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Mendez-Ferrer, S.

Publications and source records attributed to Mendez-Ferrer, S..

2 recordsLinked to original sources

IL-1β promotes MPN disease initiation by favoring early clonal expansion of JAK2-mutant hematopoietic stem cells

JAK2-V617F is the most frequent somatic mutation causing myeloproliferative neoplasm (MPN). However, JAK2-V617F can also be found in healthy individuals with clonal hematopoiesis of indeterminate potential (CHIP) with a frequency much higher than the prevalence of MPN. The factors controlling the conversion of JAK2-V617F CHIP to MPN are largely unknown. We hypothesized that IL-1{beta} mediated inflammation is one of the factors that favors this progression. We examined mono- or oligoclonal evolution of MPN by performing bone marrow transplantations at limiting dilutions with only 1-3 JAK2-mutant HSCs per recipient. Genetic loss of IL-1{beta} in JAK2-mutant hematopoietic cells or inhibition by a neutralizing anti-IL-1{beta} antibody restricted the early clonal expansion of these JAK2-mutant HSCs resulting in a reduced frequency of a CHIP-like state and a lower rate of conversion to MPN. The MPN disease-promoting effects of IL-1{beta} were associated with damage to sympathetic innervation leading to loss of nestin-positive mesenchymal stromal cells and required the presence of IL-1R1 on bone marrow stromal cells. The anti-IL-1{beta} antibody protected these mesenchymal stromal cells from IL-1{beta} mediated damage and limited the expansion of the JAK2-mutant clone. Our results identify IL-1{beta} as a potential therapeutic target for preventing the transition from JAK2-V617F CHIP to MPN. Brief summaryIn a mouse model of oligo-clonal myeloproliferative neoplasm (MPN), IL-1{beta} produced by JAK2-mutant cells favored expansion of sub-clinical JAK2-V617F clones and initiation of MPN disease.

cancer biology↗

Mesoderm-Derived PDGFRA+ Cells Regulate the Emergence of Hematopoietic Stem Cells in the Dorsal Aorta

Mouse hematopoietic stem cells (HSCs) first emerge at embryonic day 10.5 (E10.5) on the ventral surface of the dorsal aorta, by endothelial-to-hematopoietic transition (EHT). We investigated whether cells with mesenchymal stem cell-like activity, which provide an essential niche for long-term HSCs (LT-HSCs) in the bone marrow, reside in the aorta- gonad-mesonephros (AGM) and contribute to the structural development of the dorsal aorta and EHT. Using transgenic mice, we demonstrate a lineage hierarchy for AGM stromal cells and traced the E10.5/E11.5 aortic endothelium and HSCs to mesoderm derived (Mesp1) PDGFRA+ stromal cells (Mesp1der PSCs). Mesp1der PSCs dominate the sub-endothelial and ventral stroma in the E10.5-E11.5 AGM but by E13.5 were replaced by neural crest (Wnt1) derived PDGFRA+ stromal cells (Wnt1der PSCs). Co-aggregating non-hemogenic embryonic and adult endothelial cells with Mesp1der PSCs but not with Wnt1der PSCs resulted in activation of a hematopoietic transcriptional program in endothelial cells accompanied by EHT and generation of LT-HSCs. Dose-dependent inhibition of PDGFRA signalling or BMP, WNT, NOTCH signalling interrupted this reprogramming event. This partnership between endothelial cells and AGM Mesp1der PSCs could potentially be harnessed to manufacture LT-HSCs from endothelium.

developmental biology↗