Open access · OA
via OpenAlex
FOXO3‐mTOR metabolic cooperation in the regulation of erythroid cell maturation and homeostasis
Xin Zhang, Genís Campreciós, Pauline Rimmelé, Raymond Liang, Safak Yalcin, Sathish Kumar Mungamuri, Jeffrey Barminko, Valentina d’Escamard, Margaret H. Baron, Carlo Brugnara, Dmitri Papatsenko, Stefano Rivella, Saghi Ghaffari
American Journal of Hematology · 2014 · ▲ 96 citations
Abstract
Ineffective erythropoiesis is observed in many erythroid disorders including β-thalassemia and anemia of chronic disease in which increased production of erythroblasts that fail to mature exacerbate the underlying anemias. As loss of the transcription factor FOXO3 results in erythroblast abnormalities similar to the ones observed in ineffective erythropoiesis, we investigated the underlying mechanisms of the defective Foxo3(-/-) erythroblast cell cycle and maturation. Here we show that loss of Foxo3 results in overactivation of the JAK2/AKT/mTOR(definition) signaling pathway in primary bone marrow erythroblasts partly mediated by redox modulation. We further show that hyperactivation of mTOR signaling interferes with cell cycle progression in Foxo3 mutant erythroblasts. Importantly, inhibition of mTOR signaling, in vivo or in vitro enhances significantly Foxo3 mutant erythroid cell maturation. Similarly, in vivo inhibition of mTOR remarkably improves erythroid cell maturation and anemia in a model of β-thalassemia. Finally we show that FOXO3 and mTOR are likely part of a larger metabolic network in erythroblasts as together they control the expression of an array of metabolic genes some of which are implicated in erythroid disorders. These combined findings indicate that a metabolism-mediated regulatory network centered by FOXO3 and mTOR control the balanced production and maturation of erythroid cells. They also highlight physiological interactions between these proteins in regulating erythroblast energy. Our results indicate that alteration in the function of this network might be implicated in the pathogenesis of ineffective erythropoiesis.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1002/ajh.23786
- Canonical
- link ↗
- Fetched
- 2026-06-13 MST
Cite this
APA
Zhang, X., Campreciós, G., Rimmelé, P., Liang, R., Yalcin, S., Mungamuri, S.K., Barminko, J., d’Escamard, V., Baron, M.H., Brugnara, C., Papatsenko, D., Rivella, S., & Ghaffari, S. (2014). FOXO3‐mTOR metabolic cooperation in the regulation of erythroid cell maturation and homeostasis. <em>American Journal of Hematology</em>. https://doi.org/10.1002/ajh.23786
Vancouver
Zhang X, Campreciós G, Rimmelé P, Liang R, Yalcin S, Mungamuri SK, et al. FOXO3‐mTOR metabolic cooperation in the regulation of erythroid cell maturation and homeostasis. American Journal of Hematology. 2014. doi:10.1002/ajh.23786.
BibTeX
@article{xin2014FOXOmT,
title = {FOXO3‐mTOR metabolic cooperation in the regulation of erythroid cell maturation and homeostasis},
author = {Xin Zhang and Genís Campreciós and Pauline Rimmelé and Raymond Liang and Safak Yalcin and Sathish Kumar Mungamuri and Jeffrey Barminko and Valentina d’Escamard and Margaret H. Baron and Carlo Brugnara and Dmitri Papatsenko and Stefano Rivella and Saghi Ghaffari},
journal = {American Journal of Hematology},
year = {2014},
doi = {10.1002/ajh.23786},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
biorxiv 2024
Preprint · CC-BY
Glioma-Induced Alterations in Excitatory Neurons are Reversed by mTOR Inhibition
Frontiers in Neuroscience 2020
Open access · CC-BY
LRRK2 Kinase Inhibition Rescues Deficits in Lysosome Function Due to Heterozygous GBA1 Expression in Human iPSC-Derived Neurons
Nutrition & Metabolism 2021
Open access · CC-BY
Disease-associated metabolic alterations that impact satellite cells and muscle regeneration: perspectives and therapeutic outlook
Cellular and Molecular Immunology 2022
Open access · CC-BY
Redox regulation of the immune response
Nature Communications 2016
Open access · CC-BY
NRK1 controls nicotinamide mononucleotide and nicotinamide riboside metabolism in mammalian cells
Molecular Cancer 2023
Open access · CC-BY