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Evolutionary innovations and adaptations often require rapid and concerted changes in regulation of gene expression at many loci. Transposable elements (TEs) constitute the most dynamic part of eukaryotic genomes, and insertions of transposable elements can influence the expression of surrounding genes by donating new regulatory elements. A longstanding hypothesis, first proposed by Barbara McClintock, postulates that the dispersal of transposable elements may allow for the same regulatory motif to be recruited at many genomic locations, thereby drawing multiple genes into the same regulatory network. Empirical evidence for this model is however scarce, and most putative examples of TE-mediated rewiring of regulatory networks rely on a statistical association between remnants of a TE at a subset of genes or genomic regions. We recently provided the first direct functional evidence of an active TE rewiring a regulatory network by showing that the acquisition of novel binding sites for the dosage compensation complex at young neo-sex chromosomes in Drosophila was driven by dispersal of a domesticated TE. Here we propose to quantify the involvement of TEs vs. acquisition of regulatory sites by other mutations in rewiring regulatory networks, by systematically studying the evolution of dosage compensation binding sites at over a dozen independently formed young neo-sex chromosomes in Drosophila. Our detailed understanding of how dosage compensation in Drosophila works at the molecular level makes it an ideal model system to study the rewiring of regulatory networks, and recent methodological development make the investigation of binding site evolution at newly formed X chromosomes in non-model Drosophila species feasible, making this a timely and exciting proposal.
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Genomic degradation of a young Y chromosome in Drosophila miranda.
果蝇米兰达(Drosophila Miranda)年轻Y染色体的基因组降解。
DOI: 10.1186/gb-2008-9-2-r30
发表时间: 2008
期刊: GENOME BIOLOGY
影响因子: 12.3
作者: [Bachtrog, Doris, Hom, Emily, Wong, Karen M., Maside, Xulio, de Jong, Pieter]
通讯作者: de Jong, Pieter
DOI: 10.1371/journal.pbio.1001899
发表时间: 2014-07
期刊: PLoS biology
影响因子: 9.8
作者: [Bachtrog D, Mank JE, Peichel CL, Kirkpatrick M, Otto SP, Ashman TL, Hahn MW, Kitano J, Mayrose I, Ming R, Perrin N, Ross L, Valenzuela N, Vamosi JC, Tree of Sex Consortium]
通讯作者: Tree of Sex Consortium
DOI: 10.1371/journal.pbio.1000082
发表时间: 2009-04-14
期刊: PLoS biology
影响因子: 9.8
作者: [Bachtrog D, Jensen JD, Zhang Z]
通讯作者: Zhang Z
DOI: 10.1007/s10577-009-9053-y
发表时间: 2009
期刊: CHROMOSOME RESEARCH
影响因子: 2.6
作者: [Vicoso, Beatriz, Bachtrog, Doris]
通讯作者: Bachtrog, Doris
8
    Aging and the evolution of the sex-specific chromatin structure in Drosophila
    Heterochromatin and Toxic YChromosomes
    The formation of Heterochromatin on evolving Y chromosomes
    The formation of Heterochromatin on evolving Y chromosomes
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