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Landau, L. J. B.

Publications and source records attributed to Landau, L. J. B..

2 recordsLinked to original sources

Gene Expansion and Regulatory Rewiring Shape Sex-Biased Evolution of the Mouse Submandibular Gland Secretome

Background Mammalian saliva plays essential roles in digestion, immunity, and host-microbiome interactions, yet its protein composition varies widely across species and sexes. This diversity makes saliva a powerful model to study evolution of gene expression. Here, we compared mouse and human salivary glands at the genomic, transcriptomic, and proteomic levels to understand how saliva composition evolves. Results We found that evolution of gene expression in mouse salivary glands is driven by rapid gene turnover and sexual dimorphism. In the submandibular and sublingual glands, 68% and 73% of expression from genes encoding secreted proteins derives from lineage-specific genes that lack one-to-one human orthologs. This contrasts the prevailing view that gene expression is largely conserved across tissues and highlights saliva as an unusually dynamic system of molecular evolution. Mouse submandibular gland shows striking sexual dimorphism, with 1537 tissue specific sex-biased genes, 3.8 times higher than in the liver (p<0.001), a classic model of sex-biased expression. We also identified sex-specific expression of glycosylation genes associated with differential Muc19 sialylation. These results suggest that sexual dimorphism in mouse saliva arises from both transcriptional differences in secreted proteins and sex-specific post-translational modifications. Further, differentially expressed genes in submandibular gland cluster in genomic regions shaped by recent gene duplication, such as the kallikrein gene cluster, a mouse-specific expansion that accounts for ~16.4% of male-biased submandibular gland expression. Our analyses suggest that this bias arises through regulatory changes that are expanded by gene duplication, including the spread of a testosterone-associated regulatory motif and the expansion of a shared chromatin domain that promotes coordinated gene regulation. Conclusions Together, our results reveal that lineage-specific genes disproportionately shape the mouse salivary transcriptome and that gene duplication and regulatory rewiring contribute to the rapid evolution of sex-biased expression in the submandibular gland. We describe a novel mechanism through which lineage-specific gene duplication and regulatory rewiring drive rapid, sex-specific evolution of the mammalian saliva. Our findings support saliva as an evolutionarily dynamic system and are consistent with developmental systems drift, whereby similar phenotypes across species may be maintained despite substantial divergence in their underlying gene-regulatory programs.

evolutionary biology↗

Adaptive Increase of Amylase Gene Copy Number in Peruvians Driven by Potato-rich Diets

Summary/AbstractThe salivary amylase gene (AMY1) exhibits remarkable copy number variation linked to dietary shifts in human evolution. While global studies highlight its structural complexity and association with starch-rich diets, localized selection patterns remain under explored. Here, we analyzed AMY1 copy number in 3,723 individuals from 85 populations, revealing that Indigenous Peruvian Andean populations possess the highest AMY1 copy number globally. A genome-wide analysis showed significantly higher amylase copy numbers in Peruvian Andean genomes compared to closely related populations. Further, we identified positive selection (selection coefficient of 0.0124, log likelihood ratio of 11.1543) at the nucleotide level on a haplotype harboring at least five haploid AMY1 copies, with a Peruvian Andean-specific expansion coinciding with potato domestication ([~]6-10 kya). Using ultra-long-read sequencing, we demonstrated that previously described recombination-based mutational mechanisms drive the formation of high-copy AMY1 haplotypes observed in Andean population. Our study provides a framework for investigating structurally complex loci and their role in human dietary adaptation.

genetics↗