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Updated: May 24, 2026

Proliferation and Differentiation of Murine Myeloid Precursor 32D/G-CSF-R Cells
Published on: February 21, 2018
Dicer1 deletion in myeloid-committed progenitors causes neutrophil dysplasia and blocks macrophage/dendritic cell
Mir Farshid Alemdehy1, Nicole G J A van Boxtel, Hans W J de Looper
1Department of Hematology, Erasmus University Medical Center, Dr Molewaterplein 50, Rotterdam, The Netherlands.
Abstract:
MicroRNAs (miRNAs) have the potential to regulate cellular differentiation programs; however, miRNA deficiency in primary hematopoietic stem cells (HSCs) results in HSC depletion in mice, leaving the question of whether miRNAs play a role in early-lineage decisions un-answered. To address this issue, we deleted Dicer1, which encodes an essential RNase III enzyme for miRNA biogenesis, in murine CCAAT/enhancer-binding protein α (C/EBPA)-positive myeloid-committed progenitors in vivo. In contrast to the results in HSCs, we found that miRNA depletion affected neither the number of myeloid progenitors nor the percentage of C/EBPA-positive progenitor cells. Analysis of gene-expression profiles from wild-type and Dicer1-deficient granulocyte-macrophage progenitors (GMPs) revealed that 20 miRNA families were active in GMPs. Of the derepressed miRNA targets in Dicer1-null GMPs, 27% are normally exclusively expressed in HSCs or are specific for multipotent progenitors and erythropoiesis, indicating an altered gene-expression landscape. Dicer1-deficient GMPs were defective in myeloid development in vitro and exhibited an increased replating capacity, indicating the regained self-renewal potential of these cells. In mice, Dicer1 deletion blocked monocytic differentiation, depleted macrophages, and caused myeloid dysplasia with morphologic features of Pelger-Huët anomaly. These results provide evidence for a miRNA-controlled switch for a cellular program of self-renewal and expansion toward myeloid differentiation in GMPs.
Insights
MicroRNAs (miRNAs) regulate myeloid differentiation. Deleting Dicer1 in myeloid progenitors blocked differentiation, causing myeloid dysplasia and revealing a miRNA-controlled switch for self-renewal and myeloid development.
Area of Science:
- Hematopoiesis
- Gene Regulation
- Stem Cell Biology
Background:
- MicroRNAs (miRNAs) are crucial regulators of cellular differentiation.
- miRNA deficiency in hematopoietic stem cells (HSCs) leads to HSC depletion.
- The role of miRNAs in early myeloid lineage decisions remains unclear.
Purpose of the Study:
- To investigate the role of miRNAs in myeloid lineage commitment.
- To determine the function of Dicer1 in CCAAT/enhancer-binding protein α (C/EBPA)-positive myeloid-committed progenitors.
Main Methods:
- Deletion of Dicer1 in murine myeloid progenitors in vivo.
- Analysis of gene-expression profiles in wild-type and Dicer1-deficient granulocyte-macrophage progenitors (GMPs).
- In vitro and in vivo assessment of myeloid development and differentiation.
Main Results:
- miRNA depletion did not affect myeloid progenitor numbers or C/EBPA-positive cells.
- Dicer1 deficiency altered the gene-expression landscape in GMPs, with derepressed targets normally expressed in HSCs or erythropoiesis.
- Dicer1-deficient GMPs showed impaired myeloid development in vitro and increased self-renewal capacity.
- In vivo, Dicer1 deletion blocked monocytic differentiation, depleted macrophages, and caused myeloid dysplasia.
Conclusions:
- miRNAs play a critical role in controlling the switch from self-renewal to myeloid differentiation in GMPs.
- Dicer1-dependent miRNA biogenesis is essential for proper myeloid development and preventing myeloid dysplasia.
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