Cargando…

Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects

The transcription factor RUNX1, a pivotal regulator of HSCs and haematopoiesis, is a frequent target of chromosomal translocations, point mutations or altered gene/protein dosage. These modifications lead or contribute to the development of myelodysplasia, leukaemia or platelet disorders. A better u...

Descripción completa

Detalles Bibliográficos
Autores principales: Mazzola, Mara, Pezzotta, Alex, Fazio, Grazia, Rigamonti, Alessandra, Bresciani, Erica, Gaudenzi, Germano, Pelleri, Maria Chiara, Saitta, Claudia, Ferrari, Luca, Parma, Matteo, Fumagalli, Monica, Biondi, Andrea, Cazzaniga, Giovanni, Marozzi, Anna, Pistocchi, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7294146/
https://www.ncbi.nlm.nih.gov/pubmed/32323916
http://dx.doi.org/10.1111/jcmm.15269
_version_ 1783546423318413312
author Mazzola, Mara
Pezzotta, Alex
Fazio, Grazia
Rigamonti, Alessandra
Bresciani, Erica
Gaudenzi, Germano
Pelleri, Maria Chiara
Saitta, Claudia
Ferrari, Luca
Parma, Matteo
Fumagalli, Monica
Biondi, Andrea
Cazzaniga, Giovanni
Marozzi, Anna
Pistocchi, Anna
author_facet Mazzola, Mara
Pezzotta, Alex
Fazio, Grazia
Rigamonti, Alessandra
Bresciani, Erica
Gaudenzi, Germano
Pelleri, Maria Chiara
Saitta, Claudia
Ferrari, Luca
Parma, Matteo
Fumagalli, Monica
Biondi, Andrea
Cazzaniga, Giovanni
Marozzi, Anna
Pistocchi, Anna
author_sort Mazzola, Mara
collection PubMed
description The transcription factor RUNX1, a pivotal regulator of HSCs and haematopoiesis, is a frequent target of chromosomal translocations, point mutations or altered gene/protein dosage. These modifications lead or contribute to the development of myelodysplasia, leukaemia or platelet disorders. A better understanding of how regulatory elements contribute to fine‐tune the RUNX1 expression in haematopoietic tissues could improve our knowledge of the mechanisms responsible for normal haematopoiesis and malignancy insurgence. The cohesin RAD21 was reported to be a regulator of RUNX1 expression in the human myeloid HL60 cell line and during primitive haematopoiesis in zebrafish. In our study, we demonstrate that another cohesin, NIPBL, exerts positive regulation of RUNX1 in three different contexts in which RUNX1 displays important functions: in megakaryocytes derived from healthy donors, in bone marrow samples obtained from adult patients with acute myeloid leukaemia and during zebrafish haematopoiesis. In this model, we demonstrate that alterations in the zebrafish orthologue nipblb reduce runx1 expression with consequent defects in its erythroid and myeloid targets such as gata1a and spi1b in an opposite way to rad21. Thus, also in the absence of RUNX1 translocation or mutations, additional factors such as defects in the expression of NIPBL might induce haematological diseases.
format Online
Article
Text
id pubmed-7294146
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-72941462020-06-15 Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects Mazzola, Mara Pezzotta, Alex Fazio, Grazia Rigamonti, Alessandra Bresciani, Erica Gaudenzi, Germano Pelleri, Maria Chiara Saitta, Claudia Ferrari, Luca Parma, Matteo Fumagalli, Monica Biondi, Andrea Cazzaniga, Giovanni Marozzi, Anna Pistocchi, Anna J Cell Mol Med Original Articles The transcription factor RUNX1, a pivotal regulator of HSCs and haematopoiesis, is a frequent target of chromosomal translocations, point mutations or altered gene/protein dosage. These modifications lead or contribute to the development of myelodysplasia, leukaemia or platelet disorders. A better understanding of how regulatory elements contribute to fine‐tune the RUNX1 expression in haematopoietic tissues could improve our knowledge of the mechanisms responsible for normal haematopoiesis and malignancy insurgence. The cohesin RAD21 was reported to be a regulator of RUNX1 expression in the human myeloid HL60 cell line and during primitive haematopoiesis in zebrafish. In our study, we demonstrate that another cohesin, NIPBL, exerts positive regulation of RUNX1 in three different contexts in which RUNX1 displays important functions: in megakaryocytes derived from healthy donors, in bone marrow samples obtained from adult patients with acute myeloid leukaemia and during zebrafish haematopoiesis. In this model, we demonstrate that alterations in the zebrafish orthologue nipblb reduce runx1 expression with consequent defects in its erythroid and myeloid targets such as gata1a and spi1b in an opposite way to rad21. Thus, also in the absence of RUNX1 translocation or mutations, additional factors such as defects in the expression of NIPBL might induce haematological diseases. John Wiley and Sons Inc. 2020-04-23 2020-06 /pmc/articles/PMC7294146/ /pubmed/32323916 http://dx.doi.org/10.1111/jcmm.15269 Text en © 2020 The Authors. Journal of Cellular and Molecular Medicine published by Foundation for Cellular and Molecular Medicine and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Mazzola, Mara
Pezzotta, Alex
Fazio, Grazia
Rigamonti, Alessandra
Bresciani, Erica
Gaudenzi, Germano
Pelleri, Maria Chiara
Saitta, Claudia
Ferrari, Luca
Parma, Matteo
Fumagalli, Monica
Biondi, Andrea
Cazzaniga, Giovanni
Marozzi, Anna
Pistocchi, Anna
Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title_full Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title_fullStr Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title_full_unstemmed Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title_short Dysregulation of NIPBL leads to impaired RUNX1 expression and haematopoietic defects
title_sort dysregulation of nipbl leads to impaired runx1 expression and haematopoietic defects
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7294146/
https://www.ncbi.nlm.nih.gov/pubmed/32323916
http://dx.doi.org/10.1111/jcmm.15269
work_keys_str_mv AT mazzolamara dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT pezzottaalex dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT faziograzia dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT rigamontialessandra dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT brescianierica dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT gaudenzigermano dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT pellerimariachiara dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT saittaclaudia dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT ferrariluca dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT parmamatteo dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT fumagallimonica dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT biondiandrea dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT cazzanigagiovanni dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT marozzianna dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects
AT pistocchianna dysregulationofnipblleadstoimpairedrunx1expressionandhaematopoieticdefects