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Loudhaief, R.

Publications and source records attributed to Loudhaief, R..

3 recordsLinked to original sources

A tumor-suppressive role of the PRC1 Polycomb epigenetic complex in the maintenance of adult Drosophila intestinal stem cell identity

Chromatin modulators, like Polycomb group proteins, are key epigenetic regulators of gene expression and are frequently mutated in cancers. In adult stem cells, epigenetic regulation maintains their identity and controls their differentiation during homeostasis or aging, but its direct role in tumorigenesis remains unclear. Here we developed a novel tumor model in Drosophila by exploring the function of Polycomb Repressive Complex 1 (PRC1) in adult intestinal stem cells (ISCs). Disrupting core PRC1 components in ISCs induces the formation of small cell clusters devoid of intestinal markers, a novel phenotype linked to premature mortality under stress. These clusters exhibit neoplastic characteristics such as overproliferation and continuous growth in serial transplantations, leading to their designation as tumor-initiating intestinal cells (TIICs). While JAK/STAT signaling contributes to TIIC growth, the NF-{kappa}B-related Toll/Imd immune pathways restrict their expansion independently of cell death. Altogether, our results highlight PRC1 as an epigenetic tumor suppressor in adult stem cells. AUTHOR SUMMARYOur research explores how stem cells in the adult intestine stay healthy and avoid becoming cancerous. We focused on a group of proteins called Polycomb Repressive Complex 1 (PRC1), which help regulate which genes are turned off in a cell. While these proteins are known to play important roles during development and cancer prevention, their function in the adult intestine has been less clear. Using the fruit fly Drosophila, we discovered that when PRC1 function is lost in intestinal stem cells, abnormal clusters of cells begin to form. These clusters grow uncontrollably, lose their normal identity, and can keep growing when transplanted--traits that are typical of cancer. Interestingly, we also found that parts of the immune system, specifically NF-{kappa}B-related pathways, can act inside these tumor cells to limit their growth--revealing a protective role that hasnt been seen before in the adult gut. This work provides new insights into how epigenetic regulation and immune signaling work together to keep stem cells from turning cancerous. It opens up new possibilities for understanding how cancers begin and how the body may naturally resist them, even at the level of the tissue.

cancer biology↗

Pvf1-PvR-mediated crosstalk between the trachea and the gut guides intestinal stem cell migration to promote gut regeneration.

In adult tissues, stem cells (SCs) reside in specialized niches, where they are maintained in a quiescent state until activated by injury. Once activated, they migrate towards injured sites, where they proliferate and differentiate to replenish lost or damaged cells. Although effective tissue repair relies critically on the ability of SCs to reach and populate damaged sites, mechanisms guiding SCs towards these sites are not well understood. This is largely due to the technical challenges involved in monitoring SC dynamics in real time in vivo. Here, we devised an experimental framework that allows for real-time tracking of the spatiotemporal dynamics of intestinal SCs (ISCs) during the early phases of gut regeneration. Our data show that ISC migration is rapidly induced following injury and precedes ISC divisions and differentiation. We identify the Drosophila PDGF-VEGF-related receptor, Pvr, as a critical regulator of the migratory response to epithelial damage. ISC-specific Pvr depletion strongly suppresses ISC migration towards affected sites as well as the regenerative response. We further show that the Pvr ligand, PDGF-VEGF-related factor 1 (Pvf1), is produced by the trachea/vasculature in response to intestinal damage and acts as a guidance signal to direct ISC migration towards affected areas. Our work highlights a critical role of gut-trachea/vasculature crosstalk in guiding ISC migration during regeneration. As neovascularization of injured sites is a key feature of tissue repair in both flies and mammals, these findings could be relevant to regenerative processes in a wide range of adult tissues.

physiology↗

Drosophila activins adapt gut size to food intake and promote regenerative growth

Rapidly renewable tissues adapt different strategies to cope with environmental insults. While tissue repair is associated with increased ISC proliferation and accelerated tissue turnover rates, reduced calorie intake triggers a homeostasis-breaking process causing adaptive resizing of the gut. Here we show that activins are key drivers of both adaptive and regenerative growth. Activin-{beta} (Act-{beta}) is produced by progenitor cells in response to intestinal infections and stimulates ISC proliferation and turnover rates to promote tissue repair. Dawdle (Daw), a divergent Drosophila activin, signals through its receptor, BaboC, in progenitor cells to promote their maturation into enterocytes (ECs). Daw is dynamically regulated during starvation-refeeding cycles, where it couples nutrient intake with progenitor maturation and adaptive resizing of the gut. Our results highlight an activin-dependent mechanism coupling nutrient intake with progenitor-to-EC maturation to promote adaptive resizing of the gut and further establish activins as key regulators of adult tissue plasticity.

physiology↗