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GATA2 heterozygosity causes an epigenetic feedback mechanism resulting in myeloid and erythroid dysplasia.
Gioacchino, Emanuele; Zhang, Wei; Koyunlar, Cansu; Zink, Joke; de Looper, Hans; Gussinklo, Kirsten J; Hoogenboezem, Remco; Bosch, Dennis; Bindels, Eric; Touw, Ivo P; de Pater, Emma.
Afiliação
  • Gioacchino E; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Zhang W; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Koyunlar C; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Zink J; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • de Looper H; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Gussinklo KJ; Cancer Genome Editing Center, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Hoogenboezem R; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Bosch D; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Bindels E; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • Touw IP; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
  • de Pater E; Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
Br J Haematol ; 2024 Jun 18.
Article em En | MEDLINE | ID: mdl-38887897
ABSTRACT
The transcription factor GATA2 has a pivotal role in haematopoiesis. Heterozygous germline GATA2 mutations result in a syndrome characterized by immunodeficiency, bone marrow failure and predispositions to myelodysplastic syndrome (MDS) and acute myeloid leukaemia. Clinical symptoms in these patients are diverse and mechanisms driving GATA2-related phenotypes are largely unknown. To explore the impact of GATA2 haploinsufficiency on haematopoiesis, we generated a zebrafish model carrying a heterozygous mutation of gata2b (gata2b+/-), an orthologue of GATA2. Morphological analysis revealed myeloid and erythroid dysplasia in gata2b+/- kidney marrow. Because Gata2b could affect both transcription and chromatin accessibility during lineage differentiation, this was assessed by single-cell (sc) RNA-seq and single-nucleus (sn) ATAC-seq. Sn-ATAC-seq showed that the co-accessibility between the transcription start site (TSS) and a -3.5-4.1 kb putative enhancer was more robust in gata2b+/- zebrafish HSPCs compared to wild type, increasing gata2b expression and resulting in higher genome-wide Gata2b motif use in HSPCs. As a result of increased accessibility of the gata2b locus, gata2b+/- chromatin was also more accessible during lineage differentiation. scRNA-seq data revealed myeloid differentiation defects, that is, impaired cell cycle progression, reduced expression of cebpa and cebpb and increased signatures of ribosome biogenesis. These data also revealed a differentiation delay in erythroid progenitors, aberrant proliferative signatures and down-regulation of Gata1a, a master regulator of erythropoiesis, which worsened with age. These findings suggest that cell-intrinsic compensatory mechanisms, needed to obtain normal levels of Gata2b in heterozygous HSPCs to maintain their integrity, result in aberrant lineage differentiation, thereby representing a critical step in the predisposition to MDS.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article