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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/35687
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dc.contributor.advisor陳益明
dc.contributor.authorWen-Hsien Hsuen
dc.contributor.author許文賢zh_TW
dc.date.accessioned2021-06-13T07:04:55Z-
dc.date.available2007-07-30
dc.date.copyright2005-07-30
dc.date.issued2005
dc.date.submitted2005-07-26
dc.identifier.citation陳志德 (2002) 綠豆幼苗葉片 Rubisco activase 基因在低溫逆境下表現之研究。 國立台灣大學植物學研究所碩士論文
黃斌 (1997) 綠豆第一族分子量熱休克蛋白質與低溫耐受性之探討。 國立台灣大學植物學研究所碩士論文
黃英豪 (2002) 甘藷sporamin基因啟動子上調控因子之分析研究。國立台灣大學植物學研究所博士論文
劉炫亨 (1992) 綠豆幼苗經歷溫度調訓後在溫度逆境下型態及生理之變化。 國立台灣大學植物學研究所碩士論文
龔政哲 (1997) 碗豆白化幼苗冷溫誘導蛋白質基因之研究:基因篩選、結構及其表現的分析。國立台灣大學植物學研究所博士論文
Andrews TJ (1996) The bait in the Rubisco mousetrap. Nat Struct Biol 3: 3-7
Baker SS, Wilhelm KS, Thomashow MF (1994) The 5'-region of Arabidopsis thaliana cor15a has cis-acting elements that confer cold-, drought- and ABA-regulated gene expression. Plant Mol Biol 24: 701-13
Baumann, K, De Paolis, A, Costantino, P, Gualberti, G (1999) The DNA binding site of the Dof protein NtBBF1 is essential for tissue-specific and auxin-regulated expression of the rolB oncogene in plants . Plant Cell 11: 323-333.
Beuf L, Kurano N, Miyachi S. (1999) Rubisco activase transcript (rca) abundance increases when the marine unicellular green alga Chlorococcum littorale is grown under high-CO2 stress. Plant Mol Biol 41:627-35.
Bilger W, Schreiber U, Lange OL (1987) Chlorophyll fluorescence as an indicator of heat induced limitation of photosynthesis in Arbutus unedo. In JD Tenhumen, FM Catarino, OL Lange, WC Oechel, eds, Plant Response to Stress. Springer-Verlag, Berlin, pp 391-399
Bukhov NG, Dzhibladze TG (2002) The effect of high temperature on the photosynthetic activity of intact barley leaves at low and high irradiance. Russ J Plant Physiol 49: 371-375
Bukhov NG, Wiese C, Neimanis S, Heber U (1999) Heat sensitivity of chloroplasts and leaves: Leakage of protons from thylakoids and reversible activation of cyclic electron transport. Photosynth Res 59: 81-93
Busk PK, Pages M (1998) Regulation of abscisic acid-induced transcription. Plant Mol Biol 37: 425-35
Chang, M. Y., S. L. Chen, C. F. Lee and Y. M. Chen. 2001. Cold-acclimation and root temperature protection from chilling injury in chilling-sensitive mungbean (Vigna radiata L.) seedlings. Bot Bull Acad Sin 42: 53-60.
Chen YM, Liu HF, Lin CY (1991) Chilling stress effects on the growth, mitochondrial activity and protein synthesis in etiolated mungbean seedlings. Taiwania 36: 277-290
Chen, W, Chao, G, Singh, K B (1996) The promoter of an H2O2-inducible, Arabidopsis glutathione S-transferase gene contains closely linked OBF- and OBP1-binding sites . Plant J 10: 955-966
Cooper P, Ort DR (1987) The effect of chilling on the production of phytosystem Ⅱ light harvesting chlorophyll a/b binding protein in tomato. In Plant Gene Systems and Their Biology. Edited by Key JL and McIntosh L. New York: A. R. Liss. pp353-362
De Paolis, A, Sabatini, S, de Pascalis, L, Costantino, P, Capone, I (1996) A rolB regulatory factor belongs to a new class of single zinc finger plant proteins. Plant J 10: 215-223
Eaks Il, Morris LL (1956) respiration of cucumber fruits associated with physiological injury at chilling temperatures. Plant Physiol 33: 434-441
Gidoni D, Brosio P, Bond-Nutter D, Bedbrook J, Dunsmuir P (1989) Novel cis-acting elements in Petunia Cab gene promoters. Mol Gen Genet 215: 337-344
Graham D, Patterson BD (1982) Responses of plants to low nonfreezing temperatures: proteins, metabolism, and acclimation. Ann Rev Plant physiol 33: 347-372
Graham D, Hock;ey DG, Patterson BD (1979) Temperature effects on phosphoenol pyruvate carboxylase from chilling sensitive and chilling resistant plants. In Low Temperature Stress in Crop Plants: The Role of the Membrane. Edited by Lyons JM, Graham D, Rasion JK New York: Academic Press. pp 453-462
Hahn M, Walbot V (1989) Effects of cold-treatment on protein synthesis and mRNA levels in rice leaves. Plant Physiol 91: 930-938
Haldimann P (1998) Low growth temperature-induced changes to pigment composition and photosynthesis in Zea mays genotypes differing in chilling sensitivity. Plant Cell Environ 21: 200-208
Haralampidis K, Milioni D, Rigas S, Hatzopoulos P (2002) Combinatorial interaction of cis elements specifies the expression of the Arabidopsis AtHsp90-1 gene. Plant Physiol 129: 1138-1149
Havaux M (1993) Rapid photosynthetic adaptation to heat stress triggered in potato leaves by moderately elevated temperatures. Plant Cell Environ 16: 461-467
Jiang C, Iu B, Singh J (1996) Requirement of a CCGAC cis-acting element for cold induction of the BN115 gene from winter Brassica napus. Plant Mol Biol 30: 679-84
Jones RJ, Hoegh-Guldberg O, Larkum AWD, Schreiber U (1998) Temperature-induced bleaching of corals begins with impairment of the CO2 fixation mechanism in zooanthellae. Plant Cell Environ 21: 1219-1230
Kim HJ, Kim YK, Park JY, Kim J (2002) Light signalling mediated by phytochrome plays an important role in cold-induced gene expression through the C-repeat/dehydration responsive element (C/DRE) in Arabidopsis thaliana. The Plant J 29: 693-704
Kisu, Y, Ono, T, Shimofurutani, N, Suzuki, M, Esaka, M (1998) Characterization and expression of a new class of zinc finger protein that binds to silencer region of ascorbate oxidase gene. Plant Cell Physiol 39: 1054-1064
Kratsch HA, Wise RR ( 2000) The ultrastructure of chilling stress. Plant Cell Environ 23: 337-350

Levitt J (1980) Responses of plants to environmental stresses. Vol. 1. Chilling, freezing and high temperature stresses. 2nd ed. New York: Academic Press
Lewis DA (1961) Protoplasmic streaming in plants sensitive and insensitive to chilling temperatures. Science 124: 75-76
Liu Z, Taub CC, McClung CR (1996) Identification of an Arabidopsis thaliana Ribulose-1,5-Bisphosphate Carboxylase/Oxygenase Activase (RCA) Minimal Promoter Regulated by Light and the Circadian Clock. Plant Physiol 112: 43-51
Lorimer GH (1981) The carboxylation and oxygenation of ribulose-1,5-bisphosphate: The primary events in photosynthesis and photorespiration. Annu Rev Plant Physiol 32: 349-383
Lyon JM (1973) Chilling injury in plants. Ann Rev Plant Physiol 24:445-466
Martino-Catt S Ort DR (1992)Low temperature interrupts circadian regulation of transcriptional activity in chilling-sensitive plants. Proc Natl Acad Sci USA 89:3731-5
Mena, M, Vicente-Carbajosa, J, Schmidt, R J, Carbonero, P (1998) An endosperm-specific DOF protein from barley, highly conserved in wheat, binds to and activates transcription from the prolamin-box of a native -hordein promoter in barley endosperm. Plant J 16: 53-62
Murakami Y, Tsuyama M, Kobayashi Y, Kodama H, Iba K (2000) Trienoic fatty acids and plant tolerance of high temperature. Science 287: 476-479
Nie GY, Baker NR (1991) Modifications to thylakoid composition during development of maize leaves at low growth temperatures. Plant physiol 95:184-191
Orozco BM, Ogren WL (1993) Localization of light-inducible and tissue-specific regions of the spinach ribulose bisphosphate carboxylase/oxygenase (rubisco) activase promoter in transgenic tobacco plants. Plant Mol Biol 23:1129-38
Piechulla B, Merforth N, Rudolph B (1998) Identification of tomato Lhc promoter regions necessary for circadian expression. Plant Mol Biol 38: 655-662
Portis AR, Jr (2003) Rubisco activase: Rubisco’s catalytic chaperone. Photosynth Res 75: 11-27
Preisig-Muller R, Kindl H (1992)Sequence analysis of cucumber cotyledon ribulosebisphosphate carboxylase/oxygenase activase cDNA. Biochim Biophys Acta 1171:205-6.
Rieping M, Schoffl F (1992) Synergistic effect of upstream sequences, CCAAT box elements, and HSE sequences for enhanced expression of chimaeric heat shock genes in transgenic tobacco. Mol Gen Genet 231: 226-232
Raison JK, Roberts JKM, Berry JA (1982) Correlations between the thermal stability of chloroplast (thylakoid) membranes and the composition and fluidity of their polar lipids upon acclimation of the higher plant, Nerium oleander, to growth temperature. Biochim Biophys Acta 688: 218-228
Raison JK (1973) The influence of temperature-induced phase changes on kinetics of respiratory and other membrane-associated enzymes. J Bioenerg 4:258-309
Rieping M, Schoffl F (1992) Synergistic effect of upstream sequences, CCAAT box elements, and HSE sequences for enhanced expression of chimaeric heat shock genes in transgenic tobacco. Mol Gen Genet 231: 226-232
Robinson SP, Portis AR Jr (1988) Release of nocturnal inhibitor, carboxyarabinitol-1-phosphate from ribulose bisphosphate carboxylase / oxygenase by Rubisco activase. FEBS Lett 233:413-416
Rokka A, Zhang L, Aro EM (2001) Rubisco activase: an enzyme with a temperature-dependent dual function? Plant J 25:463-71
Sabine JR, Raymond EZ (1991) Organization and expression of two tandemly oriented genes encoding ribulosebisphosphate carboxylase/oxygenase activase in barley. J Biol Chem 266:4677-4685
Salvucci, Michael E. (2003) Two isoforms of Rubisco activase in cotton, the products of separate genes not alternative splicing. Planta (Berlin) 216:736-744.
Salvucci ME, Ogren WL (1996) The mechanism of Rubisco activase: insights from studies of properties and structure of the enzyme. Photosynth Res 47:1-11
Salvucci ME, van de Loo FJ, Stecher D. (2003) Two isoforms of Rubisco activase in cotton, the products of separate genes not alternative splicing. Planta 216:736-44
Salvucci ME, Portis AR Jr,Ogren W L (1985) A soluble choloroplast protein catalyzes ribulose bisphosphate carboxylase/oxygenase activation in vivo. Photosynth Res 7: 193-201
Salvucci ME, Werneke JM, Ogren WL, Portis AR Jr (1987) Purification and species distribution of Rubisco activase. Plant Physiol 84: 930-936
Schneider JC, Nielsen E, Somerville C (1995) A chilling-sensitive mutant of Arabidopsis is deficient in chloroplast protein accmulation at low temperature. Plant Cell Environ 18:23-32
Seki M, Narusaka M, Ishida J, Nanjo T, Fujita M, Oono Y, Kamiya A, Nakajima M, Enju A, Sakurai T, Satou M, Akiyama K, Taji T, Yamaguchi-Shinozaki K, Carninci P, Kawai J, Hayashizaki Y, Shinozaki K (2002) Monitoring the expression profiles of 7000 Arabidopsis genes under drought, cold and high-salinity stresses using a full-length cDNA microarray. Plant J 31:279-92

Somerville CR, Portis AR Jr (1982) Amutant of Arabidopsis thaliana which lacks activation of RuBP carboxylase in vivo. Plant Physiol 70: 381-387
Spreitzer RJ, Salvucci ME (2002) Rubisco:interactions, associations and the possibilities of a better enzyme. Annu Rev Plant Biol 53: 449-475
Streusand VJ, Portis AR Jr (1987) Rubisco activase mediates ATP-dependent activation of ribulose bisphosphate carboxylase. Plant Physiol 85: 154-152
To KY, Suen DF, Chen SCG (1999) Molecular characterization of ribulose-1,5-bisphosphate carboxylase/oxygenase activase in rice leaves. Planta 209:66-76
Vicente-Carbajosa, J, Moose, S P, Parsons, R, Schmidt, R J (1997) A maize zinc-finger protein binds the prolamin box in zein gene promoters and interacts with the basic leucine zipper transcriptional activator Opaque2. Proc Natl Acad Sci USA 94: 7685-7690
Wang Z-Y, Portis AR Jr (1992) Dissociation of ribulose-1,5-bisphosphate bound to ribulose-1,5-bisphosphate carboxylase/oxygenase and its enhancement by ribulose-1,5-bisphosphate caboxylase/oxygenase activase-mediated hydrolysis of ATP. Plant Physol 99: 1348-1353
Wang CY (1982) Physiological and biochemical responses of plants to chilling stress. HortScince 17:173-186
Werneke JM, Orgen WL (1989) Structure of an Arabidopsis thaliana cDNA ebcoding Rubisco activase. Nucleic Acids Res 17: 2871
Werneke JM, Zielinski RE, Orgen WL (1988) Structure and expression of spinach leaf coda encoding ribulose bisphosphate carboxylase / oxygenase activase. Proc Natl Acad Sci USA 85:787-791
Wheaton TA (1963) Physiological comparasions of plants sensitive and insensitive to chilling temperatures. PhD Thesis Univ of Calif, Davis
Wilson JM (1976) The mechanism of chill- and drought-hardening of Phaseolus vulgaris leaves. New Phytol 76: 257-270
Wolfgang B (1992) Low-temperature limitions of photosynthesis in three tropical Vigna species: A chlorophyll fluorescence study. Photosyn Res 34: 301-310
Yanagisawa S, Izui, K (1993) (1993) Molecular cloning of two DNA binding proteins of maize that are structurally different but interact with the same sequence motif. J Biol Chem 268: 16028-16036
Yanagisawa S, Sheen, J (1998) Involvement of maize Dof zinc finger proteins in tissue-specific and light-regulated gene expression. Plant Cell 10: 75-89
Yanagisawa S (1995) A novel DNA binding domain that may form a single zinc finger motif. Nucl Acids Res 23: 3403-3410
Yanagisawa S (2000) Dof1 and Dof2 transcription factors are associated with expression of multiple genes involved in carbon metabolism in maize. Plant J 21:281-8
Yang MT, Chen SL, Lin CY, Chen YM (2005) Chilling stress suppresses chloroplast development and nuclear gene expression in leaves of mung bean seedlings. Planta 221: 374-385
Yoshida R, Kanno A., Kameya T (1996) Cool temperature-induced chlorosis in rice plants. Plant Physiol 112: 585-590
Zhang N, Portis AR Jr (1999) Mechanism of light regulation of Rubisco: A specific role for the larger Rubisco activase isoform involving reductive activation by thioredoxin-f. Proc Natl Acad Sci USA 96:9438-9443
Zhang, B, Chen, W, Foley, R C, Büttner, M, Singh, KB (1995) Interactions between distinct types of DNA binding proteins enhance binding to ocs element promoter sequences . Plant Cell 7: 2241-2252
Zhang N, Kallis RP, Ewy RG, Portis AR Jr (2002) Light modulation of Rubisco in Arabidopsis requires a capacity for redox regulation of the larger Rubisco activase isoform. Proc Natl Acad Sci USA 99: 3330-3334
Zhang ZL, Xie Z, Zou X, Casaretto J, Ho TH, Shen QJ. (2004) A rice WRKY gene encodes a transcriptional repressor of the gibberellin signaling pathway in aleurone cells. Plant Physiol 134: 1500-1513
Zilian Z, Setsuko K (2000) Molecular cloning and characterization of cDNAs encoding two isoforms of ribulose-1,5-bisphosphate carboxylase/oxygenase activase in rice (Oryza sativa L.). J Biochem (Tokyo) 128:383-9.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/35687-
dc.description.abstract綠豆(Vigna radiata L. v.2937)屬於不耐寒植物,本實驗室要了解寒溫逆境(chilling stress)對於不耐寒植物的影響,利用差異式篩選法(differential screening)篩選出十三個會受到10℃明顯抑制的基因。本實驗室針對十三個基因中的Rubisco activase及cytochrome P450做更進一步研究,其中對於Rubisco activase基因表現特性有概日韻律,當受到寒溫逆境10℃處理時,概日韻律會受到改變,基因表現受到抑制,並且寒溫逆境會抑制Rubisco activase基因的轉錄作用。
本實驗室更進一步找出Rubisco activase基因的啟動子,長1,161bp。本論文就是針對此啟動子做進一步研究,利用啟動子刪除分析(promoter deletion assay)及阿拉伯芥轉殖系統,找出-521到-431的啟動子區域和低溫調節有關。並且經由凝膠延滯實驗(gel retardation),證明低溫會使綠豆產生特殊的細胞核蛋白質和-521到-431的啟動子區域做結合。
除了找出-521到-431的啟動子區域和低溫調節有關以外,也經由阿拉伯芥轉殖系統、凝膠延滯實驗及網路資料庫查詢的結果,推論出Rubisco activase基因的啟動子區域-160到-58也和低溫相關。另外也推論出啟動子區域-251到-151在正常生長下會促進Rubisco activase基因表現,但這種促進的作用在低溫下會被抑制。
zh_TW
dc.description.abstractThe mungbean (Vigna radiata L. v. 2937) is a chilling-sensitive plant. A cDNA library was constructed from poly(A)+ mRNA of 28℃-light-grown leaves for screening cold-suppressed nuclear genes. Rubisco activase(rca) gene was one of the 13 cold-suppressed nuclear genes which obtained by differential screening. Rubisco activase gene has single copy in mungbean (Vigna radiata L. v. 2937) and is light-inducible. Under 10℃ chilling stress, rca mRNA synthesis was repressed and circadian rhythm was interrupted. The upstream region (1,161bp) of rca gene had been cloned from mungbean by genomic walking method. The results of promoter deletion assay, Arabidopsis transformation and gel retardation have defined the promoter region from -521 to -431 which was related to the chilling suppression and also bound by nuclear proteins. Those nuclear proteins were isolated from cold-treated (3 days, 10℃) mungbeans. Using the PLACE website, the promoter region from -521 to -431 has a specific region(DOFCOREZM). In other study, the Dof2 protein of maize bound DOFCOREZM region and suppressed the activity of the C4pepc promoter (Yanagisawa, 2000). Dof analogies of mungbean maybe suppress rca gene expression under chilling stress.en
dc.description.provenanceMade available in DSpace on 2021-06-13T07:04:55Z (GMT). No. of bitstreams: 1
ntu-94-R91226017-1.pdf: 815734 bytes, checksum: 0c55b423339b8f7acad13974e9d27d8c (MD5)
Previous issue date: 2005
en
dc.description.tableofcontents標題 頁次
縮寫對照表 2
中文摘要 3
英文摘要 4
前言 5
材料與方法 15
結果 37
討論 41
參考文獻 49
附圖 60
附錄 67
dc.language.isozh-TW
dc.subject低溫逆境zh_TW
dc.subject綠豆zh_TW
dc.subjectRubisco Activaseen
dc.subjectChilling Stressen
dc.subjectMungbeanen
dc.title在低溫逆境下綠豆幼苗Rubisco Activase基因啟動子之順位因子的分析研究zh_TW
dc.titleAnalysis the Cis-elements of Mungbean Rubisco Activase Promoter under Chilling Stressen
dc.typeThesis
dc.date.schoolyear93-2
dc.description.degree碩士
dc.contributor.oralexamcommittee林彩雲,何國傑,靳宗洛,謝旭亮
dc.subject.keyword低溫逆境,綠豆,zh_TW
dc.subject.keywordChilling Stress,Mungbean,Rubisco Activase,en
dc.relation.page72
dc.rights.note有償授權
dc.date.accepted2005-07-27
dc.contributor.author-college生命科學院zh_TW
dc.contributor.author-dept植物科學研究所zh_TW
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