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Tapponnier, Y.

Publications and source records attributed to Tapponnier, Y..

2 recordsLinked to original sources

A ligand/receptor trafficking clock governs self-renewal and abscission dynamics in pluripotent stem cells

Summary/AbstractHow extracellular cues are temporally integrated to regulate self-renewal and differentiation propensities across the cell cycle remains largely unresolved. We identify a ligand/receptor trafficking clock in rodent and human pluripotent stem cells (PSCs) in which the cyclic turnover of Netrin-1 and its receptors Neo1 and Unc5b (NNU) governs self-renewal capacity and abscission dynamics. In G1, NNU complexes undergo Clathrin-mediated internalization and lysosomal degradation, a process required for timely post-mitotic bridge abscission. At later stages of the cycle, NNU activate Src within early endosomes, inducing a genome-wide redistribution of the transcriptional co-activator Yap1. This reshapes gene regulatory networks by activating stemness- and ectoderm-associated transcriptional programs enriched for Sox2/Nanog binding and by repressing mesodermal- and cell cycle-related targets enriched for Sox2 and Tcf3. Functionally, recombinant Netrin-1 reduces functional heterogeneity and enhances clonogenicity in G1, uncovering a tractable strategy to canalize stem cell behavior. Collectively, our results reveal cell cycle-dependent ligand/receptor trafficking as a temporal clock that directly links membrane dynamics to epigenetic regulation and stem cell fate, opening new avenues for regenerative medicine.

cell biology↗

The Pioneer Transcription Factor Oct4 Differentially Co-opts Bcl11a and Bcl11b to Regulate Reprogramming to Pluripotency

Pioneer transcription factors (TFs) orchestrate development, reprogramming, and cancer. Yet, the molecular mechanisms by which they cooperate with endogenous TFs and chromatin to trigger cell fate conversions remain largely unknown. Here, we identified antagonistic functions in reprogramming to pluripotency for the two paralogous somatic zinc finger TFs Bcl11a and Bcl11b. We reveal that Bcl11a and Bcl11b are initially co-expressed in mouse embryonic fibroblasts and then segregate in cellular intermediates respectively prone or refractory to reprogramming, transdifferentiation, and oncogenic transformation. They exert opposite functions - with Bcl11a promoting and Bcl11b hindering - the efficacy of induced pluripotent stem cells generation. During reprogramming, we uncover that Bcl11b safeguards cellular identity by persistently binding to differentiation genes with Runx1 in refractory intermediates. In contrast, in reprogramming intermediates, Bcl11a interacts with Oct4 and is initially displaced from MEF enhancers. Bcl11a then binds transiently and contributes to activate the E3 ubiquitin ligase Pja1 that regulates Smad3, thus promoting mesenchymal-epithelial transition and constraining senescence. Collectively, our work unveils how the differential repurposing of paralogous TFs by Oct4 orchestrates reprogramming to pluripotency.

cell biology↗