Newly identified roles for PIEZO1 mechanosensor in controlling normal megakaryocyte development and in primary myelofibrosis

Author:

Abbonante Vittorio12,Karkempetzaki Anastasia Iris34,Leon Catherine5,Krishnan Anandi6,Huang Nasi3,Di Buduo Christian A.1,Cattaneo Daniele7,Ward Christina Marie3,Matsuura Shinobu3,Guinard Ines5,Weber Josiane5,De Acutis Aurora8,Vozzi Giovanni8,Iurlo Alessandra7ORCID,Ravid Katya3,Balduini Alessandra19ORCID

Affiliation:

1. Department of Molecular Medicine University of Pavia Pavia Italy

2. Department of Health Sciences Magna Graecia University of Catanzaro Catanzaro Italy

3. Department of Medicine and Whitaker Cardiovascular Institute Boston University Chobanian & Avedisian School of Medicine Boston Massachusetts USA

4. School of Medicine University of Crete Heraklion Greece

5. INSERM, EFS Grand Est, BPPS UMR‐S 1255 Université de Strasbourg Strasbourg France

6. Institute of Immunology Stanford University School of Medicine Palo Alto California United States

7. Hematology Division Foundation IRCCS Ca' Granda Ospedale Maggiore Policlinico Milan Italy

8. Interdepartmental Research Center “E. Piaggio” University of Pisa Pisa Italy

9. Department of Biomedical Engineering Tufts University Medford Massachusetts USA

Abstract

AbstractMechanisms through which mature megakaryocytes (Mks) and their progenitors sense the bone marrow extracellular matrix to promote lineage differentiation in health and disease are still partially understood. We found PIEZO1, a mechanosensitive cation channel, to be expressed in mouse and human Mks. Human mutations in PIEZO1 have been described to be associated with blood cell disorders. Yet, a role for PIEZO1 in megakaryopoiesis and proplatelet formation has never been investigated. Here, we show that activation of PIEZO1 increases the number of immature Mks in mice, while the number of mature Mks and Mk ploidy level are reduced. Piezo1/2 knockout mice show an increase in Mk size and platelet count, both at basal state and upon marrow regeneration. Similarly, in human samples, PIEZO1 is expressed during megakaryopoiesis. Its activation reduces Mk size, ploidy, maturation, and proplatelet extension. Resulting effects of PIEZO1 activation on Mks resemble the profile in Primary Myelofibrosis (PMF). Intriguingly, Mks derived from Jak2V617F PMF mice show significantly elevated PIEZO1 expression, compared to wild‐type controls. Accordingly, Mks isolated from bone marrow aspirates of JAK2V617F PMF patients show increased PIEZO1 expression compared to Essential Thrombocythemia. Most importantly, PIEZO1 expression in bone marrow Mks is inversely correlated with patient platelet count. The ploidy, maturation, and proplatelet formation of Mks from JAK2V617F PMF patients are rescued upon PIEZO1 inhibition. Together, our data suggest that PIEZO1 places a brake on Mk maturation and platelet formation in physiology, and its upregulation in PMF Mks might contribute to aggravating some hallmarks of the disease.

Funder

Agence Nationale de la Recherche

Associazione Italiana per la Ricerca sul Cancro

Ministero della Salute

National Heart, Lung, and Blood Institute

National Institutes of Health

Publisher

Wiley

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