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Nieland, J.

Publications and source records attributed to Nieland, J..

3 recordsLinked to original sources

Gene expression reveals the pancreas of Aselli as a critical organ for plasma cell differentiation in the common shrew

Almost all mammals rely on the thymus and bone marrow to generate and differentiate B- and T cells essential for adaptive immunity. A few members of the family Soricidae, or true shrews, have also evolved the pancreas of Aselli, a kidney-sized organ hypothesized to serve this primary immune role, and whose gene expression profile is unknown. Here we introduce transcriptomes of juvenile Sorex araneus pancreas of Aselli, compare them to those of the spleen and chick bursa of Fabricius, an analogous and bird-specific organ, and explore differential expression overlaps with positively selected genes. While differential gene expression analyses revealed overexpression of genes that regulate the differentiation of B cells into long-term plasma cells (e.g., IRF4, XBP1, PRDM1) compared to the spleen and more convergent expression with the bursa of Fabricius than expected by chance (including IRF4), overlaps with positive selection were as expected and included PTPRCAP, which regulates both T and B cell antigen responses and lymph node size. Our results support the specialized role of the pancreas of Aselli in adaptive immunity, and we propose this unique organ evolved at the intersection between extreme metabolic demands and high parasite burdens in tiny yet very active shrews.

evolutionary biology↗

Seasonal brain regeneration and chromosome instability are linked to selection on DNA repair in Sorex araneus

Sorex araneus, the Eurasian common shrew, has seasonal brain size plasticity (Dehnels phenomenon) and abundant intraspecific chromosomal rearrangements, but genomic contributions to these traits remain unknown. We couple a chromosome-scale genome assembly with seasonal brain transcriptomes to discover relationships between molecular changes and both traits. Positively selected genes enriched the Fanconi anemia DNA repair pathway, which prevents the accumulation of chromosomal aberrations, and is likely involved in chromosomal rearrangements (FANCI, FAAP100). Genes involved in neurogenesis show either signatures of positive selection (PCDHA6), seasonal differential expression in the cortex and hippocampus (Notch signaling), or both (SOX9), suggesting a role for cellular proliferation in seasonal brain shrinkage and regrowth. Both positive selection and evolutionary upregulation in the shrew hypothalamus of VEGFA and SPHK2 indicate adaptations in hypothalamic metabolic homeostasis have evolved together with Dehnels phenomenon. These findings reveal genomic changes central to the evolution of both chromosomal instability and cyclical patterns in brain gene expression that characterizes mammalian brain size plasticity. TeaserGenomic and expression variations are key to chromosomal instability and seasonal brain plasticity in the common shrew.

evolutionary biology↗

Molecular mechanisms of seasonal brain shrinkage and regrowth inSorex araneus

To meet the challenge of wintering in place many high-latitude small mammals reduce energy demands through hibernation. In contrast, short-lived Eurasian common shrews, Sorex araneus, remain active and shrink, including energy-intensive organs in winter, regrowing in spring in an evolved strategy called Dehnels phenomenon. How this size change is linked to metabolic and regulatory changes to sustain their high metabolism is unknown. We analyzed metabolic, proteomic, and gene expression profiles spanning the entirety of Dehnels seasonal cycle in wild shrews. We show regulatory changes to oxidative phosphorylation and increased fatty acid metabolism during autumn-to-winter shrinkage, as previously found in hibernating species. But in shrews we also found upregulated winter expression of genes involved in gluconeogenesis: the biosynthesis of glucose from non-carbohydrate substrates. Co-expression models revealed changes in size and metabolic gene expression interconnect via FOXO signaling, whose overexpression reduces size and extends lifespan in many model organisms. We propose that while shifts in gluconeogenesis meet the challenge posed by high metabolic rate and active winter lifestyle, FOXO signaling is central to Dehnels phenomenon, with spring downregulation limiting lifespan in these shrews.

genetics↗