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Biology subjects

Saint-Jean, G.

Publications and source records attributed to Saint-Jean, G..

2 recordsLinked to original sources

Cell-type-specific decoding of Hippo pathway inactivation drives seminiferous epithelial collapse and rete testis hyperplasia in the adult mouse testis

The Hippo pathway is a major regulator of epithelial homeostasis, but its role in the adult testis remains poorly defined. Here, we conditionally deleted Lats1 and Lats2 in WT1-expressing cells of the adult mouse testis, targeting both Sertoli cells and rete testis epithelial cells. Deletion of Lats1/2 caused rapid degeneration of the seminiferous epithelium, leading to near-complete germ cell loss, while simultaneously inducing marked hyperplasia of the rete testis. These tissue alterations were accompanied by vascular remodeling, macrophage accumulation, and extracellular matrix deposition. Cell-type-resolved transcriptomic analyses showed that Sertoli cells and rete testis epithelial cells have distinct baseline identities that shape their response to Hippo pathway inactivation. While both lineages activated shared YAP/TAZ-responsive genes, their broader outputs diverged sharply, with Sertoli cells preferentially activated structural remodeling programs, whereas rete testis epithelial cells robustly activated cell-cycle pathways and lost ciliogenesis-associated features. Regulatory network analysis further identified a conserved Hippo-responsive transcriptional backbone that was redeployed through lineage-specific regulons in each cell type. Together, these findings identify LATS1/2-mediated Hippo signaling as an essential regulator of adult testicular epithelial homeostasis and show that neighboring epithelial lineages decode Hippo pathway disruption through distinct transcriptional programs, resulting in divergent pathological outcomes.

cell biology↗

Demographic and genetic impacts of powdery mildew in a young oak cohort

The demographic and genetic impacts of powdery mildew on the early stages of an oak population were studied in an ad hoc field design with two disease exposures. This enabled a detailed phenotypic monitoring of 1,733 emerging individuals from 15 progenies over nine years, and the genotyping of 68% of them. The pathogen induced high levels of seedling mortality several years after sowing, associated with reduced growth and capacity to overwinter. The probability of juvenile survival could be predicted from mean disease severity in early years and acorn weight. Fast-growing families showed the highest survival rate under both natural and protected disease exposure. Correlatively, no equalizing effect of increased powdery mildew pressure on the relative contribution of mother trees to the next generation could be detected. Contrary to a possible trade-off hypothesis between growth and defense, family height potential was not negatively related to disease resistance across the studied oak mother trees. Overall, our results suggest that in Quercus robur natural populations, infection levels (related to resistance sensu stricto) may be less determinant than growth-related tolerance to infection for the fate of seedlings. However, an equalizing effect of powdery mildew on relative oak genotype performances cannot be excluded at later stages since such an effect was already visible on height. Average genomic diversity was not significantly affected by mortality associated with powdery mildew. However, our study brings support to a deleterious effect of very low individual heterozygosity on the probability of survival across the different families. Finally, our study points to a few candidate genes for several fitness-related traits.

plant biology↗