Cargando…

Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro

Eltrombopag (ELT) is a thrombopoietic agent approved for immune thrombocytopenia and also a potent iron chelator. Here we found that ELT exhibited dose-dependent opposing effects on in vitro megakaryopoiesis: low concentrations (≤6 µM, ELT6) stimulated megakaryopoiesis, but high concentrations (30 µ...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Zhi-Jian, Deschmann, Emoke, Ramsey, Haley E., Feldman, Henry A., Psaila, Bethan, Cooper, Nichola, Vlachodimitropoulou, Evangelia, Porter, John, Bussel, James, Georgieff, Michael, Sola-Visner, Martha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Hematology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8753208/
https://www.ncbi.nlm.nih.gov/pubmed/34654056
http://dx.doi.org/10.1182/bloodadvances.2021004207
_version_ 1784632045716111360
author Liu, Zhi-Jian
Deschmann, Emoke
Ramsey, Haley E.
Feldman, Henry A.
Psaila, Bethan
Cooper, Nichola
Vlachodimitropoulou, Evangelia
Porter, John
Bussel, James
Georgieff, Michael
Sola-Visner, Martha
author_facet Liu, Zhi-Jian
Deschmann, Emoke
Ramsey, Haley E.
Feldman, Henry A.
Psaila, Bethan
Cooper, Nichola
Vlachodimitropoulou, Evangelia
Porter, John
Bussel, James
Georgieff, Michael
Sola-Visner, Martha
author_sort Liu, Zhi-Jian
collection PubMed
description Eltrombopag (ELT) is a thrombopoietic agent approved for immune thrombocytopenia and also a potent iron chelator. Here we found that ELT exhibited dose-dependent opposing effects on in vitro megakaryopoiesis: low concentrations (≤6 µM, ELT6) stimulated megakaryopoiesis, but high concentrations (30 µM, ELT30) suppressed megakaryocyte (MK) differentiation and proliferation. The suppressive effects of ELT30 were reproduced by other iron chelators, supporting iron chelation as a likely mechanism. During MK differentiation, committed MK progenitors (CD34(+)/CD41(+) and CD34(−)/CD41(+) cells) were significantly more sensitive than undifferentiated progenitors (CD34(+)/CD41(−) cells) to the suppressive effects of ELT30, which resulted from both decreased proliferation and increased apoptosis. The antiproliferative effects of ELT30 were reversed by increased iron in the culture, as were the proapoptotic effects when exposure to ELT30 was short. Because committed MK progenitors exhibited the highest proliferative rate and the highest sensitivity to iron chelation, we tested whether their iron status influenced their response to ELT during rapid cell expansion. In these studies, iron deficiency reduced the proliferation of CD41(+) cells in response to all ELT concentrations. Severe iron deficiency also reduced the number of MKs generated in response to high thrombopoietin concentrations by ∼50%, compared with iron-replete cultures. Our findings support the hypothesis that although iron deficiency can stimulate certain cells and steps in megakaryopoiesis, it can also limit the proliferation of committed MK progenitors, with severity of iron deficiency and degree of thrombopoietic stimulation influencing the ultimate output. Further studies are needed to clarify how megakaryopoiesis, iron deficiency, and ELT stimulation are clinically interrelated.
format Online
Article
Text
id pubmed-8753208
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Society of Hematology
record_format MEDLINE/PubMed
spelling pubmed-87532082022-01-12 Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro Liu, Zhi-Jian Deschmann, Emoke Ramsey, Haley E. Feldman, Henry A. Psaila, Bethan Cooper, Nichola Vlachodimitropoulou, Evangelia Porter, John Bussel, James Georgieff, Michael Sola-Visner, Martha Blood Adv Platelets and Thrombopoiesis Eltrombopag (ELT) is a thrombopoietic agent approved for immune thrombocytopenia and also a potent iron chelator. Here we found that ELT exhibited dose-dependent opposing effects on in vitro megakaryopoiesis: low concentrations (≤6 µM, ELT6) stimulated megakaryopoiesis, but high concentrations (30 µM, ELT30) suppressed megakaryocyte (MK) differentiation and proliferation. The suppressive effects of ELT30 were reproduced by other iron chelators, supporting iron chelation as a likely mechanism. During MK differentiation, committed MK progenitors (CD34(+)/CD41(+) and CD34(−)/CD41(+) cells) were significantly more sensitive than undifferentiated progenitors (CD34(+)/CD41(−) cells) to the suppressive effects of ELT30, which resulted from both decreased proliferation and increased apoptosis. The antiproliferative effects of ELT30 were reversed by increased iron in the culture, as were the proapoptotic effects when exposure to ELT30 was short. Because committed MK progenitors exhibited the highest proliferative rate and the highest sensitivity to iron chelation, we tested whether their iron status influenced their response to ELT during rapid cell expansion. In these studies, iron deficiency reduced the proliferation of CD41(+) cells in response to all ELT concentrations. Severe iron deficiency also reduced the number of MKs generated in response to high thrombopoietin concentrations by ∼50%, compared with iron-replete cultures. Our findings support the hypothesis that although iron deficiency can stimulate certain cells and steps in megakaryopoiesis, it can also limit the proliferation of committed MK progenitors, with severity of iron deficiency and degree of thrombopoietic stimulation influencing the ultimate output. Further studies are needed to clarify how megakaryopoiesis, iron deficiency, and ELT stimulation are clinically interrelated. American Society of Hematology 2021-12-30 /pmc/articles/PMC8753208/ /pubmed/34654056 http://dx.doi.org/10.1182/bloodadvances.2021004207 Text en © 2021 by The American Society of Hematology. Licensed under Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0), permitting only noncommercial, nonderivative use with attribution. All other rights reserved.
spellingShingle Platelets and Thrombopoiesis
Liu, Zhi-Jian
Deschmann, Emoke
Ramsey, Haley E.
Feldman, Henry A.
Psaila, Bethan
Cooper, Nichola
Vlachodimitropoulou, Evangelia
Porter, John
Bussel, James
Georgieff, Michael
Sola-Visner, Martha
Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title_full Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title_fullStr Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title_full_unstemmed Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title_short Iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
title_sort iron status influences the response of cord blood megakaryocyte progenitors to eltrombopag in vitro
topic Platelets and Thrombopoiesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8753208/
https://www.ncbi.nlm.nih.gov/pubmed/34654056
http://dx.doi.org/10.1182/bloodadvances.2021004207
work_keys_str_mv AT liuzhijian ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT deschmannemoke ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT ramseyhaleye ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT feldmanhenrya ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT psailabethan ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT coopernichola ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT vlachodimitropoulouevangelia ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT porterjohn ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT busseljames ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT georgieffmichael ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro
AT solavisnermartha ironstatusinfluencestheresponseofcordbloodmegakaryocyteprogenitorstoeltrombopaginvitro