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Behringer, R. D.

Publications and source records attributed to Behringer, R. D..

2 recordsLinked to original sources

Distal-less homeobox genes Dlx5/6 regulate Mulllerian duct regression

Dlx5 and Dlx6 encode distal-less homeodomain transcription factors that are present in the genome as a linked pair at a single locus. Dlx5 and Dlx6 have redundant roles in craniofacial, skeletal, and uterine development. Previously, we performed a transcriptome comparison for anti-Mullerian hormone (AMH)-induced genes expressed in the Mullerian duct mesenchyme of male and female mouse embryos. In that study, we found that Dlx5 transcripts were nearly seven-fold higher in males compared to females and Dlx6 transcripts were found only in males, suggesting they may be AMH-induced genes. Therefore, we investigated the role of Dlx5 and Dlx6 during AMH-induced Mullerian duct regression. We found that Dlx5 was detected in the male Mullerian duct mesenchyme from E14.5 to E16.5. In contrast, in female embryos Dlx5 was detected in the Mullerian duct epithelium. Dlx6 expression in Mullerian duct mesenchyme was restricted to males. Dlx6 expression was not detected in female Mullerian duct mesenchyme or epithelium. Genetic experiments showed that AMH signaling is necessary for Dlx5 and Dlx6 expression. Mullerian duct regression was variable in Dlx5 homozygous mutant males at E16.5, ranging from regression like controls to a block in Mullerian duct regression. In E16.5 Dlx6 homozygous mutants, Mullerian duct tissue persisted primarily in the region adjacent to the testes. In Dlx5-6 double homozygous mutant males Mullerian duct regression was also found to be incomplete but more severe than either single mutant. These studies suggest that Dlx5 and Dlx6 act redundantly to mediate AMH-induced Mullerian duct regression during male differentiation.

developmental biology↗

Chromosome size affects sequence divergence between species through the interplay of recombination and selection

The structure of the genome shapes the distribution of genetic diversity and sequence divergence. To investigate how the relationship between chromosome size and recombination rate affects sequence divergence between species, we combined empirical analyses and evolutionary simulations. We estimated pairwise sequence divergence among 15 species from three different Mammalian clades - Peromyscus rodents, Mus mice, and great apes - from chromosome-level genome assemblies. We found a strong significant negative correlation between chromosome size and sequence divergence in all species comparisons within the Peromyscus and great apes clades, but not the Mus clade, suggesting that the dramatic chromosomal rearrangements among Mus species may have masked the ancestral genomic landscape of divergence in many comparisons. Our evolutionary simulations showed that the main factor determining differences in divergence among chromosomes of different size is the interplay of recombination rate and selection, with greater variation in larger populations than in smaller ones. In ancestral populations, shorter chromosomes harbor greater nucleotide diversity. As ancestral populations diverge, diversity present at the onset of the split contributes to greater sequence divergence in shorter chromosomes among daughter species. The combination of empirical data and evolutionary simulations revealed that chromosomal rearrangements, demography, and divergence times may also affect the relationship between chromosome size and divergence, and deepen our understanding of the role of genome structure on the evolution of species divergence.

evolutionary biology↗