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| DOI | 10.3389/FCELL.2020.592035 | ||||
| Año | 2020 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
Erythropoiesis is the most robust cellular differentiation and proliferation system, with a production of similar to 2 x 10(11) cells per day. In this fine-tuned process, the hematopoietic stem cells (HSCs) generate erythroid progenitors, which proliferate and mature into erythrocytes. During erythropoiesis, mitochondria are reprogrammed to drive the differentiation process before finally being eliminated by mitophagy. In erythropoiesis, mitochondrial dynamics (MtDy) are expected to be a key regulatory point that has not been described previously. We described that a specific MtDy pattern occurs in human erythropoiesis from EPO-induced human CD34(+) cells, characterized predominantly by mitochondrial fusion at early stages followed by fission at late stages. The fusion protein MFN1 and the fission protein FIS1 are shown to play a key role in the progression of erythropoiesis. Fragmentation of the mitochondrial web by the overexpression of FIS1 (gain of fission) resulted in both the inhibition of hemoglobin biosynthesis and the arrest of erythroid differentiation, keeping cells in immature differentiation stages. These cells showed specific mitochondrial features as compared with control cells, such as an increase in round and large mitochondrial morphology, low mitochondrial membrane potential, a drop in the expression of the respiratory complexes II and IV and increased ROS. Interestingly, treatment with the mitochondrial permeability transition pore (mPTP) inhibitor, cyclosporin A, rescued mitochondrial morphology, hemoglobin biosynthesis and erythropoiesis. Studies presented in this work reveal MtDy as a hot spot in the control of erythroid differentiation, which might signal downstream for metabolic reprogramming through regulation of the mPTP.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Gonzalez-Ibanez, Alvaro | Hombre |
Universidad Nacional Andrés Bello - Chile
Instituto Milenio de Oceanografía - Chile Millennium Institute on Immunology and Immunotherapy - Chile |
| 2 | RUIZ-HINCAPIE, LINA MARIA | Mujer |
Universidad Autónoma de Chile - Chile
|
| 3 | JENSEN-ROJAS, ERIK LOUIS | Hombre |
Universidad Nacional Andrés Bello - Chile
|
| 4 | Echeverria, Cesar A. | Hombre |
Universidad de Atacama - Chile
|
| 5 | Romero, Valentina | Mujer |
Universidad Mayor - Chile
|
| 6 | Stiles, Linsey | Mujer |
UNIV CALIF LOS ANGELES - Estados Unidos
David Geffen School of Medicine at UCLA - Estados Unidos |
| 7 | Zhang, Long | Hombre |
UNIV CALIF LOS ANGELES - Estados Unidos
David Geffen School of Medicine at UCLA - Estados Unidos |
| 8 | Elorza, Alvaro A. | Hombre |
Universidad Nacional Andrés Bello - Chile
Instituto Milenio de Oceanografía - Chile Millennium Institute on Immunology and Immunotherapy - Chile |
| Fuente |
|---|
| FONDECYT |
| Fondo Nacional de Desarrollo Científico y Tecnológico |
| Millennium Institute on Immunology and Immunotherapy |
| Ph.D. CONICYT Scholarship |
| Agradecimiento |
|---|
| This work was funded by the grants: Fondecyt 1100995 (AE), Fondecyt 1180983 (AE), DI-209-12/N (AE), Millennium Institute on immunology and Immunotherapy P09-016-F (AE), and Ph.D. CONICYT Scholarship 2120552 DN2012 (AG-I). |
| This work was funded by the grants: Fondecyt 1100995 (AE), Fondecyt 1180983 (AE), DI-209-12/N (AE), Millennium Institute on immunology and Immunotherapy P09-016-F (AE), and Ph.D. CONICYT Scholarship 2120552 DN2012 (AG-I). |