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van Goethem, M.-J.

Publications and source records attributed to van Goethem, M.-J..

2 recordsLinked to original sources

Notch Signaling Drives Pro-Regenerative and Migratory Traits in Glandular Stem/Progenitor Cells

Organoid models have advanced our understanding of adult stem/progenitor cell dynamics and function. However, uncovering the regulatory mechanisms of scarce and often quiescent stem cells in organs like the salivary glands remains challenging. Using single-cell RNA sequencing and bulk ATAC and RNA-sequencing analysis, we conducted in-depth profiling of the cellular populations and key signaling pathways characterizing a mouse submandibular salivary gland organoid (mSGO) model at different temporal stages and in response to radiation damage. We identified Sox9- and Itgb1-expressing cells as the most primitive adult stem/progenitor populations and uncover novel stemness and migratory roles for Cd44-expressing cells. Moreover, we revealed that Notch signaling is essential for maintaining self-renewal and migration potential of these stem/progenitor cells post-irradiation. Extending these findings to patient-derived mSGOs, as well as murine and patient-derived mammary and thyroid gland organoids, we confirmed Notch signaling as a conserved regulator of stem/progenitor cell function under migrative and regenerative conditions.

cell biology↗

Derepression of transposable elements enhances interferon beta signaling and stem/progenitor cell activity after proton irradiation.

Radiotherapy is a mainstay in cancer treatment, aiming to maximize DNA damage in tumors while minimizing harm to surrounding healthy tissues. However, the collateral damage to normal tissues, especially stem/progenitor cells essential for tissue regeneration and organ function, remains a significant challenge. Here, we investigate the molecular responses to photon and proton irradiation, two key modalities in head and neck cancer treatment, using organoids. Multiomics analysis reveals a stronger double-stranded RNA (dsRNA)-induced type I interferon (IFN-I) response following proton irradiation, driven by loss of heterochromatin regulators and derepression of transposable elements (TEs). This response, mediated by the cytoplasmic sensor RIG-I, enhances the inflammatory signaling initiated by the canonical dsDNA sensors cGAS and ZBP1. Genetic and pharmacological modulation of IFN-I signaling in vitro and in vivo demonstrates its critical role in enhancing stem/progenitor cell activity post-irradiation. Our findings reveal a pro-regenerative role of TE derepression-mediated IFN-I response suggesting this pathway as a promising therapeutic target to mitigate radiation-induced side effects. TeaserTransposable element-mediated type I interferon signaling enhances stem/progenitor cell activity after irradiation.

cell biology↗