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
  • 幫助
    • 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. 獸醫專業學院
  4. 分子暨比較病理生物學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/62590
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor龐飛(Victor Fei Pang)
dc.contributor.authorCheng Huangen
dc.contributor.author黃崢zh_TW
dc.date.accessioned2021-06-16T16:05:07Z-
dc.date.available2013-07-08
dc.date.copyright2013-07-08
dc.date.issued2013
dc.date.submitted2013-06-22
dc.identifier.citationAbbes, S., Ouanes, Z., ben Salah-Abbes, J., Houas, Z., Oueslati, R., Bacha, H., Othman, O., 2006a. The protective effect of hydrated sodium calcium aluminosilicate against haematological, biochemical and pathological changes induced by Zearalenone in mice. Toxicon 47, 567-574.
Abbes, S., Salah-Abbes, J.B., Ouanes, Z., Houas, Z., Othman, O., Bacha, H., Abdel-Wahhab, M.A., Oueslati, R., 2006b. Preventive role of phyllosilicate clay on the Immunological and Biochemical toxicity of zearalenone in Balb/c mice. Int Immunopharmacol 6, 1251-1258.
Abid-Essefi, S., Baudrimont, I., Hassen, W., Ouanes, Z., Mobio, T.A., Anane, R., Creppy, E.E., Bacha, H., 2003. DNA fragmentation, apoptosis and cell cycle arrest induced by zearalenone in cultured DOK, Vero and Caco-2 cells: prevention by Vitamin E. Toxicology 192, 237-248.
Allan, G.M., Ellis, J.A., 2000. Porcine circoviruses: a review. J Vet Diagn Investi 12, 3-14.
Allan, G.M., McNeilly, E., Kennedy, S., Meehan, B., Moffett, D., Malone, F., Ellis, J., Krakowka, S., 2000. PCV-2-associated PDNS in Northern Ireland in 1990. Porcine dermatitis and nephropathy syndrome. Vet Rec 146, 711-712.
Ardavin, C., 2003. Origin, precursors and differentiation of mouse dendritic cells. Nat Rev Immunol 3, 582-590.
Austyn, J.M., Steinman, R.M., Weinstein, D.E., Granelli-Piperno, A., Palladino, M.A., 1983. Dendritic cells initiate a two-stage mechanism for T lymphocyte proliferation. J Exp Med 157, 1101-1115.
Beach, N.M., Meng, X.J., 2012. Efficacy and future prospects of commercially available and experimental vaccines against porcine circovirus type 2 (PCV2). Virus Res 164, 33-42.
Belchev, L., 1979. Pathomorphological changes in the estrogenic syndrome of swine. Vet Med Nauki 16, 33-40.
Bennett, J.W., Klich, M., 2003. Mycotoxins. Clin Microbiol Rev 16, 497-516.
Binder, E.M., Tan, L.M., Chin, L.J., Handl, J., Richard, J., 2007. Worldwide occurrence of mycotoxins in commodities, feeds and feed ingredients. Anim Feed Sci Technol 137, 265-282.
Bolduc, L., Labrecque, B., Cordeau, M., Blanchette, M., Chabot, B., 2001. Dimethyl sulfoxide affects the selection of splice sites. J Biol Chem 276, 17597-17602.
Borca, M.V., Gudmundsdottir, I., Fernandez-Sainz, I.J., Holinka, L.G., Risatti, G.R., 2008. Patterns of cellular gene expression in swine macrophages infected with highly virulent classical swine fever virus strain Brescia. Virus Res 138, 89-96.
Borutova, R., Faix, S., Placha, I., Gresakova, L., Cobanova, K., Leng, L., 2008. Effects of deoxynivalenol and zearalenone on oxidative stress and blood phagocytic activity in broilers. Arch Anim Nutr 62, 303-312.
Bouaziz, C., Martel, C., Sharaf el dein, O., Abid-Essefi, S., Brenner, C., Lemaire, C., Bacha, H., 2009. Fusarial toxin-induced toxicity in cultured cells and in isolated mitochondria involves PTPC-dependent activation of the mitochondrial pathway of apoptosis. Toxicol Sci 110, 363-375.
Bouaziz, C., Sharaf El Dein, O., El Golli, E., Abid-Essefi, S., Brenner, C., Lemaire, C., Bacha, H., 2008. Different apoptotic pathways induced by zearalenone, T-2 toxin and ochratoxin A in human hepatoma cells. Toxicology 254, 19-28.
Branzei, D., Foiani, M., 2005. The DNA damage response during DNA replication. Curr Opin Cell Biol 17, 568-575.
Chang, H.W., Jeng, C.R., Lin, T.L., Liu, J.J., Chiou, M.T., Tsai, Y.C., Chia, M.Y., Jan, T.R., Pang, V.F., 2006. Immunopathological effects of porcine circovirus type 2 (PCV2) on swine alveolar macrophages by in vitro inoculation. Vet Immunol Immunopathol 110, 207-219.
Cheng, Y.H., Weng, C.F., Chen, B.J., Chang, M.H., 2006. Toxicity of different Fusarium mycotoxins on growth performance, immune responses and efficacy of a mycotoxin degrading enzyme in pigs. Anim Res 55, 579-590.
Chianini, F., Majo, N., Segales, J., Dominguez, J., Domingo, M., 2003. Immunohistochemical characterisation of PCV2 associate lesions in lymphoid and non-lymphoid tissues of pigs with natural postweaning multisystemic wasting syndrome (PMWS). Vet Immunol Immunopathol 94, 63-75.
Collado-Romero, M., Arce, C., Ramirez-Boo, M., Carvajal, A., Garrido, J.J., 2010. Quantitative analysis of the immune response upon Salmonella typhimurium infection along the porcine intestinal gut. Vet Res 41, 23-34.
Corrier, D.E., 1991. Mycotoxicosis - Mechanisms of Immunosuppression. Vet Immunol Immunopathol 30, 73-87.
Darwich, L., Mateu, E., 2012. Immunology of porcine circovirus type 2 (PCV2). Virus Res 164, 61-67.
Darwich, L., Pie, S., Rovira, A., Segales, J., Domingo, M., Oswald, I.P., Mateu, E., 2003. Cytokine mRNA expression profiles in lymphoid tissues of pigs naturally affected by postweaning multisystemic wasting syndrome. J Gen Virol 84, 2117-2125.
Darwich, L., Segales, J., Domingo, M., Mateu, E., 2002. Changes in CD4(+), CD8(+), CD4(+) CD8(+), and immunoglobulin M-positive peripheral blood mononuclear cells of postweaning multisystemic wasting syndrome-affected pigs and age-matched uninfected wasted and healthy pigs correlate with lesions and porcine circovirus type 2 load in lymphoid tissues. Clin Diagn Lab Immunol 9, 236-242.
Darwich, L., Segales, J., Mateu, E., 2004. Pathogenesis of postweaning multisystemic wasting syndrome caused by Porcine circovirus 2: An immune riddle. Arch Virol 149, 857-874.
de Waal Malefyt, R., Haanen, J., Spits, H., Roncarolo, M.G., te Velde, A., Figdor, C., Johnson, K., Kastelein, R., Yssel, H., de Vries, J.E., 1991. Interleukin 10 (IL-10) and viral IL-10 strongly reduce antigen-specific human T cell proliferation by diminishing the antigen-presenting capacity of monocytes via downregulation of class II major histocompatibility complex expression. J Exp Med 174, 915-924.
Emili, A., Schieltz, D.M., Yates, J.R., 3rd, Hartwell, L.H., 2001. Dynamic interaction of DNA damage checkpoint protein Rad53 with chromatin assembly factor Asf1. Mol Cell 7, 13-20.
Forsell, J.H., Pestka, J.J., 1985. Relation of 8-ketotrichothecene and zearalenone analog structure to inhibition of mitogen-induced human lymphocyte blastogenesis. Appl Environ Microbiol 50, 1304-1307.
Fort, M., Fernandes, L.T., Nofrarias, M., Diaz, I., Sibila, M., Pujols, J., Mateu, E., Segales, J., 2009. Development of cell-mediated immunity to porcine circovirus type 2 (PCV2) in caesarean-derived, colostrum-deprived piglets. Vet Immunol Immunopathol 129, 101-107.
Fort, M., Olvera, A., Sibila, M., Segales, J., Mateu, E., 2007. Detection of neutralizing antibodies in postweaning multisystemic wasting syndrome (PMWS)-affected and non-PMWS-affected pigs. Vet Microbiol 125, 244-255.
Fort, M., Sibila, M., Allepuz, A., Mateu, E., Roerink, F., Segales, J., 2008. Porcine circovirus type 2 (PCV2) vaccination of conventional pigs prevents viremia against PCV2 isolates of different genotypes and geographic origins. Vaccine 26, 1063-1071.
Gillespie, J., Opriessnig, T., Meng, X.J., Pelzer, K., Buechner-Maxwell, V., 2009. Porcine circovirus type 2 and porcine circovirus-associated disease. J Vet Internal Med 23, 1151-1163.
Gilmore, W., Arias, M., Stroud, N., Stek, A., McCarthy, K.A., Correale, J., 2004. Preliminary studies of cytokine secretion patterns associated with pregnancy in MS patients. J Neurol Sci 224, 69-76.
Girish, C.K., Smith, T.K., Boermans, H.J., Anil Kumar, P., Girgis, G.N., 2010. Effects of dietary Fusarium mycotoxins on intestinal lymphocyte subset populations, cell proliferation and histological changes in avian lymphoid organs. Food Chem Toxicol 48, 3000-3007.
Goyarts, T., Danicke, S., Tiemann, U., Rothkotter, H.J., 2006. Effect of the Fusarium toxin deoxynivalenol (DON) on IgA, IgM and IgG concentrations and proliferation of porcine blood lymphocytes. Toxicol In Vitro 20, 858-867.
Grasland, B., Loizel, C., Blanchard, P., Oger, A., Nignol, A.C., Bigarre, L., Morvan, H., Cariolet, R., Jestin, A., 2005. Reproduction of PMWS in immunostimulated SPF piglets transfected with infectious cloned genomic DNA of type 2 porcine circovirus. Vet Res 36, 685-697.
Green, M.L., Diekman, M.A., Malayer, J.R., Scheidt, A.B., Long, G.G., 1990. Effect of prepubertal consumption of zearalenone on puberty and subsequent reproduction of gilts. J Anim Sci 68, 171-178.
Grierson, S.S., King, D.P., Sandvik, T., Hicks, D., Spencer, Y., Drew, T.W., Banks, M., 2004. Detection and genetic typing of type 2 porcine circoviruses in archived pig tissues from the UK. Arch Virol 149, 1171-1183.
Gutzwiller, A., Czegledi, L., Stoll, P., Bruckner, L., 2007. Effects of Fusarium toxins on growth, humoral immune response and internal organs in weaner pigs, and the efficacy of apple pomace as an antidote. J Anim Physiol Anim Nutr 91, 432-438.
Haller Hasskamp, J., Zapas, J.L., Elias, E.G., 2005. Dendritic cell counts in the peripheral blood of healthy adults. Am J Hematol 78, 314-315.
Hansen, T.V., Rehfeld, J.F., Nielsen, F.C., 1999. Mitogen-activated protein kinase and protein kinase A signaling pathways stimulate cholecystokinin transcription via activation of cyclic adenosine 3',5'-monophosphate response element-binding protein. Mol Endocrinol 13, 466-475.
Harding, J.C.S., Clark, E.G., 1997. Recognizing and diagnosing postweaning multisystemic wasting syndrome (PMWS). Swine Health Prod 5, 201-203.
Ivashkiv, L.B., 1996. Cytokine expression and cell activation in inflammatory arthritis. Adv Immunol 63, 337-376.
Kanora, A., Maes, D., 2009. The role of mycotoxins in pig reproduction: a review. Vet Med 54, 565-576.
Kekarainen, T., McCullough, K., Fort, M., Fossum, C., Segales, J., Allan, G.M., 2010. Immune responses and vaccine-induced immunity against Porcine circovirus type 2. Vet Immunol Immunopathol 136, 185-193.
Kekarainen, T., Montoya, M., Dominguez, J., Mateu, E., Segales, J., 2008. Porcine circovirus type 2 (PCV2) viral components immunomodulate recall antigen responses. Vet Immunol Immunopathol 124, 41-49.
Kim, R., Liu, W., Chen, X., Kreder, K.J., Luo, Y., 2011. Intravesical dimethyl sulfoxide inhibits acute and chronic bladder inflammation in transgenic experimental autoimmune cystitis models. J Biomed Biotechnol 2011, 937061.
Kloesch, B., Liszt, M., Broell, J., Steiner, G., 2011. Dimethyl sulphoxide and dimethyl sulphone are potent inhibitors of IL-6 and IL-8 expression in the human chondrocyte cell line C-28/I2. Life Sci 89, 473-478.
Krakowka, S., Ellis, J., McNeilly, F., Waldner, C., Rings, D.M., Allan, G., 2007. Mycoplasma hyopneumoniae bacterins and porcine circovirus type 2 (PCV2) infection: induction of postweaning multisystemic wasting syndrome (PMWS) in the gnotobiotic swine model of PCV2-associated disease. Can Vet J 48, 716-724.
Krakowka, S., Ellis, J.A., McNeilly, F., Gilpin, D., Meehan, B., McCullough, K., Allan, G., 2002. Immunologic features of porcine circovirus type 2 infection. Viral Immunol 15, 567-582.
Krakowka, S., Ellis, J.A., McNeilly, F., Ringler, S., Rings, D.M., Allan, G., 2001. Activation of the immune system is the pivotal event in the production of wasting disease in pigs infected with porcine circovirus-2 (PCV-2). Vet Pathol 38, 31-42.
Ladekjaer-Mikkelsen, A.S., Nielsen, J., Stadejek, T., Storgaard, T., Krakowka, S., Ellis, J., McNeilly, F., Allan, G., Botner, A., 2002. Reproduction of postweaning multisystemic wasting syndrome (PMWS) in immunostimulated and non-immunostimulated 3-week-old piglets experimentally infected with porcine circovirus type 2 (PCV2). Vet Microbiol 89, 97-114.
Lefebvre, D.J., Meerts, P., Costers, S., Misinzo, G., Barbe, F., Van Reeth, K., Nauwynck, H.J., 2008. Increased porcine circovirus type 2 replication in porcine leukocytes in vitro and in vivo by concanavalin A stimulation. Vet Microbiol 132, 74-86.
Liao, W., Lin, J.X., Leonard, W.J., 2013. Interleukin-2 at the crossroads of effector responses, tolerance, and immunotherapy. Immunity 38, 13-25.
Lin, C.M., Jeng, C.R., Chang, H.W., Guo, I.C., Huang, Y.L., Tsai, Y.C., Chia, M.Y., Pang, V.F., 2008. Characterization of porcine circovirus type 2 (PCV2) infection in swine lymphocytes using mitogen-stimulated peripheral blood lymphocytes from healthy PCV2-carrier pigs. Vet Immunol Immunopathol 124, 355-366.
Lin, C.M., Jeng, C.R., Hsiao, S.H., Lee, Y., Tsai, Y.C., Chia, M.Y., Pang, V.F., 2012. Monocyte-derived dendritic cells enhance cell proliferation and porcine circovirus type 2 replication in concanavalin A-stimulated swine peripheral blood lymphocytes in vitro. Vet Immunol Immunopathol 145, 368-378.
Lioi, M.B., Santoro, A., Barbieri, R., Salzano, S., Ursini, M.V., 2004. Ochratoxin A and zearalenone: a comparative study on genotoxic effects and cell death induced in bovine lymphocytes. Mutat Res 557, 19-27.
Liu, G.Y., Gao, S.Z., Ge, C.R., Zhang, X., 2008. Molecular characterization of the encoding regions and tissue expression analyses for three novel porcine genes--HNRPA1, YIPF5 and UB2D2. Mol Biol Rep 35, 519-526.
Luongo, D., De Luna, R., Russo, R., Severino, L., 2008. Effects of four Fusarium toxins (fumonisin B(1), alpha-zearalenol, nivalenol and deoxynivalenol) on porcine whole-blood cellular proliferation. Toxicon 52, 156-162.
Madson, D.M., Ramamoorthy, S., Kuster, C., Pal, N., Meng, X.J., Halbur, P.G., Opriessnig, T., 2009. Infectivity of porcine circovirus type 2 DNA in semen from experimentally-infected boars. Vet Res 40, 10.
Magan, N., Medina, A., Aldred, D., 2011. Possible climate-change effects on mycotoxin contamination of food crops pre- and postharvest. Plant Pathol 60, 150-163.
Magar, R., Muller, P., Larochelle, R., 2000. Retrospective serological survey of antibodies to porcine circovirus type 1 and type 2. Can J Vet Res 64, 184-186.
Mankertz, A., Hillenbrand, B., 2001. Replication of porcine circovirus type 1 requires two proteins encoded by the viral rep gene. Virology 279, 429-438.
Marin, D.E., Taranu, I., Burlacu, R., Manda, G., Motiu, M., Neagoe, I., Dragomir, C., Stancu, M., Calin, L., 2011. Effects of zearalenone and its derivatives on porcine immune response. Toxicol In Vitro 25, 1981-1988.
Marin, D.E., Taranu, I., Burlacu, R., Tudor, D.S., 2010. Effects of zearalenone and its derivatives on the innate immune response of swine. Toxicon 56, 956-963.
Marin, M.L., Murtha, J., Dong, W., Pestka, J.J., 1996. Effects of mycotoxins on cytokine production and proliferation in EL-4 thymoma cells. J Toxicol Environ Health 48, 379-396.
McCullough, K.C., Ruggli, N., Summerfield, A., 2009. Dendritic cells--at the front-line of pathogen attack. Vet Immunol Immunopathol 128, 7-15.
Meerts, P., Misinzo, G., Lefebvre, D., Nielsen, J., Botner, A., Kristensen, C.S., Nauwynck, H.J., 2006. Correlation between the presence of neutralizing antibodies against porcine circovirus 2 (PCV2) and protection against replication of the virus and development of PCV2-associated disease. BMC Vet Res 2, 6.
Melchior, D., Packer, C.S., Johnson, T.C., Kaefer, M., 2003. Dimethyl sulfoxide: does it change the functional properties of the bladder wall? J Urol 170, 253-258.
Michalek, R.D., Gerriets, V.A., Nichols, A.G., Inoue, M., Kazmin, D., Chang, C.Y., Dwyer, M.A., Nelson, E.R., Pollizzi, K.N., Ilkayeva, O., Giguere, V., Zuercher, W.J., Powell, J.D., Shinohara, M.L., McDonnell, D.P., Rathmell, J.C., 2011. Estrogen-related receptor-alpha is a metabolic regulator of effector T-cell activation and differentiation. Proc Natl Acad Sci USA 108, 18348-18353.
Minervini, F., Dell'Aquila, M.E., 2008. Zearalenone and Reproductive Function in Farm Animals. Int J Mol Sci 9, 2570-2584.
Minervini, F., Giannoccaro, A., Fornelli, F., Dell'Aquila, M.E., Minoia, P., Visconti, A., 2006. Influence of mycotoxin zearalenone and its derivatives (alpha and beta zearalenol) on apoptosis and proliferation of cultured granulosa cells from equine ovaries. Reprod Biol Endocrinol 4, 62.
Miraglia, M., Marvin, H.J.P., Kleter, G.A., Battilani, P., Brera, C., Coni, E., Cubadda, F., Croci, L., De Santis, B., Dekkers, S., Filippi, L., Hutjes, R.W.A., Noordam, M.Y., Pisante, M., Piva, G., Prandini, A., Toti, L., van den Born, G.J., Vespermann, A., 2009. Climate change and food safety: An emerging issue with special focus on Europe. Food Chem Toxicol 47, 1009-1021.
Misinzo, G., Meerts, P., Bublot, M., Mast, J., Weingartl, H.M., Nauwynck, H.J., 2005. Binding and entry characteristics of porcine circovirus 2 in cells of the porcine monocytic line 3D4/31. J Gen Virol 86, 2057-2068.
Nielsen, J., Vincent, I.E., Botner, A., Ladekaer-Mikkelsen, A.S., Allan, G., Summerfield, A., McCullough, K.C., 2003. Association of lymphopenia with porcine circovirus type 2 induced postweaning multisystemic wasting syndrome (PMWS). Vet Immunol Immunopathol 92, 97-111.
Olsen, M., Malmlof, K., Pettersson, H., Sandholm, K., Kiessling, K.H., 1985. Plasma and urinary levels of zearalenone and alpha-zearalenol in a prepubertal gilt fed zearalenone. Acta Pharmacol Toxicol 56, 239-243.
Olvera, A., Sibila, M., Calsamiglia, M., Segales, J., Domingo, M., 2004. Comparison of porcine circovirus type 2 load in serum quantified by a real time PCR in postweaning multisystemic wasting syndrome and porcine dermatitis and nephropathy syndrome naturally affected pigs. J Virol Methods 117, 75-80.
Opriessnig, T., Meng, X.J., Halbur, P.G., 2007. Porcine circovirus type 2-associated disease: Update on current terminology, clinical manifestations, pathogenesis, diagnosis, and intervention strategies. J Vet Diagn Investi 19, 591-615.
Ouanes, Z., Abid, S., Ayed, I., Anane, R., Mobio, T., Creppy, E.E., Bacha, H., 2003. Induction of micronuclei by zearalenone in Vero monkey kidney cells and in bone marrow cells of mice: protective effect of vitamin E. Mutat Res 538, 63-70.
Ouanes, Z., Ayed-Boussema, I., Baati, T., Creppy, E.E., Bacha, H., 2005. Zearalenone induces chromosome aberrations in mouse bone marrow: preventive effect of 17beta-estradiol, progesterone and vitamin E. Mutat Res 565, 139-149.
Palyusik, M., Harrach, B., Mirocha, C.J., Pathre, S.V., 1979. Occurrence of Zearalenol in the milk of sows fed zearalenon. Magy Allatorv Lapja 34, 836-838.
Paterson, R.R.M., Lima, N., 2010. How will climate change affect mycotoxins in food? Food Res Int 43, 1902-1914.
Patterson, A.R., Madson, D.M., Halbur, P.G., Opriessnig, T., 2011a. Shedding and infection dynamics of porcine circovirus type 2 (PCV2) after natural exposure. Vet Microbiol 149, 225-229.
Patterson, A.R., Ramamoorthy, S., Madson, D.M., Meng, X.J., Halbur, P.G., Opriessnig, T., 2011b. Shedding and infection dynamics of porcine circovirus type 2 (PCV2) after experimental infection. Vet Microbiol 149, 91-98.
Richard, J.L., 2007. Some major mycotoxins and their mycotoxicoses--an overview. Int J Food Microbiol. 119, 3-10.
Richetti, A., Cavallaro, A., Ainis, T., Fimiani, V., 2003. Effect of some mycotoxins on superoxide anion production of isolated human neutrophils and in whole blood. Immunopharmacol Immunotoxicol 25, 441-449.
A. Rodriguez-Arrioja, G.M., Segales, J., Rosell, C., Rovira, A., Pujols, J., Plana-Duran, J., Domingo, M., 2003. Retrospective study on porcine circovirus type 2 infection in pigs from 1985 to 1997 in Spain. J Vet Med B Infect Dis Vet Public Health 50, 99-101.
Rosenstreich, D.L., Mizel, S.B., 1978. The participation of macrophages and macrophage cell lines in the activation of T lymphocytes by mitogens. Immunol Rev 40, 102-135.
Ryu, D., Hanna, M.A., Eskridge, K.M., Bullerman, L.B., 2003. Heat stability of zearalenone in an aqueous buffered model system. J Agric Food Chem 51, 1746-1748.
Sanchez, R.E., Jr., Nauwynck, H.J., McNeilly, F., Allan, G.M., Pensaert, M.B., 2001. Porcine circovirus 2 infection in swine foetuses inoculated at different stages of gestation. Vet Microbiol 83, 169-176.
Santos, N.C., Figueira-Coelho, J., Martins-Silva, J., Saldanha, C., 2003. Multidisciplinary utilization of dimethyl sulfoxide: pharmacological, cellular, and molecular aspects. Biochem Pharmacol 65, 1035-1041.
Sarli, G., Mandrioli, L., Laurenti, M., Sidoli, L., Cerati, C., Rolla, G., Marcato, P.S., 2001. Immunohistochemical characterisation of the lymph node reaction in pig post-weaning multisystemic wasting syndrome (PMWS). Vet Immunol Immunopathol 83, 53-67.
Segales, J., 2012. Porcine circovirus type 2 (PCV2) infections: clinical signs, pathology and laboratory diagnosis. Virus Res 164, 10-19.
Segales, J., Allan, G.M., Domingo, M., 2005a. Porcine circovirus diseases. Anim Health Res Rev 6, 119-142.
Segales, J., Calsamiglia, M., Olvera, A., Sibila, M., Badiella, L., Domingo, M., 2005b. Quantification of porcine circovirus type 2 (PCV2) DNA in serum and tonsillar, nasal, tracheo-bronchial, urinary and faecal swabs of pigs with and without postweaning multisystemic wasting syndrome (PMWS). Vet Microbiol 111, 223-229.
Segales, J., Pastor, J., Cuenca, R., Domingo, M., 2000. Haematological parameters in postweaning multisystemic wasting syndrome-affected pigs. Vet Rec 146, 675-676.
Segales, J., Rosell, C., Domingo, M., 2004. Pathological findings associated with naturally acquired porcine circovirus type 2 associated disease. Vet Microbiol 98, 137-149.
Shang, S.B., Jin, Y.L., Jiang, X.T., Zhou, J.Y., Zhang, X., Xing, G., He, J.L., Yan, Y., 2009. Fine mapping of antigenic epitopes on capsid proteins of porcine circovirus, and antigenic phenotype of porcine circovirus type 2. Mol Immunol 46, 327-334.
Shibahara, T., Sato, K., Ishikawa, Y., Kadota, K., 2000. Porcine circovirus induces B lymphocyte depletion in pigs with wasting disease syndrome. J Vet Med Sci 62, 1125-1131.
Sipos, W., Duvigneau, J.C., Pietschmann, P., Schilcher, F., Hofbauer, G., Hartl, R.T., Schmoll, F., 2005. Porcine dermatitis and nephropathy syndrome (PDNS) is associated with a systemic cytokine expression profile indicative of proinflammation and a Th1 bias. Vet Immunol Immunopathol 107, 303-313.
Tirado, M.C., Clarke, R., Jaykus, L.A., McQuatters-Gollop, A., Franke, J.M., 2010. Climate change and food safety: A review. Food Res Int 43, 1745-1765.
Vanyi, A., Szailer, E., 1974. Investigation of the cytotoxic effect of F-2 toxin (zearalenone) in various monolayer cell cultures. Acta Vet Acad Sci Hung 24, 407-412.
Vanyi, A., Szeky, A., 1980. Fusariotoxicoses. 6. The effect of F2 toxin (zearalenone) on the spermatogenesis of maleswine. Magy Allatorv Lapja 35, 242-246.
Verreault, D., Letourneau, V., Gendron, L., Masse, D., Gagnon, C.A., Duchaine, C., 2010. Airborne porcine circovirus in Canadian swine confinement buildings. Vet Microbiol 141, 224-230.
Vilcek, J., Feldmann, M., 2004. Historical review: Cytokines as therapeutics and targets of therapeutics. Trends Pharmacol Sci 25, 201-209.
Vincent, I.E., Balmelli, C., Meehan, B., Allan, G., Summerfield, A., McCullough, K.C., 2007. Silencing of natural interferon producing cell activation by porcine circovirus type 2 DNA. Immunology 120, 47-56.
Vlata, Z., Porichis, F., Tzanakakis, G., Tsatsakis, A., Krambovitis, E., 2006. A study of zearalenone cytotoxicity on human peripheral blood mononuclear cells. Toxicol Lett 165, 274-281.
Wada, K., Hashiba, Y., Ohtsuka, H., Kohiruimaki, M., Masui, M., Kawamura, S., Endo, H., Ogata, Y., 2008. Effects of mycotoxins on mitogen-stimulated proliferation of bovine peripheral blood mononuclear cells. J Vet Med Sci 70, 193-196.
Wang, C., Huang, T.S., Huang, C.C., Tu, C., Jong, M.H., Lin, S.Y., Lai, S.S., 2004. Characterization of porcine circovirus type 2 in Taiwan. J Vet Med Sci 66, 469-475.
Wang, Y.C., Deng, J.L., Xu, S.W., Peng, X., Zuo, Z.C., Cui, H.M., Wang, Y., Ren, Z.H., 2012. Effects of zearalenone on IL-2, IL-6, and IFN-gamma mRNA levels in the splenic lymphocytes of chickens. Sci World J, Published online, doi:10.1100/2012/567327.
Wolf, S.F., Sieburth, D., Sypek, J., 1994. Interleukin 12: a key modulator of immune function. Stem Cells 12, 154-168.
Woods, G.M., Lowenthal, R.M., 1984. Cellular interactions and IL2 requirements of PHA-induced human T-lymphocyte colonies. Exp Hematol 12, 301-308.
Wu, C.Y., Demeure, C.E., Gately, M., Podlaski, F., Yssel, H., Kiniwa, M., Delespesse, G., 1994. In vitro maturation of human neonatal CD4 T lymphocytes. I. Induction of IL-4-producing cells after long-term culture in the presence of IL-4 plus either IL-2 or IL-12. J Immunol 152, 1141-1153.
Yazar, S., Omurtag, G.Z., 2008. Fumonisins, trichothecenes and zearalenone in cereals. Int J Mol Sci 9, 2062-2090.
Yegani, M., Smith, T.K., Leeson, S., Boermans, H.J., 2006. Effects of feeding grains naturally contaminated with Fusarium mycotoxins on performance and metabolism of broiler breeders. Poult Sci 85, 1541-1549.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/62590-
dc.description.abstract豬第二型環狀病毒 (PCV2)所引起的相關疾病稱為豬環狀病毒相關疾病(PCVAD),PCVAD的形成需有許多共同調控因子,包含病毒、其他病原的共同感染、外來免疫刺激原如疫苗的給予、宿主及環境因素如飼料品質等。黴菌毒素是個重要的飼料品質因子,長期食用黴菌毒素汙染的飼料會造成免疫功能的影響,全球暖化及氣候異常使黴菌毒素的致害越趨重要。玉米赤黴烯酮(ZEN)為具有雌激素結構之非固醇類黴菌毒素,對肝細胞、血液、細胞基因及免疫系統均有毒性。本研究係探討ZEN對存於豬周邊血液單核細胞(PBMCs)及周邊血液淋巴細胞(PBLs)中的PCV2複製是否有直接影響,或是否會透過影響豬隻樹突細胞(DCs)或PBLs功能而間接影響到病毒的複製,以了解ZEN是否具有成為引發PCVAD的環境共同因子的潛力。第一階段實驗選擇臨床上健康的PCV2感染豬隻,以流式細胞儀檢測其PBMCs與不同濃度的ZEN共同培養24及72小時後細胞的存活率,依檢測結果選擇對於細胞存活率無影響的0.01-10 μg/ml低濃度ZEN,在有或無Con A刺激免疫活化的條件下,與PBMCs及PBLs共同培養24-120小時,發現在有Con A刺激條件下,1-10 μg/ml ZEN會使PBMCs中的PCV2核酸量顯著提升,但同濃度之ZEN對PBLs中的PCV2則無顯著影響。第二階段實驗則由PBMCs先分離出血液單核球(Mos),於體外培養使其分化為DCs後,將DCs與10 μg/ml ZEN共同培養24小時,再於有或無Con A活化的條件下,加入同源的PBLs共同培養24-120小時,發現10 μg/ml ZEN 對於DCs在促使PBLs的增殖與提升PCV2核酸含量上無顯著影響。第三階段實驗將0.1-10 μg/ml ZEN在有或無Con A活化的條件下與PBMCs,以及在無Con A刺激的條件下與DCs,共同培養6-24小時,發現不論有無Con A刺激,10 μg/ml ZEN會顯著減少PBMCs之IL-2及IL-10 mRNA表現量,但同濃度之ZEN對DCs IL-10及IL-12 mRNA表現則無顯著影響。研究結果顯示,非細胞致死劑量之ZEN主要對於Con A活化的PBMCs中PCV2的複製及不論有無Con A刺激下的IL-2及IL-10 mRNA表現量的影響較大,對於DCs則無顯著影響。但由於PCVAD的發生與PCV2的病毒含量有顯著相關性,因此環境中之ZEN在豬隻有其他免疫刺激原存在時,是具有成為促使PCVAD產生的環境因子的潛力。zh_TW
dc.description.abstractPorcine circovirus type 2 (PCV2), a single-stranded circular DNA virus, is the primary causative agent of PCV-associated diseases (PCVAD). Aside from PCV2, other factors such as co-infection with other viruses or bacteria and environmental factors also play an important role on PCVAD development. Immunosuppression caused by stress, drug or other environmental factors are suggested to promote PCV2 replication. Mycotoxins are climate dependent, plant- and storage-associated problems. Climate change like global warming represents a key agro-ecosystem driving force of fungal colonization and mycotoxin production. Prolonged low-dose exposure to mycotoxin may lead to the impairment of immunity. Zearalenone (ZEN) and its derivatives, produced by Fusarium spp. and known as non-steroidal, estrogenic mycotoxins, are known to be hepatotoxic, haematotoxic, genotoxic, and immunotoxic. The present study attempted to clarify the possible effects of ZEN on PCV2 replication and functional alterations in peripheral blood mononuclear cells (PBMCs), and the subsets monocyte-derived dendritic cells (DCs) and peripheral blood lymphocytes (PBLs); and to determine whether ZEN is a potential environmental co-factor for PCV2 in PCVAD development. The first part of the study was to incubate PCV2-containing PBMCs and PBLs obtained from healthy, sub-clinically PCV2-infected pigs with ZEN at different concentrations for 24 and 72 h, with or without concanavalin A (Con A) stimulation, to quantify PBMCs viability by flow cytometry. To incubate PBMCs and PBLs with non-lethal 0.01-10 μg/ml ZEN for 24-72 h and 24-120 h, respectively, with or without Con A, to quantify the viral load by real-time PCR. The results showed that there were significant differences in PCV2 load between 1-10 μg/ml ZEN-treated and control group under Con A stimulation, but not in PBLs. The second part of the study was to incubate porcine DCs with 10 μg/ml ZEN for 24 h prior to its co-culture with PBLs, with or without Con A stimulation, for 24, 72 and 120 h, to evaluate the differences in cell proliferation and PCV2 load. The result showed that there was no significant difference between ZEN-treated and control DCs, with or without Con A stimulation, in promoting PBLs proliferation and PCV2 load. The third part of the study was to incubate porcine PBMCs with 0.1-10 μg/ml ZEN, with or without Con A stimulation, for 6-24 h and incubate DCs with different concentrations of ZEN without Con A stimulation for 6-24 h, to evaluate the differences in the expression levels of IL-2 and IL-10 mRNA for PBMCs and IL-12 and IL-10 mRNA for DCs by using real-time PCR. The result showed a significant reduction in IL-2 and IL-10 mRNA expression in ZEN-treated than in control PBMCs at 10 μg/ml ZEN, with or without Con A stimulation; but there was no significant difference in IL-12 and IL-10 mRNA expression between ZEN-treated and control DCs at 0.1-10 μg/ml ZEN without Con A stimulation. In conclusion, the major effect of ZEN was in PBMCs, including significantly elevated PCV2 load and reduced IL-2 and IL-10 mRNA expression at higher but sub-lethal concentrations of ZEN under Con A stimulation. However, no significant effects were revealed in PBLs and DCs. Because PCV2 viral load is important in PCVAD development and under the stimulation of Con A ZEN could increase the PBMCs’ PCV2 viral load, it is thous suggested that ZEN may have the potential to be an environmental co-factor for PCV2 in the induction of PCVAD.en
dc.description.provenanceMade available in DSpace on 2021-06-16T16:05:07Z (GMT). No. of bitstreams: 1
ntu-102-R00644001-1.pdf: 1050750 bytes, checksum: df01d39d182cff08f8b92c06962bd197 (MD5)
Previous issue date: 2013
en
dc.description.tableofcontents中文摘要 I
Abstract III
目錄… V
表次….. VIII
圖次….. IX
第一章 序言 1
第二章 文獻回顧 2
第一節 豬環狀病毒 2
1.1 豬環狀病毒研究歷史背景及流行病學 2
1.2 豬環狀病毒與豬環狀病毒相關疾病(Porcine circovirus-associated disease; PCVAD) 3
1.3 豬環狀病毒相關症狀的發病原因及相關因子 4
1.4 豬環狀病毒之相關免疫反應 5
第二節 黴菌毒素-玉米赤霉烯酮及其異構物 7
2.1 氣候變遷對於黴菌毒素的影響 8
2.2 玉米赤酶烯酮對豬隻所造成臨床症狀 9
2.3 玉米赤黴烯酮的細胞毒性 10
2.4 玉米赤黴烯酮對禽畜免疫反應的影響 11
第三章 材料與方法 13
第一節 實驗設計 13
1.1 探討玉米赤酶烯酮(ZEN)對於豬周邊血液單核細胞(PBMCs)及周邊血液淋巴細胞(peripheral blood lymphocytes, PBLs)所攜帶之第二型環狀病毒(PCV2)複製是否有直接影響 13
1.2 探討玉米赤酶烯酮(ZEN)對於豬樹突細胞(DCs)刺激周邊血液淋巴球(PBLs)分裂功能之影響 13
1.3 探討玉米赤酶烯酮(ZEN)對於豬樹突細胞(DCs)及周邊血液單核球(PBMCs)分泌細胞素之影響 14
第二節 實驗材料 15
2.1 細胞培養基及試劑 15
2.2 即時聚合酶連鎖反應之儀器及商品化試劑 22
2.3 核酸抽取試劑 23
2.4 實驗動物與血液樣本 24
2.5 細胞製備 25
第三節 實驗方法 26
3.1 以流式細胞儀對豬周邊血液單核球(PBMCs)進行細胞存活率測定 26
3.2 ZEN對PBMCs中PCV2複製的影響 28
3.3 ZEN對豬周邊血液淋巴球(PBLs)內以及其上清培養液中PCV2複製的影響 29
3.4 ZEN對於豬樹突細胞(DCs)刺激周邊血液淋巴球(PBLs)分裂功能之影響 29
3.5 ZEN對於DCs及PBMCs分泌細胞激素功能之影響 30
3.6 細胞及第二型豬環狀病毒之核酸(DNA及RNA)萃取 31
3.7 利用SYBR Green進行即時聚合酶連鎖反應測定第二型豬環狀病毒核酸含量及細胞素mRNA含量 33
3.8 統計分析方法 34
第四章 實驗結果 35
第一節 玉米赤黴烯酮(ZEN)對Con A活化或不活化之豬周邊血液單核細胞(PMBCs)存活率的影響(圖3) 35
第二節 玉米赤黴烯酮(ZEN)對Con A活化或不活化之豬周邊血液單核細胞(PMBCs)中第二型豬環狀病毒 (PCV2) 複製的影響(圖4, 5) 36
第三節 玉米赤黴烯酮(ZEN)對Con A活化或不活化之豬周邊血液淋巴細胞(PBLs)內外之第二型豬環狀病毒(PCV2)複製的影響(圖6-9) 38
第四節 在有或無concanavalin A (Con A)存在條件下,經10 μg/ml玉米赤酶烯酮(ZEN)處理24小時的樹突細胞(ZDCs)對共同培養的豬周邊血液淋巴細胞(PBLs)細胞內及細胞外培養液所帶PCV2相對病毒量(Relative viral load, RVL)的影響 39
第五節 在有或無concanavalin A (Con A)活化條件下,玉米赤酶烯酮(ZEN)對豬周邊血液單核細胞(PBMCs)的IL-2及IL-10 mRNA相對表現量的影響 41
第六節 在有或無concanavalin A (Con A)活化條件下,玉米赤酶烯酮(ZEN)對豬樹突細胞(DCs)的IL-10及IL-12 mRNA相對表現量的影響(圖 16,17) 42
第五章 討論 58
第六章 參考文獻 70
附錄 實驗用豬隻起始血清病毒量及對Con A增殖差……………………….85
dc.language.isozh-TW
dc.title玉米赤黴烯酮對豬免疫細胞及豬第二型環狀病毒複製的影響zh_TW
dc.titleThe effect of zearalenone (ZEN) on swine immunocytes and porcine circovirus type 2 (PCV2) replicationen
dc.typeThesis
dc.date.schoolyear101-2
dc.description.degree碩士
dc.contributor.coadvisor鄭謙仁(Chian-Ren Jeng)
dc.contributor.oralexamcommittee張志成
dc.subject.keyword玉米赤黴烯酮,豬第二型環狀病毒,zh_TW
dc.subject.keywordzearalenone,porcine circovirus type 2,en
dc.relation.page86
dc.rights.note有償授權
dc.date.accepted2013-06-24
dc.contributor.author-college獸醫專業學院zh_TW
dc.contributor.author-dept分子暨比較病理生物學研究所zh_TW
顯示於系所單位:分子暨比較病理生物學研究所

文件中的檔案:
檔案 大小格式 
ntu-102-1.pdf
  目前未授權公開取用
1.03 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