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Biology subjects

Mallo, L.

Publications and source records attributed to Mallo, L..

2 recordsLinked to original sources

CRISPR/Cas9-mediated deletion of Shp1 and Shp2 reveals distinct roles in human megakaryopoiesis and proplatelet formation

The non-receptor protein-tyrosine phosphatases Shp1 (PTPN6) and Shp2 (PTPN11) play critical roles in hematopoietic signaling networks, yet their specific functions in human megakaryopoiesis and thrombopoiesis remain incompletely understood. While Shp2 is recognized in murine models as a positive regulator of thrombopoietin (Tpo)-mediated signaling through the Ras/MAPK and PI3K/AKT pathways, Shp1 has been implicated in RhoA-dependent cytoskeletal remodeling. However, the extent to which these roles translate to human megakaryocyte (MK) development and platelet production is not known. In this study, we systematically investigated the contributions of Shp1 and Shp2 to human MK development and function using CRISPR/Cas9-mediated gene deletion of PTPN6 and PTPN11 in CD34+ hematopoietic stem and progenitor cells (HSPCs), combined with pharmacological inhibition of Shp2 using the structurally-distinct allosteric inhibitors SHP099 and RMC-4550. Efficient gene editing of PTPN6 and PTPN11 resulted in efficient ablation of Shp1 and Shp2 in CD34+ HSPC-derived MKs. Genetic deletion or pharmacological inhibition of Shp2 markedly impaired MK proliferation, polyploidization, maturation, and proplatelet formation, whereas loss of Shp1 expression did not. Further, Shp2 inhibition significantly reduced platelet production in a 3-dimensional human bone marrow tissue model. Deletion and inhibition of Shp2 abrogated Tpo-induced ERK1/2 and AKT phosphorylation, confirming its essential role in Mpl receptor signaling. These findings demonstrate the distinct functional roles of Shp1 and Shp2 in MKs and establish Shp2 as a critical positive regulator of Mpl- mediated megakaryopoiesis and thrombopoiesis. Key PointsO_LIEfficient deletion of Shp1 and Shp2 in human CD34 progenitor cell-derived MKs using CRISPR/Cas9. C_LIO_LILoss of Shp2 expression impairs thrombopoietin-induced human MK maturation, proplatelet formation and Mpl signaling. C_LI

cell biology↗

Megakaryocytes build a cage of extracellular matrix that controls their maturation and anchoring to the vascular niche

Megakaryocytes, the progenitor cells of blood platelets, play a crucial role in hemostasis by residing in the bone marrow and ensuring continuous platelet production. Unlike other hematopoietic cells, megakaryocytes do not enter the blood circulation intact. They remain anchored within the bone marrow while extending cytoplasmic protrusions called proplatelets through the sinusoidal endothelial barrier. These proplatelets subsequently fragment into functional platelets. This unique process of intravasation facilitates efficient platelet production while maintaining the megakaryocyte cell body within the bone marrow niche, thus preventing potential thrombotic complications. How the extracellular matrix (ECM) influences the delicate balance between megakaryocyte retention and proplatelet extension remains largely unknown. Here, we investigate the spatial organization and functional role of ECM components in the megakaryocyte vascular niche. Our findings reveal that laminin and collagen IV form three-dimensional (3D) ECM cages encompassing megakaryocytes and anchor them to the sinusoidal basement membrane. Gene deletion shows the existence of laminin 4 in the ECM cage that is necessary to maintain megakaryocyte-sinusoid interactions. Notably, megakaryocytes actively contribute to the ECM cage assembly; {beta}1/{beta}3 integrin knockout weakens these structures, increasing intravasation and entire megakaryocyte entry into circulation. The retention of megakaryocytes by these 3D ECM cages depends on dynamic remodeling processes. Inhibition of ECM proteolysis results in denser cage formation, increasing the frequence of immature megakaryocytes with impaired demarcation membrane system (DMS) development. Thus, the ECM cage represents a novel concept of an active and dynamic 3D microenvironment that is continuously remodeled and essential for maintaining megakaryocyte perivascular positioning. This specific microarchitecture guides megakaryocyte maturation and intravasation, underscoring the critical role of ECM microarchitecture and dynamics in megakaryocyte function. Key PointsO_LIMegakaryocytes form a three-dimensional (3D) cage composed of laminin and collagen IV connected to the basement membrane surrounding them. This microarchitecture stabilizes megakaryocytes within their vascular niche. C_LIO_LI{beta}1/{beta}3 integrins and MMP are key ECM cage regulators that assist megakaryocyte maturation and intravasation at the bone marrow-blood interface. C_LI

physiology↗