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本文引用的文献

1
INVERSION LENGTH AND BREAKPOINT DISTRIBUTION IN THE DROSOPHILA BUZZATII SPECIES COMPLEX: IS INVERSION LENGTH A SELECTED TRAIT?拟果蝇物种复合体中的倒位长度和断点分布:倒位长度是一个被选择的性状吗?
Evolution. 1997 Aug;51(4):1149-1155. doi: 10.1111/j.1558-5646.1997.tb03962.x.
2
The Evolutionary History of DROSOPHILA BUZZATII. III. Cytogenetic Relationships between Two Sibling Species of the Buzzatii Cluster.黑腹果蝇 buzzatii 种系发生史。III. buzzatii 聚类的两个近缘种之间的细胞遗传学关系。
Genetics. 1982 Jul;101(3-4):503-18. doi: 10.1093/genetics/101.3-4.503.
3
Chromosomal evolution of elements B and C in the Sophophora subgenus of Drosophila: evolutionary rate and polymorphism.果蝇Sophophora亚属中B和C元素的染色体进化:进化速率与多态性
Evolution. 2006 Apr;60(4):768-81.
4
DNA sequence of human chromosome 17 and analysis of rearrangement in the human lineage.人类17号染色体的DNA序列及人类谱系中的重排分析。
Nature. 2006 Apr 20;440(7087):1045-9. doi: 10.1038/nature04689.
5
Breakpoint structure reveals the unique origin of an interspecific chromosomal inversion (2La) in the Anopheles gambiae complex.断点结构揭示了冈比亚按蚊复合体中种间染色体倒位(2La)的独特起源。
Proc Natl Acad Sci U S A. 2006 Apr 18;103(16):6258-62. doi: 10.1073/pnas.0509683103. Epub 2006 Apr 10.
6
Rates and patterns of chromosomal evolution in Drosophila pseudoobscura and D. miranda.拟暗果蝇和米兰达果蝇的染色体进化速率及模式。
Genetics. 2006 Jun;173(2):779-91. doi: 10.1534/genetics.105.054585. Epub 2006 Mar 17.
7
The convergence of cytogenetics and rearrangement-based models for ancestral genome reconstruction.细胞遗传学与基于重排的模型在重建祖先基因组方面的融合。
Genome Res. 2006 Mar;16(3):311-3. doi: 10.1101/gr.4631806.
8
Are molecular cytogenetics and bioinformatics suggesting diverging models of ancestral mammalian genomes?分子细胞遗传学和生物信息学是否暗示了哺乳动物祖先基因组的不同模型?
Genome Res. 2006 Mar;16(3):306-10. doi: 10.1101/gr.3955206.
9
Chromosome evolution in eukaryotes: a multi-kingdom perspective.真核生物中的染色体进化:多界视角
Trends Genet. 2005 Dec;21(12):673-82. doi: 10.1016/j.tig.2005.09.009. Epub 2005 Oct 19.
10
Dynamics of mammalian chromosome evolution inferred from multispecies comparative maps.从多物种比较图谱推断哺乳动物染色体进化的动态过程。
Science. 2005 Jul 22;309(5734):613-7. doi: 10.1126/science.1111387.

检测果蝇的染色体系统发育和倒位断点复用情况。

Testing chromosomal phylogenies and inversion breakpoint reuse in Drosophila.

作者信息

González Josefa, Casals Ferran, Ruiz Alfredo

机构信息

Departament de Genètica i de Microbiologia, Universitat Autònoma de Barcelona, 08193 Bellaterra (Barcelona), Spain.

出版信息

Genetics. 2007 Jan;175(1):167-77. doi: 10.1534/genetics.106.062612. Epub 2006 Oct 8.

DOI:10.1534/genetics.106.062612
PMID:17028333
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1775012/
Abstract

A combination of cytogenetic and bioinformatic procedures was used to test the chromosomal phylogeny relating Drosophila buzzatii with D. repleta. Chromosomes X and 2, harboring most of the inversions fixed between these two species, were analyzed. First, chromosomal segments conserved during the divergence of the two species were identified by comparative in situ hybridization to the D. repleta chromosomes of 180 BAC clones from a BAC-based physical map of the D. buzzatii genome. These conserved segments were precisely delimited with the aid of clones containing inversion breakpoints. Then GRIMM software was used to estimate the minimum number of rearrangements necessary to transform one genome into the other and identify all possible rearrangement scenarios. Finally, the most plausible inversion trajectory was tested by hybridizing 12 breakpoint-bearing BAC clones to the chromosomes of seven other species in the repleta group. The results show that chromosomes X and 2 of D. buzzatii and D. repleta differ by 12 paracentric inversions. Nine of them are fixed in chromosome 2 and entail two breakpoint reuses. Our results also show that the cytological relationship between D. repleta and D. mercatorum is closer than that between D. repleta and D. peninsularis, and we propose that the phylogenetic relationships in this lineage of the repleta group be reconsidered. We also estimated the rate of rearrangement between D. repleta and D. buzzatii and conclude that rates within the genus Drosophila vary substantially between lineages, even within a single species group.

摘要

采用细胞遗传学和生物信息学相结合的方法来测试与拟果蝇(Drosophila repleta)相关的巴氏果蝇(Drosophila buzzatii)的染色体系统发育。分析了X染色体和2号染色体,这两条染色体上存在这两个物种间固定的大部分倒位。首先,通过将来自巴氏果蝇基因组基于BAC的物理图谱的180个BAC克隆与拟果蝇染色体进行比较原位杂交,确定了这两个物种分化过程中保守的染色体片段。借助包含倒位断点的克隆精确界定了这些保守片段。然后使用GRIMM软件估计将一个基因组转化为另一个基因组所需的最少重排数,并确定所有可能的重排情况。最后,通过将12个携带断点的BAC克隆与拟果蝇组中其他七个物种的染色体杂交,测试了最合理的倒位轨迹。结果表明,巴氏果蝇和拟果蝇的X染色体和2号染色体存在12个臂内倒位差异。其中9个固定在2号染色体上,涉及两次断点复用。我们的结果还表明,拟果蝇和墨卡托果蝇(D. mercatorum)之间的细胞学关系比拟果蝇和半岛果蝇(D. peninsularis)之间的更密切,我们建议重新考虑拟果蝇组这一分支的系统发育关系。我们还估计了拟果蝇和巴氏果蝇之间的重排率,并得出结论,果蝇属内不同分支间的重排率差异很大,即使在单个物种组内也是如此。