ArticleBlood advances2023
Matrix stiffness controls megakaryocyte adhesion, fibronectin fibrillogenesis, and proplatelet formation through Itgβ3.
Article in Blood advances, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed, 18 citations in OpenAlex.
- Megakaryocytes in myelofibrosis: mechanisms of fibrotic niche remodeling and therapeutic implications.Biomarker research · 2026Review
- Chemotherapy-induced thrombocytopenia: from "platelet counting" to ecological repair of the bone marrow.Supportive care in cancer : official journal of the Multinational Association of Supportive Care in Cancer · 2026Review
- Blood Mechanical Intelligence: From Force Sensing to Precision Mechanomedicine.Research (Washington, D.C.) · 2026Review
- Emerging Roles of Megakaryocytes in Immune Regulation and Potential Therapeutic Prospects.Cells · 2025Review
- Article
- Optogenetic induction of subcellular CaCommunications biology · 2025Article
- New insights into the generation and function of megakaryocytes in health and disease.Haematologica · 2025Review
- Heterogeneous stiffness of the bone marrow microenvironment regulates the fate decision of haematopoietic stem and progenitor cells.Cell proliferation · 2024Article
- Mechanical confinement prevents ectopic platelet release.Proceedings of the National Academy of Sciences of the United States of America · 2024Article
- Newly identified roles for PIEZO1 mechanosensor in controlling normal megakaryocyte development and in primary myelofibrosis.American journal of hematology · 2024Article
Corrections and comments
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Authors and funding
11 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Megakaryocytes (MKs) are the precursor cells of platelets, located in the bone marrow (BM). Once mature, they extend elongated projections named proplatelets through sinusoid vessels, emerging from the marrow stroma into the circulating blood. Not all signals from the microenvironment that regulate proplatelet formation are understood, particularly those from the BM biomechanics. We sought to investigate how MKs perceive and adapt to modifications of the stiffness of their environment. Although the BM is one of the softest tissue of the body, its rigidification results from excess fibronectin (FN), and other matrix protein deposition occur upon myelofibrosis. Here, we have shown that mouse MKs are able to detect the stiffness of a FN-coated substrate and adapt their morphology accordingly. Using a polydimethylsiloxane substrate with stiffness varying from physiological to pathological marrow, we found that a stiff matrix favors spreading, intracellular contractility, and FN fibrils assembly at the expense of proplatelet formation. Itgb3, but not Itgb1, is required for stiffness sensing, whereas both integrins are involved in fibrils assembly. In contrast, soft substrates promote proplatelet formation in an Itgb3-dependent manner, consistent with the ex vivo decrease in proplatelet formation and the in vivo decrease in platelet number in Itgb3-deficient mice. Our findings demonstrate the importance of environmental stiffness for MK functions with potential pathophysiological implications during pathologies that deregulate FN deposition and modulate stiffness in the marrow.
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