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The Genetic Relationships of the Sister Species Drosophila Mojavensis and Drosophila Arizonae and the Genetic Basis of Sterility in their Hybrid Males

机译:果蝇姐妹姐妹种的亲缘关系及其杂交雄性不育的遗传基础

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摘要

The cactophilic Drosophila mojavensis species group living in the deserts and dry tropical forests of the Southwestern United States and Mexico provides a valuable system for studies in diversification and speciation. My dissertation addresses a variety of evolutionary genetic questions using this system.Rigorous studies of the relationships between host races of D. mojavensis and the relationships among the members of the species group (D. mojavensis, D. arizona, and D. navojoa) are lacking. I used mitochondrial CO1 sequence data to address the phylogenetics and population genetics of this species group (Appendix A). In this study I have found that the sister species D. mojavensis and D. arizonae share no mitochondrial haplotypes and thus show no evidence for recent introgression. I estimate the divergence time between D. mojavensis and D. arizonae to be between 0.66 and 0.99 million years ago. I performed additional population genetic analyses of these species to provide a basis for future hypothesis testing.In Appendix B, I report the first example of substantial intraspecific polymorphism for genetic factors contributing to hybrid male sterility. I show that the occurrence of hybrid male sterility in crosses between Drosophila mojavensis and its sister species, D. arizonae is controlled by factors present at different frequencies in different populations of D. mojavensis. In addition, I show that hybrid male sterility is a complex phenotype; some hybrid males with motile sperm still cannot sire offspring.The large degree of variation between isofemale lines in producing sterile hybrid sons suggests a complex genetic basis to hybrid male sterility warranting quantitative genetic analysis. Since the genes underlying hybrid male sterility in these species are not yet fixed, I am able to perform explicit genetic analysis of this reproductive isolating mechanism. In Appendix C, I present the results of mapping QTL for hybrid male sterility within species. The genetic architecture underlying hybrid male sterility when analyzed directly in the F1 is highly complex. Thus, hybrid male sterility arises as a complex trait in this system and we propose a drift-based model for the evolution of this phenotype.
机译:居住在美国西南部和墨西哥的沙漠和干燥热带森林中的嗜果蝇果蝇物种组为研究多样化和物种形成提供了有价值的系统。我的论文使用这个系统解决了各种各样的进化遗传学问题。严格研究了D. mojavensis宿主种族之间的关系以及物种组成员之间的关系(D. mojavensis,D。arizona和D. navojoa)。不足。我使用线粒体CO1序列数据来研究该物种组的系统发育和种群遗传学(附录A)。在这项研究中,我发现姐妹种D. mojavensis和D. arizonae没有线粒体单倍型,因此没有证据表明最近的渗入。我估计D. mojavensis和D. arizonae之间的发散时间在0.66到0.99百万年前之间。我对这些物种进行了额外的种群遗传学分析,以为将来的假设检验提供基础。在附录B中,我报告了导致杂种雄性不育的遗传因素存在实质性种内多态性的第一个例子。我表明果蝇和它的姊妹物种D. arizonae之间杂交的杂交雄性不育的发生受到在不同果蝇中不同频率存在的因素的控制。另外,我证明杂种雄性不育是一个复杂的表型。一些具有活动精子的杂种雄性仍然不能留下后代。在生产不育杂种子的同种雌性系之间的高度差异表明杂种雄性不育的复杂遗传基础需要进行定量遗传分析。由于这些物种中杂交雄性不育的潜在基因尚未固定,因此我能够对该生殖分离机制进行明确的遗传分析。在附录C中,我介绍了对物种内杂种雄性不育进行QTL定位的结果。直接在F1中进行分析时,杂种雄性不育的遗传结构非常复杂。因此,杂种雄性不育作为该系统中的一个复杂性状而出现,我们提出了一种基于漂移的表型进化模型。

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    Reed Laura Katie;

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  • 年度 2006
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