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While supplemental angiopoietin-1 (Ang1) improves hematopoiesis, excessive Ang1 induces bone marrow (BM) impairment, hematopoietic stem cell (HSC) senescence, and erythropoietic defect. Here, we examined how excessive Ang1 disturbs hematopoiesis and explored whether hematopoietic defects were related to its level using K14-Cre;c-Ang1 and Col2.3-Cre;c-Ang1 transgenic mice that systemically and locally overexpress cartilage oligomeric matrix protein-Ang1, respectively. We also investigated the impacts of Tie2 inhibitor and AMD3100 on hematopoietic development. Transgenic mice exhibited excessive angiogenic phenotypes, but K14-Cre;c-Ang1 mice showed more severe defects in growth and life span with higher presence of Ang1 compared with Col2.3-Cre;c-Ang1 mice. Dissimilar to K14-Cre;c-Ang1 mice, Col2.3-Cre;c-Ang1 mice did not show impaired BM retention or senescence of HSCs, erythropoietic defect, or disruption of the stromal cell-derived factor 1 (SDF-1)/CXCR4 axis. However, these mice exhibited a defect in platelet production depending on the expression of Tie2 and globin transcription factor 1 (GATA-1), but not GATA-2, in megakaryocyte progenitor (MP) cells. Treatment with Tie2 inhibitor recovered GATA-1 expression in MP cells and platelet production without changes in circulating RBC in transgenic mice. Consecutive AMD3100 administration not only induced irrecoverable senescence of HSCs but also suppressed formation of RBC, but not platelets, via correlated decreases in number of erythroblasts and their GATA-1 expression in B6 mice. Our results indicate that genetic overexpression of Ang1 impairs hematopoietic development depending on its level, in which megakaryopoiesis is preferentially impaired via activation of Ang1/Tie2 signaling, whereas erythropoietic defect is orchestrated by HSC senescence, inflammation, and disruption of the SDF-1/CXCR4 axis.
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http://dx.doi.org/10.1093/stmcls/sxac080 | DOI Listing |
Adv Sci (Weinh)
September 2025
School of Life Sciences, Zhengzhou University, Zhengzhou, Henan, 450000, China.
Deoxynivalenol (DON) is a prevalent trichothecene mycotoxin that contaminates global food supplies, posing significant health risks; however, targeted therapies against DON are scarce. Although DON-induced anemia is well-documented, the underlying mechanisms remain unclear. In this study, the effects of DON on erythropoiesis are examined in detail using complementary murine models and human primary erythroid cultures.
View Article and Find Full Text PDFIndian J Med Res
June 2025
Department of Haematology, Christian Medical College, Vellore, Tamil Nadu, India.
Background & objectives Genetic defects and altered synthesis of RBCs characterise β-thalassemia and polycythaemia vera (PV), respectively. In both diseases, stress erythropoiesis leads to accelerated erythroid expansion, although iron regulation has not been well studied. Here, we analysed iron parameters and iron regulatory gene expression in individuals affected with β-thalassemia and PV.
View Article and Find Full Text PDFSemin Liver Dis
August 2025
Organ Pathobiology and Therapeutics Institute, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania.
The porphyrias are a group of metabolic disorders that are caused by defects in one of the eight enzymes that synthesize heme. A common feature of all porphyrias is accumulation of porphyrin precursors or porphyrins, which are intermediates of the heme biosynthesis pathway. Approximately 15% of heme biosynthesis occurs in the liver, and excessive hepatic production of porphyrin precursors caused by heme enzyme deficiencies can lead to neurovisceral manifestations.
View Article and Find Full Text PDFInt J Lab Hematol
July 2025
Department of Clinical Genetics, Pathology and Molecular Diagnostics, Office for Medical Services, Lund, Sweden.
Introduction: Imaging flow cytometry (IFC) is a unique method combining multiparameter flow cytometry (MFC) with morphological evaluation of single cells. Since both analyses are integrated in the diagnostic work-up of myelodysplastic neoplasms (MDS), we wanted to explore the possibilities of IFC as a diagnostic tool for MDS, with focus on dyserythropoiesis.
Methods: We analysed fresh bone marrow (BM) aspirates from 26 patients with untreated MDS and MDS/MPN and compared them with 12 normal BM specimens (NBM) exploring the cytoplasmic compartment, nuclear abnormalities, and megaloblastoid changes.
Blood Adv
July 2025
University of Pittsburgh, Pittsburgh, Pennsylvania, United States.
Iron metabolism drives key erythropoietic processes, including hemoglobinization, survival, and proliferation. Here, we developed in vivo methods to interrogate how iron regulates erythropoiesis and report that mitochondrial iron transport via MFRN1 is essential for erythroid cell cycle progression. mfrn1 embryos had severely decreased erythroid cell number caused by cell cycle arrest at G2/M.
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