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  1. NTU Theses and Dissertations Repository
  2. 生命科學院
  3. 植物科學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/75576
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dc.contributor.author張淑貞zh_TW
dc.date.accessioned2021-07-01T08:13:58Z-
dc.date.available2021-07-01T08:13:58Z-
dc.date.issued1985
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(2) Arrigo, A.P. and C. Ahmad-Zadeh (1981) Immunofluorescence localization of the small heat shock proteins (hsp 23) in salivary gland cells of Drosophila melanogaster. Mol. Gen. Genet. 184:73-79
(3) Ashburner, M. and J. Bonner (1979) The induction of gene activity in Drosophila by heat shock. Cell 17: 241-254
(4) Bewley, J.D. and K.M. Larsen (1982) Differences in the responses to water stress of growing and nongrowing regions of maize mesocotyles: protein synthesis on total free and membrane-bound polyribosome fractions. J. Exp. Bot. 33: 406-415
(5) Binari, L.L.W. and R.H. Racusen (1983) Membrane-associated ATPases in isolated secretory vesicles. Plant Physiol. 71: 594-597
(6) Booz, M.L. and R.T. Travis (1980) Electrophoretic comparison of polypeptides from enriched plasma membrane fractions from developing soybean roots. Plant Physiol. 66: 1037-1043
(7) Brown, I.R., J.W. Cosgrove and B.D. Clark (1982) Physiologically relevant increases in body temperature induce the synthesis of a heat-shock protein in mammalian brain and other organs. pp. 361-367, in Heat Shock from Bacteria to Man. (eds: M.L. Schlesinger, M. Ashburner and A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(8) Chen, Y.M., S. Kamisaka and Y. Masuda (1986) Enchancing effects of heat shock and gibberellic acid on the thermotolerance in etiolated Vigna Radiata (L.) physiological aspects on thermotolerance. Physiol. Plant. (in press)
(9) Dubois, M., K.A. Giles, J.K. Hamilton, P.A. Rebers and F. Smith (1956) Colorimetric method for determination of sugars and related substances. Anal. Chem. 28: 350-356
(10) Hendricks, S.B. and R.B. Taylorson (1976) Variation in germination and amino acid leakage of seeds with temperature related to membrane phase change. Plant Physiol. 58: 7-11
(11) Hodges, T.K., R.T. Leonard (1974) Purification of a plasma membrane-bound adenosine triphosphatase from plant roots. Methods Enzymol. 32B: 392-406
(12) Ingle, J. and J.L. Key (1965) A comparative evaluation of the synthesis of DNA-like RNA in excised and intact plant tissue. Plant Physiol. 40: 1212-1219
(13) Key, J.L., C.Y. Lin and Y.M. Chen (1981) Heat shock proteins of higher plants. Proc. Natl. Acad. Sci. U.S.A. 78: 3526-3530
(14) Key, J.L., C.Y. Lin, E. Ceglarz and F. Schoffl (1982) The heat-shock response in plants: physiological considerations. pp. 329-335, in Heat Shock from Bacteria to Man. (eds: M.L. Schlesinger, M. Ashburner, A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(15) Kirschmann, C., I. Levy and A. de Vries (1973) stabilization by cations of microsomal ATPase against heat inactivation. Biochim. Biophys. Acta 330: 167-172
(16) Laemmli, U.K. (1970) Cleavage of strucutral proteins during the assembly of the head of bacteriophage T4. Nature 227: 680-685
(17) Levitt, L. (1980) Response of Plants to Environmental Stress. Vol.1: Chilling, Freezing and High Temperature Stresses. Academic Press, New York.
(18) Lewis, M., P.J. Helmsing and M. Ashburner (1975) Parallel changes in puffing activity and patterns of proteins synthesis in salivary glands of Drosophila. Proc. Natl. Acad. Sci. U.S.A. 72: 3604-3608
(19) Li, G.C., D.C. Shrieve and Z. Werb (1982) Correlations between synthesis of heat-shock proteins and development of tolerance to heat and to adriamycin in Chinese hamster fibroblasts: heat shock and other inducers. pp. 395-404, in Heat Shock from Bacteria to Man. (edited by M.L. Schlesinger, M. Ashburner, A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(20) Lin, C.Y., J.K. Roberts and J.L. Key (1984) Acquisition of thermotolerance in soybean seedlings: Synthesis and accumulation of heat shock proteins and their cellular localization. Plant Physiol. 74: 152-160
(21) Lin, C.Y., Y.M. Chen and Joe L. Key (1985) Solute leakage in soybean seedlings under various heat shock regimes. Plant Cell Physiol. 26 (8): 1493-1498
(22) Loomis, W.F. and S.A. Wheeler (1980) Heat shock repsonse of Dictyostelium. Dev. Biol. 79: 399-408
(23) Loomis, W.F. and S.A. Wheeler (1982) Chromatin-associated heat shock proteins of Dictyostelium. Dev. Biol. 90: 412-418
(24) Loomis, W.F. and S.A. Wheeler (1982) The physiological role of heat-shock proteins in Dictyostelium. pp. 353-359, in Heat Shock from Bacteria to Man. (eds: M.L. Schlesinger, M. Ashburner, A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(25) Lowry, O.H., N.J. Rosebrough, A.L. Farr and R.J. Randall (1951) Protein measurement with the Folin-phenol reagent. J. Biol. Chem. 193: 265
(26) McAlister, L. and D.B. Finkelstein (1980) Heat shock proteins and thermal resistance in yeast. Biochem. Biophys. Res. Commun. 93: 819-824
(27) Mitchell H.K. and L.S. Lipps (1975) Rapidly labeled proteins on the salivary gland chromosome of Drosophila melanogaster. Biochem. Genet. 13: 585-602
(28) Mitchell, H.K. and N.S. Petersen (1982) Heat-shock induction of abnormal morphogenesis in Drosophila. pp. 337-344, in Heat Shock from Bacteria to Man. (eds: M.L. Schlesinger, M. Ashburner, A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(29) Moore, S. and W.H. Stein (1954) A modified ninhydrin reagent for the photometric determination of amino acids and related compounds. J. Biol. Chem. 211: 907-913
(30) Penney, C.L. (1976) A simple micro-assay for inorganic phosphate. Anal. Biochem. 75: 201-210
(31) Poole, R.J. (1978) Energy coupling for membrane transport. Annu. Rev. Plant Physiol. 29: 437-460
(32) Schlesinger, M.J., G. Aliperti and P.M. Kelley (1982) The response of cells to heat shock. Trends. Biochem. Sci. 1: 222-225
(33) Shibaoka, H. and K.V. Thimann (1970) Antagonisms between kinetin and amino acids. Plant Physiol. 46: 212-220
(34) Sze, Heven (1980) Nigericin-stimulated ATPase activity in microsomal vesicles of tobacco callus. Proc. Natl. Acad. Sci. U.S.A. 77: 5504-5908
(35) Thomas, G.P., M.B. Mathews (1982) Control of polypeptide chain elongation in the stress response: a novel translational control. pp. 207-212, in Heat Shock from Bacteria to Man. (eds: M.L. Schlesinger, M. Ashburner, A. Tissieres) Cold Spring Harbor Laboratory, Cold Spring Harbor, New York.
(36) Velazquez, J.M., B.J. DiDomenico & S. Lindquist (1980) Intercellular localization of heat shock proteins in Drosophila. Cell 20: 679-689
(37) Vincent, M. and R.M. Tanguay (1979) Heat shock induced proteins present in the cell nucleus of Chiromonus tentans salivary gland. Nature 281: 501-503
(38) Wu, M.T. and S.J. Wallner (1983) Heat stress reponses in cutured plant cells. Plant Physiol. 72: 817-820
(39) Yamamori, T. and T. Yura (1982) Genetic control of heat-shock protein synthesis and its bearing on growth and thermal resistance in Esherichia coli K-12. Proc. Natl. Acad. Sci. U.S.A. 79: 860-864
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/75576-
dc.description.abstract本論文乃以生長兩天的綠豆白化幼苗?實驗材料,探討在不同溫度壓迫及熱保護的情況下,對於其(一)幼苗生長(二)幼苗之氨基酸和醣類的滲出(三)細胞膜上K+-ATPase活性(四)細胞膜蛋白質類型(五)細胞質內遊離的及膜上的多核糖體(六)遊離及附於遊離核糖體上之RNase活性等的影響。
實驗結果顯示,幼苗的生長能力與細胞膜上K+-ATPase的活性隨著壓迫溫度的升高而降低,同時多核糖體的含量百分比亦隨著壓迫溫度的升高而下降,至於幼苗氨基酸和醣類的滲出量則隨著壓迫溫度的升高而有所增加。另外又檢查附於遊離核糖體上之RNase的活性,發現附於遊離核糖體上之RNase活性隨著壓迫溫度的升高而有上升的趨勢。
綠豆白化幼苗以40℃先處理1小時之後,再給予45℃ 2小時的處理,則其生長能力、K+-ATPase活性及遊離的和膜上的多核糖體的含量皆高於直接給予45℃處理的幼苗。由此可見40℃ 1小時的前處理對綠豆幼苗的生長能力、K+-ATPase活性及多核糖體都有保護的作用,使幼苗能夠忍受繼之而來的致死溫度(45℃)的壓迫。
根據細胞膜上K+-ATPase活性的變化與細胞內氨基酸和醣類滲出的現象,可知溫度壓迫對綠豆幼苗的細胞膜造成了傷害。並且發現40℃ 1小時對細胞膜亦有保護,使之能抵禦後來的致死溫度(45℃)壓迫。另外,又發現溫度壓迫後的幼苗其遊離核糖體的含量百分比與附於遊離核糖體上之RNase活性有正相關性,RNase活性強的幼苗,其monosome的含量百分比較高,RNase活性弱的幼苗,其monosome的含量百分比較低。推測可能是由於附於核糖體上的RNase活性增強,加強mRNA的分解,造成多核糖體瓦解成單核糖體的結果。
zh_TW
dc.description.abstractTwo-day-old etiolated mungbean seedlings (Phaseolus radiatus L.) were used to study solute leakage, free and membrane-bound ribosomes and membrane associated K+-ATPase & RNase activities in relation to seedling growth under various heat shock treatments.
The 45℃ (3hr.) treatments (a lethal treatments) caused continuous leakage of amino acids and sugars out of the cells to the incubation medium, decrease in both free and membrane-bound polysome levels, decrease in K+-ATPase activity but increase in RNase activity, which were close related to the impairment of seedling growth.
A pretreatment at 40℃ for 1 hr. prior to a lethal treatment, however, reduced the solute leakage, maintained a certain level of polysomes and K+-ATPase activity, and reduced the RNase activity. As a result seedlings acquired the thermal tolerance and continued to grow even after a lethal treatment.
en
dc.description.provenanceMade available in DSpace on 2021-07-01T08:13:58Z (GMT). No. of bitstreams: 0
Previous issue date: 1985
en
dc.description.tableofcontents一、中文摘要………………………………………………………………1
二、英文摘要………………………………………………………………3
三、前 言…………………………………………………………………4
四、化學藥品縮寫對照……………………………………………………8
五、實驗材料與方法………………………………………………………9
六、結 果…………………………………………………………………19
七、討 論…………………………………………………………………40
八、參考文獻………………………………………………………………47
dc.language.isozh-TW
dc.title溫度壓迫對綠豆白化幼苗生長,細胞膜及多核糖體的影響zh_TW
dc.titleEffect of various heat shock on solute leakage, ribosomes and activities of ATPase & RNase in mungbean seedlingsen
dc.date.schoolyear74-2
dc.description.degree碩士
dc.relation.page54
dc.rights.note未授權
dc.contributor.author-dept生命科學院zh_TW
dc.contributor.author-dept植物科學研究所zh_TW
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