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  1. NTU Theses and Dissertations Repository
  2. 生物資源暨農學院
  3. 植物病理與微生物學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/56589
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor張雅君(Ya-Chun Chang)
dc.contributor.authorPo-Chuan Wangen
dc.contributor.author王柏荃zh_TW
dc.date.accessioned2021-06-16T05:36:28Z-
dc.date.available2017-08-21
dc.date.copyright2014-08-21
dc.date.issued2014
dc.date.submitted2014-08-12
dc.identifier.citationAgrios GN. 2005. Plant Pathology. Amsterdam; Boston: Elsevier Academic Press. xxiii, 922 p. pp.
Alvarez ME, Pennell RI, Meijer PJ, Ishikawa A, Dixon RA and Lamb C. 1998. Reactive oxygen intermediates mediate a systemic signal network in the establishment of plant immunity. Cell 92:773-84.
Andrivon D. 1996. The origin of Phytophthora infestans populations present in Europe in the 1840s: a critical review of historical and scientific evidence. Plant Pathol 45:1027-35.
Awoderu V. 1991. Rice yellow mottle virus in West Africa. Int J Pest Manage 37:356-62.
Bol J, Linthorst H and Cornelissen B. 1990. Plant pathogenesis-related proteins induced by virus infection. Annu Rev Phytopathology 28:113-38.
Bosque-Perez NA. 2000. Eight decades of maize streak virus research. Virus Res 71:107-21.
Buddenhagen I. 1985. Bacterial wilt revisited. ACIAR Proceedings 13:126-43.
Caplan JL, Mamillapalli P, Burch-Smith TM, Czymmek K and Dinesh-Kumar SP. 2008. Chloroplastic protein NRIP1 mediates innate immune receptor recognition of a viral effector. Cell 132:449-462.
Carver T, Zeyen R, Bushnell W and Robbins M. 1994. Inhibition of phenylalanine ammonia lyase and cinnamyl alcohol dehydrogenase increases quantitative susceptibility of barley to powdery mildew Erysiphe graminis. Physiol Mol Plant Pathol 44:261-72.
Chen YT, Lin MJ, Yang CH and Ko WH. 2011. Characterization of a fungistatic substance produced by Aspergillus flavus isolated from soil and its significance in nature. New Biotechnol 28:679-83.
Chern LL, Lin HC, Chang CT and Ko WH. 2014. Activation of systemic resistance to magnaporthe oryzae in rice by substances produced by Fusarium solani isolated from soil. J Phytopathology 162:434-441.
Cole DL. 1999. The efficacy of acibenzolar-S-methyl, an inducer of systemic acquired resistance, against bacterial and fungal diseases of tobacco. Crop Prot 18:267-73.
Colombo AL, Padovan ACB and Chaves GM. 2011. Current knowledge of Trichosporon spp. and trichosporonosis. Clin Microbiol Rev 24:682-700.
Cortez KJ, Roilides E, Quiroz-Telles F, Meletiadis J, Antachopoulos C, Knudsen T, Buchanan W, Milanovich J, Sutton DA, Fothergill A, Rinaldi MG, Shea YR, Zaoutis T, Kottilil S and Walsh TJ. 2008. Infections caused by Scedosporium spp. Clin Microbiol Rev 21:157-97.
Cutt JR and Klessig DF. 1992. Genes Involved in Plant Defense. Pathogenesis-related proteins. xi, 368p. pp.
Dale JL. 1987. Banana bunchy top: an economically important tropical plant virus disease. Adv Virus Res 33:301-26.
De Bruyn A, Villemot J, Lefeuvre P, Villar E, Hoareau M, Abdoul-Karime AL, Abdou-Chakour C, Reynaud B, Harkins GW, Varsani A, Martin DP and Lett JM. 2012. East African cassava mosaic-like viruses from Africa to Indian ocean islands: molecular diversity, evolutionary history and geographical dissemination of a bipartite begomovirus. BMC Evo Biol 12:228.
Diekmann M and Putter C. 1996. FAO/IPGRI Technical Guidelines for the Safe Movement of Germplasm; No. 15. Musa. Rome Food and Agriculture Organization of the United Nations, Rome/ International Plant Genetic Resources Institute, Rome.
Dietzgen R and Thomas J. 1991. Properties of virus-like particles associated with banana bunchy top disease in Hawaii, Indonesia and Tonga. Australas Plant Path 20:161-65.
Durrant WE and Dong X. 2004. Systemic acquired resistance. Ann Rev Phytopathology 42:185-209.
Elsharkawy M, Shimizu M, Takahashi H and Hyakumachi M. 2012. Induction of systemic resistance against Cucumber mosaic virus by Penicillium simplicissimum GP17‐2 in Arabidopsis and tobacco. Plant Pathol 61:964-76.
Friedrich L, Lawton K, Ruess W, Masner P ,Specker N, Rella MG, Meier B, Dincher S, Staub T, Uknes S, Metraux JP, Kessmann H and Ryals J. 1996. A benzothiadiazole derivative induces systemic acquired resistance in tobacco. Plant J 10:61-70.
Fry W, Goodwin S, Matuszak J, Spielman L Milgroom M and Drenth A. 1992. Population genetics and intercontinental migrations of Phytophthora infestans. Ann Rev Phytopathology 30:107-30.
Gaffney T, Friedrich L, Vernooij B, Negrotto D, Nye G, Uknes S, Ward E, Kessmann H and Ryals J. 1993. Requirement of salicylic acid for the induction of systemic acquired resistance. Science 261:754-56.
Geering AD, Olszewski NE, Dahal G, Thomas JE and Lockhart BE. 2001. Analysis of the distribution and structure of integrated Banana streak virus DNA in a range of Musa cultivars. Mol Plant Pathol 2:207-13.
Hsu TL. 2011. Application of acibenzolar-S-methyl and its resistance mechanism in controlling diseases of Pak-choi. National Chung Hsing University Master Thesis.
Hwang SC, Su HJ and Chiuju P. 1998. Production of virus-free banana plantlets in Taiwan. Food & Fertilizer Technology Center.
Jeger M, Eden-Green S, Thresh J, Johanson A, Waller J and Brown A. 1995. Bananas and plantains. Banana diseases. ii, 627 p. pp.
Jones JD and Dangl JL. 2006. The plant immune system. Nature 444:323-329.
Kamoun S, van West P, Vleeshouwers VG, de Groot KE and Govers F. 1998. Resistance of Nicotiana benthamiana to Phytophthora infestans is mediated by the recognition of the elicitor protein INF1. Plant Cell Online 10(9):1413-1425.
Kessmann H, Staub T, Hofmann C, Maetzke T and Herzog J. 1994. Induction of systemic acquired disease resistance in plants by chemicals. Ann Rev Phytopathology 32:439-59.
Ko WH, Tsou YJ, Lin MJ and Chern LL. 2010. Activity and characterization of secondary metabolites produced by a new microorganism for control of plant diseases. New Biotechnol 27:397-402.
Ko WH, Yang CH, Lin MJ, Chen CY and Tsou YJ. 2011. Humicola phialophoroides sp. nov. from soil with potential for biological control of plant diseases. Bot Stud 52:197-202.
Kogel KH, Beckhove U, Dreschers J, Munch S and Romme Y. 1994. Acquired resistance in barley, the resistance mechanism induced by 2, 6-dichloroisonicotinic acid is a phenocopy of a genetically based mechanism governing race-specific powdery mildew resistance. Plant Physiol 106:1269-77.
Konate G, Traore O and Coulibaly M. 1997. Characterization of Rice yellow mottle virus isolatesin Sudano-Sahelian areas. Arch Virol 142:1117-24.
Korner CJ, Klauser D, Niehl A, Dominguez-Ferrerasm A, Chinchilla D, Boller B, Heinlein M and Hann D. 2013. The immunity regulator BAK1 contributes to resistance against diverse RNA viruses. Mol Plant Microbe In 26:1271-1280.
Kuan T. 2012. Screening of metabolites derived from soil microorganisms for induction of plant resistance against viruses. National Taiwan University Master Thesis.
Lackner M, Najafzadeh MJ, Sun J, Lu Q and de Hoog GS. 2012. Rapid identification of Pseudallescheria and Scedosporium strains by using rolling circle amplification. Appl Environ Microb 78:126-33.
Ling K, Namba S, Gonsalves C, Slightom JL and Gonsalves D. 1991. Protection against detrimental effects of potyvirus infection in transgenic tobacco plants expressing the papaya ringspot virus coat protein gene. Nature Biotechnol 9:752-758.
Luo Y, Zhang DD, Dong XW, Zhao PB, Chen LL, Song XY, Wang XJ, Chen XL, Shi M and Zhang YZ. 2010. Antimicrobial peptaibols induce defense responses and systemic resistance in tobacco against Tobacco mosaic virus. FEMS Microbiol Lett 313:120-26.
Mauch-Mani B and Slusarenko AJ. 1996. Production of salicylic acid precursors is a major function of phenylalanine ammonia-lyase in the resistance of Arabidopsis to Peronospora parasitica. Plant Cell Online 8:203-12.
Middelhoven WJ, Scorzetti G and Fell JW. 2004. Systematics of the anamorphic basidiomycetous yeast genus Trichosporon Behrend with the description of five novel species: Trichosporon vadense, T. smithiae, T. dehoogii, T. scarabaeorum and T. gamsii. Int J Syst Evol Micr 54:975-86.
Moerschbacher BM, Noll U, Gorrichon L and Reisener H-J. 1990. Specific inhibition of lignification breaks hypersensitive resistance of wheat to stem rust. Plant Physiol 93:465-70.
Mur LA, Bi YM, Darby RM, Firek S and Draper J. 1997. Compromising early salicylic acid accumulation delays the hypersensitive response and increases viral dispersal during lesion establishment in TMV‐infected tobacco. Plant J 12:1113-26.
Nielsen KK, Bojsen K, Collinge DB and Mikkelsen JD. 1994. Induced resistance in sugar beet against Cercospora beticola: induction by dichloroisonicotinic acid is independent of chitinase and β-1,3-glucanase transcript accumulation. Physiol Mol Plant Pathol 45:89-99.
Pieterse CM, Van Wees SC, Van Pelt JA, Knoester M, Laan R, Gerritsb H, Weisbeekb P and van Loona L. 1998. A novel signaling pathway controlling induced systemic resistance in Arabidopsis. Plant Cell Online 10:1571-80.
Rabindran S and Dawson WO. 2001. Assessment of recombinants that arise from the use of a TMV-based transient expression vector. Virology 284:182-9.
Rogers H and Parkes H. 1995. Transgenic plants and the environment. J Exp Bot 46:467-88.
Ross A. 1966. Systemic effects of local lesion formation. Viruses of Plants 127-50.
Ryals JA, Neuenschwander UH, Willits MG, Molina A, Steiner H-Y and Hunt MD. 1996. Systemic acquired resistance. Plant Cell 8:1809.
Schneider M, Schweizer P, Meuwly P and Metraux J. 1996. Systemic acquired resistance in plants. Int Rev Cytol 168:303-40.
Scorzetti G, Fell JW, Fonseca A and Statzell‐Tallman A. 2002. Systematics of basidiomycetous yeasts: a comparison of large subunit D1/D2 and internal transcribed spacer rDNA regions. FEMS Yeast Res 2:495-517.
Shirasu K, Nakajima H, Rajasekhar VK, Dixon RA and Lamb C. 1997. Salicylic acid potentiates an agonist-dependent gain control that amplifies pathogen signals in the activation of defense mechanisms. Plant Cell Online 9:261-270.
Stam M, Mol JN and Kooter JM. 1997. Review article: the silence of genes in transgenic plants. Ann Bot 79:3-12.
Su HJ, Lin MJ, Tsou YJ and Ko WH. 2012. Pseudallin, a new antibiotic produced by the human pathogenic fungus Pseudallescheria boydii, with ecological significance. Bot Stud 53:239-42.
Swofford DL. 2002. PAUP*: Phylogenetic Analysis Using Parsimony (*and Other Methods), version 4.0 beta10. Sinauer Associates, Inc., Sunderland, MA.
Taiz L and Zeiger E. 1998. Seed banks and molecular maps: unlocking genetic potential from the wild Science. Plant Physiol 277:1063-66.
Tamura K, Dudley J, Nei M and Kumar S. 2007. MEGA4: Molecular evolutionary genetics analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599.
Tamura K, Peterson D, Peterson N, Stecher G, Nei M and Kumar S. 2011. MEGA5:molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28:2731–2739.
Terry LA and Joyce DC. 2004. Elicitors of induced disease resistance in postharvest horticultural crops: a brief review. Postharvest Biol Tec 32:1-13.
Thomma BP, Nurnberger T and Joosten MH. 2011. Of PAMPs and effectors: the blurred PTI-ETI dichotomy. Plant Cell Online 23:4-15.
Thompson JD, Gibson TJ, Plewniak F, Jeanmougin F and Higgins DG. 1997. The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Res 25(24):4876-4882.
Uknes S, Mauch-Mani B, Moyer M, Potter S, Williams S, Dincher S, Chandler D, Slusarenko A, Ward E and Ryals J. 1992. Acquired resistance in Arabidopsis. Plant Cell Online 4:645-56.
Valette C, Andary C, Geiger J, Sarah J and Nicole M. 1998. Histochemical and cytochemical investigations of phenols in roots of banana infected by the burrowing nematode Radopholus similis. Phytopathology 88:1141-48.
Vera J, Castro J, Gonzalez A, Barrientos H, Matsuhiro B, Arce P, Zuniga G and Moenne A. 2011. Long‐term protection against Tobacco mosaic virus induced by the marine alga oligo‐sulphated‐galactan Poly‐Ga in tobacco plants. Mol Plant Pathol 12:437-47.
Verhagen BW, Glazebrook J, Zhu T, Chang HS, van Loon L and Pieterse C. 2004. The transcriptome of rhizobacteria-induced systemic resistance in Arabidopsis. Mol Plant Microbe In 17:895-908.
Ward ER, Uknes SJ, Williams SC, Dincher SS, Wiederhold DL, Alexander DC, Ahl-Goy P, Metraux JP and Ryals JA. 1991. Coordinate gene activity in response to agents that induce systemic acquired resistance. Plant Cell Online 3:1085-94.
Wildermuth MC, Dewdney J, Wu G and Ausubel FM. 2001. Isochorismate synthase is required to synthesize salicylic acid for plant defence. Nature 414:562-65.
Yi SY, Yu SH and Choi D. 2003. Involvement of hydrogen peroxide in repression of catalase in TMV-infected resistant tobacco. Mol Cell 15:364-69.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/56589-
dc.description.abstract植物病毒病害由於無法有效以化學農藥達到防治目的,造成防治上的困難。前人研究發現土壤微生物及其產生之次級代謝物具有誘導植物抗性對抗真菌與細菌病害之潛力,但其利用於防治病毒病害的研究仍待研究。根基於土壤微生物的多樣性,本研究擬利用前人建立之土壤微生物篩選技術,結合實驗室建立之檢測抗病毒效力策略,期望可以篩選出能簡易培養且可產生誘導植物抗性並且對抗病毒病害之土壤微生物。檢測抗病毒效力的初步篩選是用Tobacco mosaic virus (TMV) 接種指示植物Nicotiana glutinosa利用產生出的病斑數目作為指標來判斷病害嚴重程度。將土壤微生物培養後的上清濾液塗佈於指示植物之葉表,篩選出一株平均可減少90%病斑表現的潛力菌株,後續綜合實驗室前人篩選到的另一株潛力菌株進行測定。兩株菌培養後的上清濾液塗佈於指示植物之葉背,平均可以減少60% - 65%之病徵表現,此結果顯示此兩株菌可能具有系統性保護之功能。選用對TMV具有高感病性的菸草品系Nicotiana benthamiana,利用接種後之倒伏病徵建立病害標準 (Disease index) 。將此兩株菌的培養濾液塗佈於N. benthamiana植株之葉背,接種TMV於葉面後,可觀察到發病時程有一至兩天之延遲。若改以塗佈整片葉後於上位葉接種TMV,也可觀察到病程發展之延緩,證實有系統性保護之功效。塗佈過兩株菌之培養濾液後的N. benthamiana,於處理葉皆有偵測到過氧化氫 (H2O2) 以及水楊酸抗性路徑之標誌基因PR-1a上升的情形,證明有水楊酸相關之抗性反應參與。利用ITS序列 (internal transcribed spacer)、26S rDNA D1/D2序列及形態鑑定,推測此兩株菌分別較接近Trichosporon scarabaeorum與Scedosporium dehogii。本實驗發現土壤微生物之培養濾液多可誘導植物抗性來對抗病毒,實驗中篩選出兩株真菌,其培養濾液不管在抗病或感病植物皆能有效誘導植物抗性,初步研究認為此兩株潛力菌株之培養濾液皆能誘導與水楊酸相關之抗性反應,並探討其在應用在病毒病病害管理之可行性。zh_TW
dc.description.abstractRecent research indicated that the secondary metabolites of soil microorganisms can induce plant resistance against fungus and bacterial disease; however, whether the metabolites are effective to virus disease remain to be resolved. Thus, we selected Nicotiana glutinosa, a local lesion host of Tobacco mosaic virus (TMV), as the indicator plant for analysis. The local lesion numbers induced by TMV were counted on plants treated with culture filtrates derived from soil microorganisms to measure the resistance response. The culture filtrates of the microorganisms was sprayed on to adaxial surface of plants then inoculated with TMV on the adaxial leaf surface to screen the filtrate with potential to induce the antiviral activity. Filtrate derived from two microorganisms can reduced 90% lesions on treated N. glutinosa. When the culture filtrates was sprayed on the leaves abaxial surface and inoculated the TMV on the adaxial surface of plants. About 60% - 65% lesions reduction was observed. It indicated that these culture filtrates can induce systemic protection against virus infection. Besides the TMV susceptible cultivar Nicotiana benthamiana was also selected for analysis, and the disease index was set up for further analysis. The culture filtrates was sprayed on lower leaves and then inoculated the TMV on the upper leaves, the symptoms delay was observed. It indicate that the culture filtrates of these two fungi have the ability to induce plant systemic protection. The hydrogen superoxide (H2O2) accumulation and pathogen-related protein gene, PR-1a, expression were detected on N. benthamiana leaves pretreated with the culture filtrates. These two fungi were identified by 26S rDNA D1/D2 region, ITS sequence analysis and morphology, they are highly related to Trichosporon scarabaeorum and Scedosporium dehogii. Our studies suggested that most of filtrates derived from soil microorganisms can induce plant resistance against viruses. We isolated two fungi from soil, and the filtrates derived from the two fungi can induce prominent salicylic acid related plant resistance response both on susceptible and resistance plants, and the potential application of the isolated fungi on virus disease management is discussed.en
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dc.description.tableofcontents致謝 i
中文摘要 ii
Abstract iv
Contents vi
1 INTRODUCTION 1
2 MATERIALS AND METHODS 5
2.1 Preparation of selective medium 5
2.2 Isolation of soil microorganisms by vegetable mixture 5
2.3 Preparation of culture filtrates derived from the isolated soil microorganisms 6
2.4 Plant materials 7
2.5 In vitro transcription and inoculum preparation 7
2.6 Antiviral activity assays 8
2.7 Plants treatment and sampling 8
2.8 RNA extraction 9
2.9 DNase treatment 9
2.10 Semi-quantitative PCR 10
2.11 Hydrogen peroxide staining 11
2.12 Fungi identification 11
2.13 Phylogenic analysis 12
3 RESULTS 13
4 DISCUSSION 21
REFERENCES 25
Tables and Figures 30
Table 1. Primer sequence used in the study 31
Table 2. Infection rate of Tobacco mosaic virus (TMV) on Nicotiana benthamiana inoculated with different concentrations of TMV inoculum 32
Figure 1. Lesion numbers induced by Tobacco mosaic virus (TMV) inoculum prepared from TMV infected freeze-dried leaves on Nicotiana glutinosa 33
Figure 2. Lesion numbers and necrosis induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves pretreated with salicylic acid (SA) 34
Figure 3. The ratio of lesion numbers induced by Tobacco mosaic virus (TMV) on treated Nicotiana glutinosa 35
Figure 4. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves pretreated with culture filtrates derived from collected fungi 36
Figure 5. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves adaxial surface pretreated with culture filtrates derived from selected fungi 37
Figure 6. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves abaxial surface pretreated with culture filtrates derived from selected fungi 38
Figure 7. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves pretreated with culture filtrates derived from two different broths 39
Figure 8. Symptoms induced by Tobacco mosaic virus (TMV) on Nicotiana benthamiana inoculated with optimized TMV inoculum 40
Figure 9. Disease index of Nicotiana benthamiana inoculated with optimized Tobacco mosaic virus(TMV)inoculum 41
Figure 10. Severity of symptoms induced by Tobacco mosaic virus (TMV) on Nicotiana benthamiana 42
Figure 11. Severity of symptoms induced by systemic Tobacco mosaic virus (TMV) inoculation on Nicotiana benthamiana within two days after treatment 43
Figure 12. Severity of symptoms induced by systemic inoculation of Tobacco mosaic virus (TMV) on Nicotiana benthamiana within five days after treatment 44
Figure 13. Semi-quantification of PR1a and PDF1.2 genes on Nicotiana benthamiana 46
Figure 14. The detection of hydrogen peroxide on Nicotiana benthamiana treated leaves 47
Figure 15. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves adaxial surface pretreated with sterilized filtrates 48
Figure 16. Morphology of PHF2 on culture mediums 49
Figure 17. Morphology of PHF14 on culture mediums 50
Figure 18. Morphology of NTU1F8 on cultured mediums 51
Figure 19. Phylogenetic tree of PHF2 and PHF14 52
Figure 20. Phylogenetic tree of NTU1F8 53
Figure 21. Colony morphology of PHF2 on cultured medium 54
Figure 22. Colony morphology of NTU1F8 on cultured medium 55
Appendix 56
Appendix Table 1. Detailed properties of soil samples collected in this study 57
Appendix Figure 1. Three classes of screened soil microorganisms isolated from the soil sample 58
Appendix Figure 2. Lesion numbers induced by Tobacco mosaic virus (TMV) on Nicotiana glutinosa leaves abaxial surface pretreated with crude filtrates or sterilized filtrates 59
Appendix Figure 3. Colony morphology of PHF14 on cultured medium 60
dc.language.isoen
dc.subject土壤微生物zh_TW
dc.subject菸草嵌紋病毒zh_TW
dc.subject次級代謝物zh_TW
dc.subject誘導抗性zh_TW
dc.subjectTobacco mosaic virusen
dc.subjectinduce plant resistanceen
dc.subjectsecondary metabolitesen
dc.subjectSoil microorganismsen
dc.title應用土壤微生物誘導植物對抗菸草嵌紋病毒之分析zh_TW
dc.titleApplication of soil microorganism to induce plant resistance against Tobacco mosaic virusen
dc.typeThesis
dc.date.schoolyear102-2
dc.description.degree碩士
dc.contributor.coadvisor葉信宏(Hsin-Hung Yeh)
dc.contributor.oralexamcommittee柯文雄(Wen-Hsiung Ko),洪挺軒(Ting-Hsuan Hung)
dc.subject.keyword土壤微生物,菸草嵌紋病毒,誘導抗性,次級代謝物,zh_TW
dc.subject.keywordSoil microorganisms,Tobacco mosaic virus,induce plant resistance,secondary metabolites,en
dc.relation.page60
dc.rights.note有償授權
dc.date.accepted2014-08-13
dc.contributor.author-college生物資源暨農學院zh_TW
dc.contributor.author-dept植物病理與微生物學研究所zh_TW
顯示於系所單位:植物病理與微生物學系

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