請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/76269
完整後設資料紀錄
DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.author | Ssu-Fan Wang | en |
dc.contributor.author | 王斯範 | zh_TW |
dc.date.accessioned | 2021-07-01T08:19:42Z | - |
dc.date.available | 2021-07-01T08:19:42Z | - |
dc.date.issued | 1997 | |
dc.identifier.citation | 李?宇,1993,紅檜五個族群同位酵素變異之研究。國立臺灣大學森林學研究所碩士論文。63頁。 李?宇、薑家華、林讚標、王亞男,1995,紅檜五個族群同位酵素變異之研究。中華林學季刊28(1): 3-20. 林渭訪、薛承建,1950,台灣之木材。台灣銀行金融研究室編。pp.95-100. 胡大維,1975,紅檜與扁柏種源後裔試驗初步結果及其間天然雜交之可能性。台灣林業1(13): 28-30. 莊榮輝,1985,水稻蔗糖合成脢之研究。臺灣大學農化系博士論文。pp. 55-74. 楊莉芬,1993,台灣扁柏族群之遺傳結構。國立中興大學植物研究所碩士論文。72頁。 Adams, W. T., and D. S. Birkes. 1990. Estimating mating system in forest tree populations. In: Hattemer, H. H., and S. Fineschi. (eds.) Biochemical Markers in the Population Genetics of Forest Trees. SPB Academic Publishing, The Hagne, Netherlands. Adams, W. T., D. B. Neale, A. H. Doerksen, and D. B. Smith. 1990. Inheritance and linkage of isozyme variants from seed and vegetative bud tissue in coastal Douglas-fir (Pseudotsuga menziesii var. menziesii (Mirb.) Franco). Silvae Genetica 39(3-4): 153-167. Arus, P., and T. J. Orton. 1983. Inheritance and linkage relationships of isozyme loci in Brassica oleracea. J. Hered. 74: 405-412. Beaulieu, J., and J. P. Simon. 1994. Inheritance and linkage relationships of allozymes in Pinus strobus L. Silvae Genetica 43(4): 253-260. Beaulieu, J., and J. P. Simon. 1995. Mating system in natural populations of eastern white pine in Quebec. Can. J. For. Res. 25: 1697-1703. Brown, A. H. D., and B. S. Weir. 1983. Measuring genetic variability in plant populations. In: Thanksley, S. D., and T. J. Orton (eds.). Isozyme in Plant Genetics and Breeding, Part A. Elsevier, Amsterdam. pp. 219-239. Chagala, E. M. 1996. Inheritance and linkage of allozymes in Pinus strobus L. Silvae Genetica 45(4): 181-141. Chang, Y. X., P. D. Bruce, and C. Y. Francis. 1991. The mating system in natural populations of Thuja orientalis. Can. J. For. 21: 333-339. Cheliak, W. M., and J. A. Pitel. 1984. Techniques for starch gel electrophoresis of enzymes from forest tree species. Can. For. Serv. Petawawa Nat. For. Inst. Infor. Rep. PI-X-42. pp. 19-45. Cheliak, W. M., and J. A. Pitel. 1985. Inheritance and linkage of allozymes in Larix laricina. Silvae Genetica 34(4-5): 142-148. Cheliak, W. M., K. Morgan, C. Strobeck, F. C. H. Yeh and B. P. Dancik. 1983. Estimation of mating system parameters in plant populations using EM algorithm. Theor. Appl. Genet. 65: 157-161. Clegg, M. T. 1980. Measuring plant mating systems. BioScience 30(12): 814-818. Eckert, R. T., R. T. Joly., and D. B. Neale. 1981. Genetics of isozyme variants and linkage relationships among allozyme loci in 35 eastern white pine clones. Can. J. For. Res. 11: 573-579. El-kassaby, Y. A., O. Sziklai, and F. C. Yeh. 1982. Inheritance of allozyme variations in coastal Douglas fir (Pseudotsuga menziesii var. menziesii). Can J. Genet. Cytol. 24: 325-335. El-kassaby, Y. A., F. C. Yeh, and O. Sziklai. 1981. Estimation of the outcrossing rate of Douglas-fir (Pseudotsuga menziesii (Mirb.) Franco) using allozyme polymorphisms. Silvae Genetica 30(6): 182-184. El-Kassaby, Y. A., M. D. Maagher, J. Parkinson, and F. T. Portlock. 1987. Allozyme inheritance, heterozygosity and outcrossing rate among Pinus monticola near Ladysmith, British Columbia. Heredity 58: 173-181. Farris, M. A., and J. B. Mitton. 1984. Population density, outcrossing rate, and heterozygote superiority in ponderosa pine. Evolution (Lawrence, Kans.) 38: 1151-1154. Feret, P. P. 1971. Isozyme variation in Picea glauca (Moech) Voss seedlings. Silvae Genetica 20: 46-50. Franklin, E. C. 1972. Genetic load in loblolly pine. Amer. Nat. 106: 262-265. Furnier, G. R., and W. T. Adams. 1986. Mating system in natural populations of Jeffrey Pine. Amer. J. Bot. 73: 1002-1008. Gottlieb, L. D. 1977. Electrophoretic evidence and plant systematics. Ann. Missouri Bot. Gard. 64: 161-180. Hamrick, J. L., and M. D. Loveless. 1989. Genetic structure of tropical tree populations: associations with reproductive biology. In: Bock, J. and Y. B. Linhart (eds.). Plant Evolutionary Ecology. Westview Press, Boulder, CO. Harris, H. 1966. Enzyme polymorphism in man. Proc. Roy. Soc. Ser. B, 164: 298-310. Harry, D. E. 1986. Inhertiance and linkage of isozyme variants in incense cedar. J. Hered. 77: 261-266. Hartl, D. L., 1977. Applications of meiotic drive in animal breeding and population control. In: Pollak, E., O. Kempthorne, and T.B. Bailey Jr. (eds.) Proc. Int. Conf. Quant. Genet. Iowa State University Press. Ames (USA). pp. 63-88. Hedrick, P. W. 1983. The diversity of genetic variation. In: Suzanne, L. (ed.). Genetics of Populations. VNR Company, U.S.A. pp. 7-8. Hsiao, J. Y. 1980. A biochemical systematic study of the Genus Chamaecyparis in Taiwan. Proc. Natl. Counc. ROC 4(1): 69-77. Huang, Q. Q., N. Tomaru, L. H. Wang, and K. Ohba. 1994. Genetic control of isozyme variation in Masson Pine, Pinus massoniana Lamb. Silvae Genetica 43(5-6): 285-292. Hubby, J. L., and R. C. Lewontin. 1966. A molecular approach to the study of genic heterozygosity in natural populations. I. The number of alleles at different loci in Drosophila pseudoobscura. Genetics 54: 577-594. Jarret, R. L., and R. E. Litz. 1986. Enzyme polymorphism in Musa acuminata Colla. J. Hered. 77: 183-188. Knowles, P., G. R. Furnier, M. A. Aleksiuk, and D. J. Perry. 1987. Significant levels of self-fertilization in natural populations of tamarack. Can. J. Bot. 65: 1087-1091. Kuittinen, H., and O. Savolainen. 1992, Picea omorika is a self-fertile but outcrossing conifer. Heredity 68: 183-187. Lewandowski, A., J. Burczyk, and L. Meinartowicz. 1992. Inheritance and linkage of some allozymes in Taxus baccata L. Silvae Genetica 41(6): 342-347. Li, H. L., and H. Keng. 1994. Cupressaceae. pp.586-595. In: Huang, T. C. et al. (eds.) Flora of Taiwan 1. (2ed). Lin, T. P., T. Y. Lee., L. F. Yang, Y. L. Chung, and J. C. Yang. 1994. Comparison of the allozyme diversity in several populations of Chamaecyparis formosensis and Chamaecyparis taiwanensis. Can. J. For. Res. 24: 2128-2134. Lundkvist, K. 1979. Allozymes frequency distributions in four Swedish populations of Norway spruce (Picea abies K.). I. Estimations of genetic variation within and among populations, genetic linkage and a mating system parameter. Hereditas 90: 127-143. Markert, C. L., and F. Moller. 1959. Multiple forms of enzymes: tissue, ontogenetic and species specific patterns. Proc. Natl. Acad. Sci. USA 45: 753-763. Millar, C. I., and K. A. Marshall. 1991. Allozyme variation of Port-Orford-cedar (Chamaecyparis lawsoniana): Implications for genetic conservation. Forest Science 37(4): 1060-1077. Mitton, J. B. 1992. The dynamic mating systems of conifers. New Forests 6: 197-216. Mitton, J. B., Y. B. Linhart, M. L. Davis, and R. B. Strugeon. 1981. Estimation of outcrossing in ponderosa pine, Pinus ponderosa Laws. from patterns of segregation of protein polymorphism and from freguencies of albino seeedlings. Silvae Genetica 30: 117-121. Morgante, M., G. G. Vendramin, and R. Giannini. 1993, Inheritance and linkage of isozyme variants of Pinus leucodermis Ant. Silvae Genetica 42(4-5): 231-237. Muona, O., R. Yazadani, and G. Lingqvist. 1987. Analysis of linkage in Picea abies. Hereditas 106: 31-36. Neale, D. B., and W. T. Adams. 1981. Inheritance of isozyme variants in seed tissue of balsam fir (Abies balsamea) Can. J. Bot. 59: 1285-1291. Neale, D. B., and W. T. Adams. 1985a. The mating system in natural and shelterwood stands of Douglas-fir. Theor. Appl. Genet. 71: 201-207. Neale, D. B., and W. T. Adams. 1985b. Allozyme and mating system variation in balsam fir (Abies balsamea) across a continuous elevational transect. Can. J. Bot. 633: 2448-2453. Perry, D. J., and P. Knowles. 1989. Inheritance and linkage relationship of allozymes of eastern white cedar (Thuja occidentalis) in Northwestern Ontario. Genome 32: 245-250. Perry, D. J., and P. Knowles. 1990. Evidence of high self-fertilization in natural populations of eastern white cedar (Thuja occidentalis). Can. J. Bot. 68: 663-668. Prakash, S., R. C. Lewontin, and J. L. Hubby. 1969. A molecular approach to the study of genic heterozygosity in natural populations. IV. Patterns of genic variation in central, marginal and isolated populations of Drosophila pseudoobscura. Genetics 61: 841-858. Ritland, K. 1988. MULTILOCUS ESTIMATION PROGRAM. Department of Botany, University of Toronto. Ritland, K., and S. Jain. 1981. A model for the estimation of outcrossing rate and gene frequencies using n independent loci. Heredity 47(1): 35-52. Rudin, D. 1977. Leucine-amino-peptidases (LAP) from needles and macrogametophytes of Pinus sylvestris L. Hereditas 85: 219-226. Sandler, L., and E. Novitski. 1957. Meiotic drive as an evolutionary force. Amer. Nat. 91: 105-110. Scandalios, J. G. 1969. Genetic control of multiple molecular forms of enzymes in plants: A review. Biochem. Grenet. 3: 37-39. Scandalios, J. G. 1974. Isozyme in development and differentiation. Ann. Rev. Plant Physiol. 25: 225-258. Schroeder, S. 1989. Isozyme polymorphyisms in Silver Fir (Abies alba Mill.). Silvae Genetica 38(3-4): 130-133. Shaw, C. R. 1965. Electrophoretic variation in enzymes. Science 149: 936-946. Shaw, D. V., and R. W. Allard. 1982. Estimation of outcrossing rate in Douglas-fir using isozyme markers. Theor. Appl. Genet. 62: 113-120. Shaw, D. V., A. L. Kahler, and R. W. Allard. 1981. A multilocus estimaor of mating system parameeters in plant populations. Proc. Natl. Acad. Sci. USA 78: 1298-1302. Sorensen, F. 1969. Embryonic genetic load in Douglas-fir; Psedotsuga menziesii var. 'menziesii'. Amer. Nat. 103: 389-398. Strauss, S. H., and M. T. Conkle. 1986. Segregation, linkage, and diversity of allozyme in knobcone pine. Theor. Appl. Genet. 72: 483-493. Torres, A. M., R. K. Soost, and U. Diedenhofen. 1978. Leaf isozymes as genetic markers in Citrus. Amer. J. Bot. 65(8): 869-881. Uchida, K., Y. Tsumura., and K. Ohba. 1991 Inheritance of isozyme variants in leaf tissues of hinoki, Chamaecyparis obtusa, and allozyme diversity of two natural forests. Japan. J. Breed. 41: 11-24. Wang, Z. M., K. Nagasaka, and K. Tanaka. 1996. Inheritance and linkage relationships of isozymes of Picea glehnii (Masters.) Silvae Genetica 45(2-3): 136-141. Weeden, N. F. 1983. Evolution of plant isozyme. In: Tankleys, S. D., and T. J. Orton (eds.). Isozyme in Plant Genetics and Breeding, Part A. Elsevier, Amsterdam. pp. 175-205. Xie, C. Y., B. P. Dancik, and F. C. Yeh. 1991a. Inheritance and linkage of isozymes in Thuja orientalis. J. Hered. 82: 329-334. Xie, C. Y., B. P. Dancik, and F. C. Yeh. 1991b. The mating system in natural populations of Thuja orientalis. Can. J. For. Res. 21: 333-339. Xie, C. Y., F. C. Yeh, B. P. Dancik, and C. Strobeck. 1991. Joint estimation of immigration and mating system parameters in gymnosperms using the EM algorithm. Theor. Appl. Genet. 83: 137-140. Yeh, F. C., and K. Morgan. 1987. Mating system & multilocus associations in a natural population of Pseudotsuga menziesii (Mirb.) Franco. Theor. Appl. Genet. 73: 799-808. Zamir, D., and G. Ladizinsky. 1984. Genetics of allozyme variants and linkage groups in lentil. Euphytica 33: 329-336. | |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/76269 | - |
dc.description.abstract | 使用採自棲蘭山天然林的13株紅檜母樹和8株台灣扁柏母樹之種子,研究兩樹種之同功脢遺傳、基因座連鎖及異交率。分別取其雌配子體(megagametophyte)及胚(embryo),以澱粉膠體電泳技術分析紅檜4種酵素系統8個基因座及台灣扁柏5種酵素系統11個基因座,其中6個基因座具多形性(polymorphism)。電泳所得之結果,利用卡方測驗檢定其雌配子體同功脢帶的分離情形及各多形性基因座間的連鎖關係,並配合胚的電泳結果計算其異交率。 結果發現,紅檜在同一母樹具有2個以上多形性基因座之比例大於台灣扁柏,此與前人研究發現紅檜遺傳變異較台灣扁柏為大的結果相吻合。而紅檜Idh-1, Pgm-1,及Skdh-2基因座,以及台灣扁柏的Mdh-3及Skdh-1基因座的同功脢帶分離比,在部份母樹有偏離孟德爾遺傳定律所預期1:1分離比之情形。亦發現台灣扁柏Mdh-3/Skdh-1兩基因座間有連鎖關係,但紅檜在所分析的基因座間不存在有連鎖關係。另外,紅檜族群之平均多基因座異交率為0.823,而台灣扁柏族群多基因座異交率為0.745,均較一般針葉樹異交率之平均值(0.92)為低,顯示二樹種族群內有相當程度的自交情形存在。同時紅檜族群1之平均單基因座異交率較其多基因座異交率低,則顯示該族群內有近親交配情形存在。 | zh_TW |
dc.description.abstract | The seeds from 13 trees of Chamaecyparis formosensis and 8 trees of C. obtusa var. formosana collected from natural stands in Chilanshan, Ilan County were used to study the inheritance and linkage relationships of allozymes, and for the estimation of outcrossing rate. Starch gel electrophoresis was employed to asssay the 4 enzyme systems encoded by 8 loci of C. formosensis and the 5 enzyme systems encoded by 11 loci of C. obtusa var. formosana in their megagametophytes and embryos separately. Six of these loci were determined to be polymorphic. The segregation of alleles of each polymorphic loci and linkage relationships of 2-locus combinations among polymorphic loci were tested by chi-square test. The estimation of outcrossing rate was proceeded based on comparison between allozyme variants of the megagametophyte and the embryo in the same seed. The proportion of trees which had more than one heterozygous loci in C. formosensis was found to be greater than C. obtusa var. formosana. This result agrees with that the genetic diversity of C. formosensis is greater than C. obtusa var. formosana porposed by previous researchers. The segregations of allozyme variants show significant deviations from expected 1:1 ratio at Idh-1, Pgm-1, and Skdh-2 loci in some trees of C. formosensis, and Mdh-3 and Skdh-1 loci in some trees of C. obtusa var. formosana. The locus pair of Mdh-3/Skdh-1 was found to be linked in C. obtusa var. formosana. But no linkage relationship was found among the loci analyzed in C. formosensis. In addition, the average multilocus outcrossing rate of populations of C. formosensis is 0.823 and C. obtusa var. formosana is 0.745. These two estimates were lower than the average outcrossing rate of most other conifers (0.92). These results show relatively high selfing rate in the sampled populations. It is inferred that some inbreeding occurred within population 1 of C. formosensis because of the average single-locus outcrossing rate was lower than the multilocus outcrossing rate. | en |
dc.description.provenance | Made available in DSpace on 2021-07-01T08:19:42Z (GMT). No. of bitstreams: 0 Previous issue date: 1997 | en |
dc.description.tableofcontents | 圖目次……………………………………………………II 表目次……………………………………………………III 中文摘要……………………………………………………IV 英文摘要……………………………………………………V 壹、前言……………………………………………………1 貳、材料與方法……………………………………………………11 參、結果……………………………………………………19 肆、討論……………………………………………………44 伍、參考文獻……………………………………………………53 陸、附錄……………………………………………………62 附錄一、膠體和電極緩衝溶液配方及其電泳條件……………………………………………………62 附錄二、澱粉膠體電泳裝置圖……………………………………………………63 附錄三、染色溶液配方及注意事項……………………………………………………64 附錄四、縮寫表……………………………………………………67 | |
dc.language.iso | zh-TW | |
dc.title | 紅檜與台灣扁柏的同功脢遺傳、基因座連鎖與異交率研究 | zh_TW |
dc.title | Inheritance and Linkage Relationships of Allozymes, and Estimation of Outcrossing Rate in Natural Populations of Chamaecyparis formosensis Matsum. and C. obtusa Sieb. & Zucc. var. formosana(Hay.) Rehder | en |
dc.date.schoolyear | 85-2 | |
dc.description.degree | 碩士 | |
dc.relation.page | 61 | |
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 |
顯示於系所單位: | 植物科學研究所 |
文件中的檔案:
沒有與此文件相關的檔案。
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。