and Biochemistry of Marine Food Products. (Roy EM, Gerge JF, Chieko EH, Donn RW. ed.), The AVI Publishing Company Inc. p.367-395.
Kumar MNVR. 2000. A review of chitin and chitosan application. React Funct Polym 46(1):1-27.
Kurita K. 2001. Controlled functionalization of the polysaccharide chitin. Prog Polym Sci 26(9):1921-1971.
Kurita K, Kaji Y, Mori T, Nishiyama Y. 2000. Enzymatic degradation of β-chitin: Susceptibility and the influence of deacetylation. Carbohydr Polym 42(1):19-21.
Lavertu M, Xia Z, Serrqei AN, Berrada M, Rodrigues A, Wang D, Buschmann MD, Gupta A. 2003. A validated 1H NMR method for the determination of the degree of deacatylation of chitosan. J Pharm Biomed Anal 32(6):1149-1158.
Liang TW, Chen YJ, Yen YH, Wang SL. 2007. The antitumor activity of the hydrolysates of chitinous materials hydrolyzed by crude enzyme from Bacillus amyloliquefaciens V656. Process Biochem 42(4):527-534.
Lien TS, Too JR, Wu ST, Yu ST. 2005. Production of N-acetylchitooligosaccharides by Aeromonas sp. DYU-TOO 7. J Food Biochem 29(4):422-439.
Lowry OH, Rosbrough NJ, Farr AL, Randall RJ. 1951. Protein measurement with the folin phenol reagent. J Biol Chem 193(1):265-275.
Mabuchi N, Hashizume I, Araki Y. 2000. Characterization of chitinase excreted by Bacillus cereus CH. Can J Microbiol 46(4):370-375.
Methacanon P, Prasitsilp M, Rothsree T, Pattaraarchachai J. 2003. Heterogeneous N-deacetylation of squid chitin in alkaline solution. Carbohydr Polym 52(2):119-123.
Mikkelsen A, Engelsen SB, Hansen HCB, Larsen O, Skibsted LH. 1997. Calcium carbonate crystallization in the α-chitin matrix of the shell of pink shrimp, pandalus borealis, during frozen storage. J Cryst Growth 177(1-2):125-134.
Minagawa T, Okamura Y, Shigemasa Y, Minami S, Okamoto Y. 2007. Effects of molecular weight and deacetylation degree of chitin chitosan on wound healing. Carbohydr Polym 67(4):640-644.
Mink R, Blackwell J. 1978. The structure of α-chitin. J Mol Biol 120(2):167-170.
Monaghan RL, Eveleigh DE, Tewari RP, Reese ET. 1973. Chitosanase, a novel enzyme. Nat New Biol 245(142), 78-80.
Murao S, Kawada T, Itoh H, Oyama H, Shin T. 1992. Purification and characterization of a novel type of chitinase from Vibrio alginolyticus TK-22. Biosci Biotechnol Biochem 56(2):368-369.
Muzzarelli RA. Chitin. Pergamon Press, Oxford, 1977.
Muzzarelli RA. 1998. Colorimetric determination of chitosan. Anal Biochem 260(2):255-257.
Muzzarelli RA, Lough C, Emanuelli M. 1987. The molecular weight of chitosans studied by laser light-scattering. Carbohydr Res 164(1):433-442.
Nanjo F, Ishikawa M, Katsumi R, Sakai K. 1989. Purification, properties and transglycosylation reation of β-N-acetylhexosaminidase from Nocardia orientalis. Agric Biol Chem 54(4):899-906.
Ng C, Hein S, Chandrkrachang S, Stenens WF. 2006. Evalution of an improved acid hydrolysis-HPLC assay for the acetyl content in chitin and chitosan. J Biomed Mater Res B Appl Biomater 76(1):155-160.
No HK, Meyers SP. 1996. Chitin/chitosan properties related to source and preparation methodology. Presented at 2nd International Symposium on Chitin Enzymology. Senigallia, Italy.
No HK, NY Park, SH Lee, Meyers SP. 2002. Antibacterial activity of chitosans and chitosan oligomers with different molecular weights. Int J Food Microbiol 74(1-2):65-72.
Oh KT, Kim YJ, Nguyen VN, Jung WJ, Park RD. 2007. Demineralization of crab shell waste by Pseudomonas aeruginosa F722. Process Biochem 42(7):1069-1074.
Ohtakara A, Matsunaga H, Mitsutomi M. 1990. Action pattern of Streptomyces grisous chitinase on partialy N-acetylated chitosan. Agric Biol Chem 54(12):3191-3199.
Ordentlich A, Elad Y, Chet I. 1988. The role of chitinase of Serratia marcescens in biocontrol of Sclerotium rolfsii. Phytopathology 78(1):84-88.
Park SM, Kim DH, Truong NH, Itoh Y. 2002. Heterologous expression and characterization of class III chitinases from rice (Oryza sativa L.). Enzyme Microb Technol 30(6):697-702.
Percot A, Viton C, Domard A. 2003. Optimization from shrimp shells. Biomacromolecules. 4(1):12-18.
Powning RF, Irzykiewicz H. 1967. Separation of chitin oligosaccharides by thin-layer chromatography. J Chromatogr 29(1):115-119.
Qin C, Du Y, Xiao L, Li Z, Gao X. 2002. Enzymic preparation of water-soluble chitosan and their antitumor activity. Int J Biol Macromol 31(1-3):111-117.
Qin C, Li H, Xiao Q, Liu Y, Zhu J, Du Y. 2006. Water-solubility of chitosan and its antimicrobial activity. Carbohydr Polym 63(3):367-374.
Rathke TD, Hudson SM. 1993. Determination of the degree of N-deacetylation in chitin and chitosan as well as their monomer sugar ratios by near infrared spectroscopy. J Polym Sci [A1] 31(3):749-753.
Reguera G, Leschine SB. 2001. Chitin degradation by cellulolytic anaerobes and facultative aerobes from soils and sediments. FEMS Microbiol Lett 204(2):367-374.
Robbins PW, Albright C, Benfield B. 1988. Cloning and expression of a streptomyces plicatus chitinase (chitinase-63) in Escherichia coli. J Biol Chem 263(1):443-447.
Roberts W, Selitrennikoff CP. 1988. Plant and bacterial chitinases differ in antifungal activity. J Gen Microbiol 134(1):169-176.
Rotman S, Sandovsky-Losica H, Sionov E, Esther S. 2003. Effect of a chitin derivative in combination with cleaning and prevention solutions for contact lenses on adherence of fungi. Mycoses 46(3-4):90-95.
Roy I, Sardar M, Gupa MN. 2003. Hydrolysis of chitin by Pectinex. Enzyme Microb Technol 32(5):582-588.
Rupley JA. 1964. The hydrolysis of chitin by concentrated hydrochloric acid and the preparation of low-molecular-weight substrates for lysozyme. Biochim Biophys Acta 83:245-255.
Sachindra NM, Bhaskar N, Siddegowda GS, Sathisha AD, Suresh PV. 2007. Recovery of carotenoids from ensilaged shrimp waste. Bioresour Technol 98(8):1642-1646.
Sachindra NM, Mahendrakar NS. 2005. Process optimization for extraction of carotenoids from shrimp waste with vegetable oils. Bioresour Technol 96(10):1195-1200.
Sashiwaa H, Fujishimaa S, Yamanoa N, Kawasakia N, Nakayamaa A, Murakia E, Sukwattanasinittb M, Pichyangkurac R, Aibaa SI. 2003. Enzymatic production of N-acetyl-D-glucosamine from chitin. Degradation study of N-acetylchitooligosaccharide and the effect of mixing of crude enzymes. Carbohydr Polym 51(4):391-395.
Seino H, Tsukuda K, Shimasue Y. 1991. Purification and action pattern of a chitosanase from Bacillus sp. PI-7S. Argic Biol Chem 55:2421-2423.
Shahidi F, Arachchi JKV, Jeon YJ. 1999. Food applications of chitin and chitosans. Trends Food Sci Technol 10(2):37-51.
Shaikh SA, Deshpande MV. 1993. Chitinolytic enzymes: their contribution to basic and applied research. World J Microbiol Biotechnol 9(4):468-475.
Shapira R, Ordentlich A, Chet I, Oppenhiem AB. 1989. Control of plant disease by chitinase expressed from cloned DNA in Escherichia coli. Phytopathology 79(11):1246-1249.
Shimahara K, Takiguchi Y, Kobayashi T, Uda K, Sannan T. 1989. Screning of Mucoraceae strainsuitable for chitosan production. In: Chitin and Chitosan: Sources Chemistry, Biochemistry Physical Properties and Application. (G Skjak-Braek, T Anthosen, P Sandford. ed.) pp.171-177. Elsevier Applied Science, London.
Simpson BK, Haard NF. 1985. The use of proteolytic enzyme to extract carotenoproteins from shrimp waste. J Appl Biochem 7(3):212-222.
Skujins JJ, Potgieter HJ, Alexander M. 1965. Dissolution of fungal cell walls by Streptomyces chitinase and β-1,3-glucanase. Arch Biochem Biophys 111(2):358-364.
Stanley WL, Watters GG, Chan B, Mercer JM. 1975. Lactase and enzyme bound to chitin with glutaraldehyde. Biotechnol Bioeng 17(3):315-326.
Sukwattanasinitt M, Zhau H, Sashiwa H, Aiba S. 2002. Utilization of commercial non-chitinase enzymes from fungi for preparation of 2-acetamido-2-deoxy-D-glucose from β-chitin. Carbohydr Res 337(2):133-137.
Suzuki K, Okamoto Y, Morimoto M, Sashiwa H, Saimoto H, Tanioka SI, Shigemasa Y, Minami S. 2000. Influence of physico-chemical properties of chitin and chitosan on complement activation. Carbohydr Polym 42(3):307-310.
Suzuki K, Suzuki S, Tokoro A, Okawa Y, Suzuki M, Midami T. 1986b. Antitumor effect of hexa-N-acetylchitohexaose and chitohexaose. Carbohydr Res 151(15):403-408.
Suzuki K, Tokoro A, Okawa Y, Suzuki S, Suzuki M. 1986a. Effect of N-acetylchito-oligosaccharides on activation of phagocytes. Microbiol Immunol 30(8):777-787.
Suzuki S, Tokoro A, Suzuki K, Suzuki M. 1985. Enhancing effects of N-acetyl-chito-oligosaccharides on the active oxygen-generating and microbicidal activities of peritoneal exudates cells in mice. Chem Pharm Bull 33(2):886-888.
Synowiecki J, Al-Khateeb NAAQ. 2000. The recovery of protein hydrolysate during enzymatic isolation of chitin from shrimp Crangon crangon processing discards. Food Chem 68(2):147-152.
Teng WL, Khor E, Tan TK, Lin LY, Tan SC. 2001. Concurrent production of chitin from shrimp shells and fungi. Carbohydr Res 332(3):305-316.
Terakawa T, Takaya N, Horiuchi H, Koike M, Takagi M. 1997. A fungal chitinase gene from Rhizopus oligosporus confers antifungal activity in transgenic tobacco. Plant Cell Rep 16(7):439-443.
Tokoro A, Kobayashi M, Tatewaki N. 1989. Protective effect of N-acetyl chitohexaose on Listeria monocytogenes infection in mice. Microbiol Immunol 33(4):357-368.
Tokoro A, Tatewaki N, Suzuki K, Mikami T, Suzuki S, Suzuki M. 1988. Growth-inhibitory effect of hexa-N-acetylchitohexaose and chitohexaose against Meth-A solid tumor. Chem Pharm Bull 36(2):784-790.
Tsai GJ, Su WH. 1999. Antibacterial activity of shrimp chitosan against Escherichia coli. J Food Prot 62(3):239-243.
Tsai GJ, Wu ZY, Su WH. 2000. Antibacterial activity of a chitooligosaccharide mixture prepared by cellulase digestion of shrimp chitosan and its application to milk preservation. J Food Prot 63(6):747-752.
Tsai GJ, Su WH, Chen HC, Pan CL. 2002. Antimicrobial activity of shrimp chitin and chitosan from different treatments and aoolications of fish preservation. Fish Sci 68(1):170-177.
Tsigos I, Martinou A, Kafetzopoulos D, Bouriotis V. 2000. Chitin deacetylases: new, versatile tools in biotechnology. Trends Biotechnol 18(7):305-312.
Tsukada K, Mataumoto T, Aizawa K, Tokoro A, Naruse RS, Suzuki S, Suzuki M. 1990. Antimetastatic and growth-inhibitory effects of N-acetylchitohexaose in mice bearing lewis lung carcinoma. Jpn J Cancer Res 81(3):259-265.
Tsutomu T, Kasumi A, Yasuyaki T, Venzo S. 1991. Isolation and characterization of thermostable chitinase from Bacillus licheniformis. Biochim Biophys Acta 1078(3):404-410.
Uchida Y, Izume M, Ohtakara A. 1988. Preparation of chitosan oligomers with purified chitosanase and its application. In: Chitin and Chitosan. (G Skjak-Brek, T Anthonsen, and P Sandford. ed.) pp.373-382. Elsevier Science Publishers Ltd, England
Uhrich KE, Cannizzaro SM, Langer RS, Shakesheff KM. 2000. Polymeric system for controlled drug release. Chem Rev 99(11):3181-3198.
Ulhoa CJ, Peberdy JF. 1991. Regulation of chitinase synthesis in Trichoderma harzianum. J Gen Microbiol 137(9):2163-2169.
Usami Y, Minami S, Okamoto Y, Matsuhashi A, Shigemasa Y. 1997. Influence of chain length of N-acetyl-D-glucosamine and D-glucosamine residues on direct and complement-mediated chemotactic activities for canine polymorphonuclear cells. Carbohydr Polym 32(2):115-122.
Usami Y, Okamoto Y, Takahiro T, Shigemasa Y, Minami S. 1998. Effect of N-acetyl-D-glucosamine and D-glucosamine oligomers on canine polymorphonuclear cells in vitro. Carbohydr Polym 36(2):137-141.
Usui T, Hayashi Y, Nanjo F, Sakai K, Ishido Y. 1987. Transglycoylation reaction of chitinase purified from Nocardio orientalis. Biochim Biophys Acta 923(2):302-309.
Velde KV, Kiekens P. 2004. Structure analysis and degree of substitution of chitin, chitosan and dibutyrylchitin by FT-IR spectroscopy and solid state 13C NMR.Carbohydr Polym 58(4):409-416.
Wang SL, Lin TY, Yen YH, Liao HF, Chen YJ. 2006. Bioconversion of shellfish chitin wastes for the production of Bacillus subtilis W-118 chitinase. Carbohydr Res 341(15):2507-2515.
Wu FC, Tseng RL, Juang RS. 2000. Comparative adsorption of metal and dye on flake- and bead-types chitosans prepared from fishery wastes. J Hazard Mater 73(1):63-75.
Xie W, Xu P, Wang W, Liu Q. 2002. Preparation and antibacterial activity of water soluble chitosan derivative. Carbohydr Polym 50(1):35-40.
Ya T, Simposon BK, Ramaswamy H, Yaylayan W, Smith JP, Hudon C. 1991. Carotenoproteins from lobster waste as a potential feed supplement for culture salmonids. Food Biotechnol 5(2):87-93.
Yamaguchi I, Itoh S, Suzuki M, Sakane M, Osaha A, Tanaka J. 2003. The chitosan prepared from crab tendon I: the characterization and the mechanical properties. Biomaterials 24(12):2031-2036.
Yamagami T, Funatsu G. 1993. Purification and some properties of three chitinases from the seeds of rye. Biosci Biotechnol Biochem 57(4):643-647.
Zhang M, Haga A, Sekiguchi H, Hirano S. 2000. Structure of insect chitin isolated from beetle larva cuticle and silkworm (Bombyx mori) pupa exuvia. Int J Bio Macromol 27(1):99-105.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/42133-
dc.description.abstractN-乙醯幾丁寡醣是由2~10個N-乙醯葡萄糖胺以β-1,4醣苷鍵結而成的低分子量寡醣分子,具有抗菌、抗腫瘤及組織修復等活性,其中又以聚合度較高的N-乙醯幾丁六醣與七醣效果較顯著。傳統製備N-乙醯幾丁寡醣是由幾丁質水解而來,並且幾丁質通常是利用大量的酸鹼溶液處理蝦殼後而得,有造成環保污染的問題。本論文嘗試以研磨技術降低蝦殼顆粒大小,利用Bacillus cereus NTU-FC-4與其所產生之幾丁質酶直接作用於未經酸鹼處理過之蝦殼來生產N-乙醯幾丁寡醣,藉以達到綠色環保生產技術的目的。
本論文研究膠態幾丁質、葡萄糖、幾丁聚醣粉末、葡萄糖胺或N-乙醯葡萄糖胺做為培養Bacillus cereus NTU-FC-4之碳源,結果發現以膠態幾丁質作為碳源可獲得最高的幾丁質酶活性,約為0.45 unit/mL,可知本菌株為誘導型幾丁質酶生產菌。將蝦殼區分為蒸煮與未蒸煮,將之研磨成不同粒徑用以誘導Bacillus cereus NTU-FC-4產生幾丁質酶,酵素活性測定結果顯示,無論蝦殼有無蒸煮處理,皆在10 mm、1.5%濃度下可誘導Bacillus cereus NTU-FC-4產生最多量幾丁質酶,蒸煮過之蝦殼誘導出之幾丁質酶活性約為0.48 unit/mL;未蒸煮者之幾丁質酶活性約為0.45 unit/mL。另外,本研究發現以上述基質培養2天時可得到最多的酵素量,因此收集此時之酵素進行後續之酵素水解實驗,用以製備N-乙醯幾丁寡醣。
利用Bacillus cereus NTU-FC-4與其所產生之粗酵素水解不同粒徑之蝦殼,研究結果中發現,利用Bacillus cereus NTU-FC-4直接處理蝦殼,可獲得不同聚合度(NAG)1-6之N-乙醯幾丁寡醣,且其N-乙醯幾丁寡醣總量較酵素水解者高,然而隨培養時間增加,各寡醣含量沒有隨之增加。酵素水解之實驗發現,水解產物以N-乙醯幾丁單醣 (NAG)與N-乙醯幾丁二醣 (NAG)2為主,中間產物有N-乙醯幾丁四醣 (NAG)4、N-乙醯幾丁五醣 (NAG)5與N-乙醯幾丁六醣 (NAG)6,但是含量皆不高。不過,本研究發現,最小粒徑0.038~0.044 mm之蝦殼所產生之N-乙醯幾丁單醣 (NAG)與N-乙醯幾丁二醣 (NAG)2含量較高,證明越小粒徑之蝦殼愈有利酵素水解作用,可產生高聚合度的N-乙醯幾丁寡醣。
zh_TW
dc.description.abstractN-acetyl-chitooligosaccharides are composed of 2–10 N-acetyl-glucosamine residues with β-1,4-linkage to form low molecular weight oligomer. The N-acetyl-chitooligosaccharides have numerous bioactive functions, including anti-bacterial, antitumor, and tissue repair properties. It is also known that high degree polymerized oligomers, such as N-acetylchitohexaose and N-acetylchitoheptaose, have better biological function compared to other N-acetyl-chitooligosaccharides. Traditionally, chitin are produced from crustaceans (like shrimp shell) by a strong acid and base chemical procedure, and then hydrolysis of the chitin is carried out to produce N-acetyl-chitooligosaccharides. However, the use of strong acid and base makes this procedure environment unfriendly. The objective of this study was to incorporate medium milling technology to reduce the particle size of shrimp shell, thus it can be used directly for the production of N-acetyl-chitooligosaccharides.
Various carbon sources, inculding colloidal chitin, glucose, chitosan powder, D-glucosamine and N-acetyl-D-glucosamine, were used to cultivate Bacillus cereus NTU-FC-4 to induce enzyme. It was found that the highest activity (0.45 unit/mL) of the chitinase produced by the Bacillus cereus NTU-FC-4 was obtained when the cultivation was carried out in the medium containing colloidal chitin, suggesting that Bacillus cereus NTU-FC-4 was an inductive chitinase producer. The steamed or non-steamed shrimp shell was processed by medium milling technology to reduce particle size, then, the suspension containing shrimp shell particle was used to cultivate Bacillus cereus NTU-FC-4. The results indicated that the chitinase produced by the Bacillus cereus NTU-FC-4 was about 0.48 unit/mL when the microorganism was cultivated in the medium containing 1.5% of 10 mm steamed shrimp shell. And the chitinase produced by the Bacillus cereus NTU-FC-4 was about 0.45 unit/mL when cultivated in the medium containing 1.5% of 10 mm non-steamed shrimp shell. Besides, it was also found that 48 hours of cultivation time could induce the highest amount of enzyme.
Using shrimp shell of different particle sizes to cultivate Bacillus cereus NTU-FC-4 directly, it was found that the hydrolysate contained various chitooligomers, including monomer to hexamer. By hydrolyzing shrimp shell of different particle sizes by crude chitinase from Bacillus cereus NTU-FC-4, the main hydrolysate were N-acetylglucosamine and N-acetylchitobiose, and the intermediates were N-acetylchitotetraose, N-acetylchitopentaose, and N-acetylchitohexaose. It is interesting to note that the N-acetyl-chitooligosaccharides concentrations in the product yielded from the microorganism were generally higher than that yielded from the crude chitinase. In addition, the smaller the shrimp shell particle used, the higher the concentration of N-acetylglucosamine and N-acetylchitobiose could be obtained during crude chitinase hydrolysis. Results of this study demonstrated that particle size reduction was an effective method to facilitate enzymatic hydrolysis of shrimp shell.
en
dc.description.provenanceMade available in DSpace on 2021-06-15T00:48:33Z (GMT). No. of bitstreams: 1
ntu-97-R95641002-1.pdf: 3607207 bytes, checksum: 1c310ba9fb4bd803e964b85555c7a2ea (MD5)
Previous issue date: 2008
en
dc.description.tableofcontents摘要 I
Abstract III
目錄 V
圖目錄 VIII
表目錄 X
第一章 前言 1
第二章 文獻回顧 3
第一節、蝦廢棄物 3
一、簡介 3
二、蝦廢棄物之一般化學成分 4
三、蝦廢棄物之利用 4
第二節、幾丁質與幾丁聚醣 7
一、簡介 7
二、幾丁質與幾丁聚醣的分佈及特性 7
三、幾丁質種類及結構 10
四、幾丁質與幾丁聚醣之製備 11
五、幾丁質與幾丁聚醣之應用 15
第三節、幾丁質酶 19
一、簡介 19
二、幾丁質酶之天然分佈 19
三、幾丁質酶之種類 20
四、幾丁質酶活性測定方法 21
五、幾丁質酶之應用 23

第四節、N-乙醯幾丁寡醣與幾丁寡醣 24
一、簡介 24
二、N-乙醯幾丁寡醣與幾丁寡醣之製備 25
三、N-乙醯幾丁寡醣與幾丁寡醣之測定 28
四、N-乙醯幾丁寡醣與幾丁寡醣之生理活性及其應用 29
第三章 材料與方法 33
第一節、實驗材料與設備 33
一、主要材料與試藥 33
二、主要設備及儀器 33
三、膠態幾丁質 (colloidal chitin)之製備 35
第二節、實驗方法 35
一、蝦殼之處理 35
二、幾丁質酶的生產與製備 36
三、製備N-乙醯幾丁寡醣 37
第三節、分析方法 38
一、菌數測定 38
二、蛋白質濃度測定 38
三、酵素活性分析 39
四、還原醣測定 39
五、N-乙醯幾丁寡醣的分析與定量 39
第四章 結果與討論 41
一、酵素製備條件之探討 41
(一) 不同碳源活化Bacillus cereus NTU-FC-4對酵素活性之影響 41
(二) 不同蝦殼粒徑培養Bacillus cereus NTU-FC-4對還原醣之影響 43
(三) Bacillus cereus NTU-FC-4生長與蝦殼粒徑之關係 47
(四) 不同蝦殼處理方式與粒徑作為菌種碳源對酵素活性之影響 48
(五) 培養時間對以10 mm,1.5%蝦殼培養Bacillus cereus NTU-FC-4生產酵素之影響 54
二、N-乙醯幾丁寡醣製備之探討 56
(一) 利用Bacillus cereus NTU-FC-4直接製備N-乙醯幾丁寡醣 56
(二) 利用Bacillus cereus NTU-FC-4所產之粗酵素水解蝦殼 81
(三) 綜合討論 105
第五章 結論 106
參考文獻 107
附錄 122
dc.language.isozh-TW
dc.title利用Bacillus cereus NTU-FC-4水解不同粒徑之蝦殼以生產N-乙醯幾丁寡醣zh_TW
dc.titleProduction of N-acetyl-chitooligosaccharides by hydrolysis of shrimp shell of various particle sizes using Bacillus cereus NTU-FC-4en
dc.typeThesis
dc.date.schoolyear96-2
dc.description.degree碩士
dc.contributor.oralexamcommittee葉安義(An-I Yeh),呂廷璋,謝國煌(Kuo-Huang Hsieh)
dc.subject.keyword廢棄蝦殼,綠色環保,不同粒徑,幾丁質&#37238,N-乙醯幾丁寡醣,Bacillus cereus NTU-FC-4,zh_TW
dc.subject.keywordshrimp shell wastes,green technology,different particle sizes,chitinase,N-acetyl-chitooligosaccharides,Bacillus cereus NTU-FC-4,en
dc.relation.page121
dc.rights.note有償授權
dc.date.accepted2008-08-21
dc.contributor.author-college生物資源暨農學院zh_TW
dc.contributor.author-dept食品科技研究所zh_TW
顯示於系所單位:食品科技研究所

文件中的檔案:
檔案 大小格式 
ntu-97-1.pdf
  目前未授權公開取用
3.52 MBAdobe PDF
顯示文件簡單紀錄


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。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved