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PLoS Genet. 2010 Feb 5;6(2):e1000796. doi: 10.1371/journal.pgen.1000796.
2
Genomic hotspots for adaptation: the population genetics of Müllerian mimicry in the Heliconius melpomene clade.适应的基因组热点:海伦娜蝶族中 Müllerian 拟态的群体遗传学。
PLoS Genet. 2010 Feb 5;6(2):e1000794. doi: 10.1371/journal.pgen.1000794.
3
Melanism in peromyscus is caused by independent mutations in agouti.白足鼠的黑化现象是由刺豚鼠基因的独立突变引起的。
PLoS One. 2009 Jul 30;4(7):e6435. doi: 10.1371/journal.pone.0006435.
4
Arlequin (version 3.0): an integrated software package for population genetics data analysis.Arlequin(版本 3.0):一个用于群体遗传学数据分析的集成软件包。
Evol Bioinform Online. 2007 Feb 23;1:47-50.
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A gene-based linkage map for Bicyclus anynana butterflies allows for a comprehensive analysis of synteny with the lepidopteran reference genome.一个基于基因的鞍带蛱蝶连锁图谱有助于对鳞翅目参考基因组的共线性进行全面分析。
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6
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The genetic basis of phenotypic convergence in beach mice: similar pigment patterns but different genes.海滩小鼠表型趋同的遗传基础:相似的色素模式但基因不同。
Mol Biol Evol. 2009 Jan;26(1):35-45. doi: 10.1093/molbev/msn218. Epub 2008 Oct 1.
8
Convergent evolution in the genetic basis of Müllerian mimicry in heliconius butterflies.透翅蝶中缪勒拟态遗传基础的趋同进化。
Genetics. 2008 Nov;180(3):1567-77. doi: 10.1534/genetics.107.082982. Epub 2008 Sep 14.
9
The loci of evolution: how predictable is genetic evolution?进化的轨迹:基因进化的可预测性如何?
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杂交凤蝶拟态位点的比较种群遗传学研究

Comparative population genetics of a mimicry locus among hybridizing Heliconius butterfly species.

机构信息

FAS Center for Systems Biology, Harvard University, Cambridge, MA 02138, USA.

出版信息

Heredity (Edinb). 2011 Sep;107(3):200-4. doi: 10.1038/hdy.2011.3. Epub 2011 Feb 9.

DOI:10.1038/hdy.2011.3
PMID:21304546
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3119732/
Abstract

The comimetic Heliconius butterfly species pair, H. erato and H. melpomene, appear to use a conserved Mendelian switch locus to generate their matching red wing patterns. Here we investigate whether H. cydno and H. pachinus, species closely related to H. melpomene, use this same switch locus to generate their highly divergent red and brown color pattern elements. Using an F2 intercross between H. cydno and H. pachinus, we first map the genomic positions of two novel red/brown wing pattern elements; the G locus, which controls the presence of red vs brown at the base of the ventral wings, and the Br locus, which controls the presence vs absence of a brown oval pattern on the ventral hind wing. The results reveal that the G locus is tightly linked to markers in the genomic interval that controls red wing pattern elements of H. erato and H. melpomene. Br is on the same linkage group but approximately 26 cM away. Next, we analyze fine-scale patterns of genetic differentiation and linkage disequilibrium throughout the G locus candidate interval in H. cydno, H. pachinus and H. melpomene, and find evidence for elevated differentiation between H. cydno and H. pachinus, but no localized signature of association. Overall, these results indicate that the G locus maps to the same interval as the locus controlling red patterning in H. melpomene and H. erato. This, in turn, suggests that the genes controlling red pattern elements may be homologous across Heliconius, supporting the hypothesis that Heliconius butterflies use a limited suite of conserved genetic switch loci to generate both convergent and divergent wing patterns.

摘要

雌雄同色的海伦娜蝶物种对,H. erato 和 H. melpomene,似乎使用一个保守的孟德尔开关基因座来产生它们匹配的红色翅膀图案。在这里,我们研究了与 H. melpomene 密切相关的 H. cydno 和 H. pachinus 是否使用这个相同的开关基因座来产生它们高度分化的红色和棕色颜色图案元素。我们利用 H. cydno 和 H. pachinus 之间的 F2 杂交,首先绘制了两个新的红色/棕色翅膀图案元素的基因组位置;G 基因座,控制腹翅基部红色与棕色的存在,以及 Br 基因座,控制腹后翅上棕色椭圆形图案的存在与否。结果表明,G 基因座与控制 H. erato 和 H. melpomene 红色翅膀图案元素的基因组区间内的标记紧密连锁。Br 位于同一连锁群上,但距离约 26 cM。接下来,我们分析了 H. cydno、H. pachinus 和 H. melpomene 中 G 基因座候选区间的遗传分化和连锁不平衡的精细模式,并发现 H. cydno 和 H. pachinus 之间存在高度分化的证据,但没有局部关联的迹象。总的来说,这些结果表明,G 基因座与控制 H. melpomene 和 H. erato 红色图案形成的基因座相同。这反过来又表明,控制红色图案元素的基因可能在海伦娜蝴蝶中是同源的,支持了海伦娜蝴蝶使用有限的一套保守的遗传开关基因座来产生趋同和发散的翅膀图案的假说。