Hélène F. E. Gleitz, Stijn N. R. Fuchs, Inge A. M. Snoeren, Charlotte Boys, James Nagai, Hector Tejeda-Mora, Vanessa Klöker, Jessica E. Pritchard, Iris J. Bakker, Marta Gargallo Garasa, Eric Bindels, Julio Saez-Rodriguez, Thomas Vogl, Rafael Kramann, Aurélien Dugourd, Ivan G. Costa, Rebekka K. Schneider
{"title":"抑制原发性骨髓纤维化中警报驱动的造血-间质细胞串扰可改善骨髓纤维化","authors":"Hélène F. E. Gleitz, Stijn N. R. Fuchs, Inge A. M. Snoeren, Charlotte Boys, James Nagai, Hector Tejeda-Mora, Vanessa Klöker, Jessica E. Pritchard, Iris J. Bakker, Marta Gargallo Garasa, Eric Bindels, Julio Saez-Rodriguez, Thomas Vogl, Rafael Kramann, Aurélien Dugourd, Ivan G. Costa, Rebekka K. Schneider","doi":"10.1002/hem3.70179","DOIUrl":null,"url":null,"abstract":"<p>Inflammation from the hematopoietic compartment is a critical driver of fibrosis and cytopenias in myeloproliferative neoplasms (MPNs). We previously demonstrated that tasquinimod ameliorates the MPN phenotype, reducing splenomegaly and normalizing fibrosis in a JAK2V617F-driven preclinical model. Using bulk RNA sequencing, we now show that tasquinimod primarily targets the malignant JAK2V617F hematopoietic clone, particularly affecting megakaryocytes and monocytes. Tasquinimod downregulates pro-proliferative pathways, MYC targets, and mTORC signaling, while increasing apoptosis in particularly in JAK2V617F mutant cells. Our data reveal that tasquinimod reverses TGFβ-driven fibrotic reprogramming of megakaryocytes and monocytes. This reversal is crucial for mitigating the pro-fibrotic interactions and signaling in the BM, thereby decreasing the activation of stromal cells. Coculture experiments confirm that direct interaction between JAK2V617F hematopoietic cells and mesenchymal stromal cells upregulates S100A8 in stromal cells, independent of TGFβ alone. In line, genetic ablation of S100A9 in the hematopoietic but not stromal compartment significantly improves the MPN phenotype and normalizes BM fibrosis. Our data highlight the hematopoietic origin of the inflammatory signals driving fibrosis. These insights pave the way for potential therapeutic strategies targeting inflammatory signaling pathways in MPN to mitigate fibrosis and improve patient outcomes.</p>","PeriodicalId":12982,"journal":{"name":"HemaSphere","volume":"9 8","pages":""},"PeriodicalIF":14.6000,"publicationDate":"2025-08-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/hem3.70179","citationCount":"0","resultStr":"{\"title\":\"Inhibiting the alarmin-driven hematopoiesis-stromal cell crosstalk in primary myelofibrosis ameliorates bone marrow fibrosis\",\"authors\":\"Hélène F. E. Gleitz, Stijn N. R. Fuchs, Inge A. M. Snoeren, Charlotte Boys, James Nagai, Hector Tejeda-Mora, Vanessa Klöker, Jessica E. Pritchard, Iris J. Bakker, Marta Gargallo Garasa, Eric Bindels, Julio Saez-Rodriguez, Thomas Vogl, Rafael Kramann, Aurélien Dugourd, Ivan G. Costa, Rebekka K. 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Inhibiting the alarmin-driven hematopoiesis-stromal cell crosstalk in primary myelofibrosis ameliorates bone marrow fibrosis
Inflammation from the hematopoietic compartment is a critical driver of fibrosis and cytopenias in myeloproliferative neoplasms (MPNs). We previously demonstrated that tasquinimod ameliorates the MPN phenotype, reducing splenomegaly and normalizing fibrosis in a JAK2V617F-driven preclinical model. Using bulk RNA sequencing, we now show that tasquinimod primarily targets the malignant JAK2V617F hematopoietic clone, particularly affecting megakaryocytes and monocytes. Tasquinimod downregulates pro-proliferative pathways, MYC targets, and mTORC signaling, while increasing apoptosis in particularly in JAK2V617F mutant cells. Our data reveal that tasquinimod reverses TGFβ-driven fibrotic reprogramming of megakaryocytes and monocytes. This reversal is crucial for mitigating the pro-fibrotic interactions and signaling in the BM, thereby decreasing the activation of stromal cells. Coculture experiments confirm that direct interaction between JAK2V617F hematopoietic cells and mesenchymal stromal cells upregulates S100A8 in stromal cells, independent of TGFβ alone. In line, genetic ablation of S100A9 in the hematopoietic but not stromal compartment significantly improves the MPN phenotype and normalizes BM fibrosis. Our data highlight the hematopoietic origin of the inflammatory signals driving fibrosis. These insights pave the way for potential therapeutic strategies targeting inflammatory signaling pathways in MPN to mitigate fibrosis and improve patient outcomes.
期刊介绍:
HemaSphere, as a publication, is dedicated to disseminating the outcomes of profoundly pertinent basic, translational, and clinical research endeavors within the field of hematology. The journal actively seeks robust studies that unveil novel discoveries with significant ramifications for hematology.
In addition to original research, HemaSphere features review articles and guideline articles that furnish lucid synopses and discussions of emerging developments, along with recommendations for patient care.
Positioned as the foremost resource in hematology, HemaSphere augments its offerings with specialized sections like HemaTopics and HemaPolicy. These segments engender insightful dialogues covering a spectrum of hematology-related topics, including digestible summaries of pivotal articles, updates on new therapies, deliberations on European policy matters, and other noteworthy news items within the field. Steering the course of HemaSphere are Editor in Chief Jan Cools and Deputy Editor in Chief Claire Harrison, alongside the guidance of an esteemed Editorial Board comprising international luminaries in both research and clinical realms, each representing diverse areas of hematologic expertise.