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Biology subjects

Perold, F.

Publications and source records attributed to Perold, F..

2 recordsLinked to original sources

A STAT3-regulated lncRNA integrates microRNA biogenesis and sequestration to safeguard naive pluripotency

Leukemia inhibitory factor (LIF)/STAT3 signaling is central to maintaining naive pluripotency in mouse embryonic stem cells (mESCs). We identify Asgard, a previously uncharacterized long non-coding RNA, as a direct STAT3 target required for efficient self-renewal. Asgard is rapidly induced by LIF, enriched in the epiblast, and its depletion reduces alkaline phosphatase-positive colony formation while enhancing differentiation. Mechanistically, Asgard fulfils a dual role: it acts as the primary transcript for the differentiation-promoting microRNA Odin, while also functioning as a sponge to sequester Odin and related miRNAs. This dual mechanism enables Asgard to both generate and buffer pro-differentiation signals, thereby stabilizing the pluripotent state while preserving responsiveness to lineage cues. Our work reveals a new paradigm in RNA-mediated control of stem cell identity, where a single STAT3-regulated lncRNA couples microRNA production with competitive inhibition to safeguard naive pluripotency.

developmental biology↗

Generation of systemic rabbit chimeras via Induced Pluripotent Stem Cells Reprogrammed with KLF2, ERAS, and PRMT6

Little is known about the molecular underpinnings of pluripotent stem cells (PSCs) ability to colonize the epiblast of preimplantation embryos and generate chimeras. In our study, using rabbit PSCs as a model system, we conducted unbiased screening of a cDNA library that encodes a panel of 36 pluripotency factors. From this screening, we identified KLF2, ERAS and PRMT6, whose overexpression confers the ability for self-renewal in a KOSR/FGF2-free culture medium supplemented with LIF, activin A, PKC and WNT inhibitors. The reprogrammed cells acquired transcriptomic and epigenetic features of naive pluripotency, including the reactivation of the 2nd X-chromosome. Leveraging these PSC lines, we determined the transcriptomic signature of embryonic colonization-competence, demonstrating transcriptional repression of genes involved in MAPK, WNT, HIPPO, and EPH signaling pathways, alongside the activation of genes involved in amino-acid metabolism, NF-kB signaling, and p53 pathway. Remarkably, a subset of reprogrammed cells, expressing CD75 at a high level, gained the ability to produce chimeric fetuses with a high contribution from PSCs in all lineages.

cell biology↗