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  1. NTU Theses and Dissertations Repository
  2. 生物資源暨農學院
  3. 昆蟲學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/30134
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor張慧羽(Hwei-yu Chang)
dc.contributor.authorTing-yi Kungen
dc.contributor.author龔庭毅zh_TW
dc.date.accessioned2021-06-13T01:38:34Z-
dc.date.available2011-07-18
dc.date.copyright2007-07-18
dc.date.issued2007
dc.date.submitted2007-07-11
dc.identifier.citationBachtrog, D. 2006. The speciation history of the Drosophila nasuta complex. Genet. Res., Camb. 88: 13-26.
Chang, H., D. Wang, and F. J. Ayala. 1989. Mitochondrial DNA evolution in the Drosophila nasuta subgroup of species. J. Mol. Evol. 28: 337-348.
Charlesworth, B. 1996. The evolution of chromosome sex determination and dosage compensation. Curr. Biol. 6: 149-162.
Cheng, A. N. 1999. Sex-chromosomal change at the early stage of cease-recombination. MS thesis, National Taiwan University (in Chinese).
Creighton, H. and B. McClintock. 1931. A correlation of cytological and genetical crossing-over in Zea mays. Proc Natl Acad Sci USA 17: 492-497.
Gloor, G. B., C. R. Preston, D. M. Johnson-Schlitz, N. A. Nassif, R. W. Phillis, W. K. Benz, H. M. Robertson and W. R. Engels. 1993. Type I repressors of P element mobility. Genetics 135: 81-95.
Haldane, J. B. S. 1922. Sex ratio and unisexual sterility in hybrid animals. J. Genet. 12: 101-109.
Hamilton, W. D. 1967. Extraordinary sex ratios. Science 156: 477-488.
Jaenike, J. 1996. Sex-ratio meiotic drive in the Drosophila quinaria group. Am. Nat. 148: 237-254.
Lucchesi, J. C. 1978. Gene dosage compensation and the evolution of sex chromosome. Science 202: 711-716.
Morgan, T. H. 1912. Complete linkage in the second chromosome of the male of Drosophila. Science 36: 719-720.
Muller, H. J. 1918. Genetic variability, twin hybrids and constant hybrids in a case of balanced lethal factors. Genetics 3: 422-499.
Muller, H. J. 1964. The relation of recombination to mutational advance. Mutat. Res. 1: 2-9.
Novitski, E., W. J. Peacock, and J. Engel. 1965. Cytological basis of “sex ratio” in Drosophila pseudoobscura. Science 148: 516-517.
Rice, W. R. 1984. Sex chromosomes and the evolution of sexual dimorphism. Evolution 38: 735-742.
Rice, W. R. 1987. The accumulation of sexually antagonistic genes as a selective agent promoting the evolution of the reduced recombination between primitive sex chromosomes. Evolution 41: 911-914.
Rice, W. R. 1992. Sexually antagonistic genes: Experimental evidence. Science 256: 1436-1439.
Rice, W. R. 1994. Degeneration of nonrecombining chromosome. Science 263: 230-232.
Rice, W. R. and A. K. Chippindale. 2002. The evolution of hybrid infertility: Perpetual coevolution between gender-specific and sexually antagonistic genes. Genetica (special issue on speciation) 116: 179-188.
Singh, B. N. and R. Banerjee. 1996. Spontaneous recombination in males of Drosophila bipectinata. J. Biosci. 21: 775-779.
Yang, Y. Y. 2001. The Evolutionary Genetics of Drosophila albomicans. PhD dissertation, National Taiwan University.
Yang, Y. Y., F. J. Lin, and H. Chang. 2004. Sex ratio distortion in hybrids of Drosophila albomicans and D. nasuta. Zool. Stud. 43: 622-628.
Yu, Y. C., F. J. Lin, and H. Chang. 1997. Karyotype polymorphism in hybrid populations of Drosophila nasuta and D. albomicans. Zool. Stud. 36: 251-259.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/30134-
dc.description.abstract三個經由紅果蠅 (Drosophila albomicans, 2n = 6) 雌蟲與輝顏果蠅 (D. nasuta, 2n = 8) 雄蟲雜交而得到的實驗室雜交品系 (H10、Hn1 和 Hn2) 被用來研究染色體停止重組之後發生的改變。由於這些雜交品系的雄蟲具有特殊核型 (2n = 7),以致於一條源自於揮顏果蠅的第三號染色體,在品系中如同 Y 染色體,成為另一條無重組染色體。我們稱呼這條無重組的三號染色體為 “類似 Y 的 (Y-like)” 染色體;經由交配與回交的實驗,利用 PCR-RFLP 分子標記,去驗證是否有性別拮抗因子或隱性致死因子堆積在這條無重組的染色體上。較老的 (H10,約 280代) 類似 Y 的染色體和較新的 (Hn1 與 Hn2,約 20 代) 相比,的確顯示較高的隱性不良影響。相對的,有一條較新的類似 Y 的染色體顯示性別拮抗因子,而較老的卻沒有。我們提出的假說是:性別拮抗因子的堆積發生在染色體停止重組的早期,後來則由於全面性的隱性不良因子的堆積而不復顯現。此外,這個實驗系統的性染色體間發生兩種形式的共適應:1. 減數分裂驅動因子 (meiotic driver) 與其抑制者 (suppressor) 間的交互作用,及 2. 類似 Y 的染色體對它同源染色體的依賴性;都可能是導致性別拮抗因子在晚期觀察不到的原因。zh_TW
dc.description.abstractThree hybrid strains, each started with a cross between one Drosophila albomicans female and one D. nasuta male, were used as a resource to study evolutionary changes on a non-recombining chromosome because they contained a fixed Y-like chromosome. Sexually antagonistic alleles and recessive deleterious alleles on this non-recombining Y-like chromosome can be revealed by proper cross schemes. Old (ca. 280 generations) Y-like chromosomes did show an increased accumulation of recessive deleterious alleles comparing to new (ca. 20 generations) ones. Only one new Y-like chromosome showed sexually antagonistic effect on both female viability and male fertility, but none was found in old ones. We proposed that the accumulation of sexually antagonistic alleles may occur on a Y-like chromosome at an early stage after the cease of recombination, but not at a later stage because the accumulation of recessive deleterious alleles is much more overwhelming. Furthermore, two forms of coadaptation between sex chromosomes, the interaction between a meiotic driver and its suppressor, and dependence of a Y-like chromosome on its homologue, were also probable reasons why sexual antagonism was not observed on old Y-like chromosomes.en
dc.description.provenanceMade available in DSpace on 2021-06-13T01:38:34Z (GMT). No. of bitstreams: 1
ntu-96-R94632004-1.pdf: 1067782 bytes, checksum: 2fa63341dc33f20f36282044b1173737 (MD5)
Previous issue date: 2007
en
dc.description.tableofcontentsChinese abstract (中文摘要) i
Abstract ii
Table of Contents iii
List of Tables iv
Legend of Figures v
Introduction 1
Materials and Methods 6
1. The flies 6
2. Molecular markers 7
3. Cross experiments 8
Results 11
1. Sexually antagonistic effect on viability of females 11
2. Sexually antagonistic effect on fertility 12
3. Recessive deleterious alleles 12
4. Coadaptation of a Y-like chromosome with its homologous chromosome 14
4.1 The effect of a meiotic driver and its suppressor on offspring number and sex ratio 14
4.2 The dependence caused the reduction of male viability 15
Discussion 16
1. Accumulation of sexually antagonistic alleles 16
2. Accumulation of recessive deleterious alleles 18
3. The effect of meiotic driver 19
4. Incompatibility between the Y-like chromosome and D. nasuta 3rd chromosome 19
Conclusion 21
References 23
Appendix 25
A. The hybrid strains 25
B. Primer information 26
C. DNA Preparation protocol 27
D. The percentage of seven genotypes in F3 progeny 28
dc.language.isoen
dc.subject性別拮抗zh_TW
dc.subject隱性不良zh_TW
dc.subject減數分裂驅動zh_TW
dc.subject抑制因子zh_TW
dc.subjectsuppressoren
dc.subjectsexually antagonistic allelesen
dc.subjectrecessive deleterious allelesen
dc.subjectmeiotic driveren
dc.title果蠅之無重組染色體的演化zh_TW
dc.titleEvolution of a non-recombining chromosome in Drosophilaen
dc.typeThesis
dc.date.schoolyear95-2
dc.description.degree碩士
dc.contributor.oralexamcommittee張俊哲(Chun-che Chang),于宏燦(Hon-Tsen Yu),方淑(Shu Fang)
dc.subject.keyword性別拮抗,隱性不良,減數分裂驅動,抑制因子,zh_TW
dc.subject.keywordsexually antagonistic alleles,recessive deleterious alleles,meiotic driver,suppressor,en
dc.relation.page28
dc.rights.note有償授權
dc.date.accepted2007-07-13
dc.contributor.author-college生物資源暨農學院zh_TW
dc.contributor.author-dept昆蟲學研究所zh_TW
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