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Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Human NOTCH4 is a key target of RUNX1 in megakaryocytic differentiation
Yueying Li1, Chen Jin1,2, Hao Bai3,4
1Key Laboratory of Genomic and Precision Medicine, Collaborative Innovation Center of Genetics and Development, Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing, China.
Abstract:
Megakaryocytes (MKs) in adult marrow produce platelets that play important roles in blood coagulation and hemostasis. Monoallelic mutations of the master transcription factor gene RUNX1 lead to familial platelet disorder (FPD) characterized by defective MK and platelet development. However, the molecular mechanisms of FPD remain unclear. Previously, we generated human induced pluripotent stem cells (iPSCs) from patients with FPD containing a RUNX1 nonsense mutation. Production of MKs from the FPD-iPSCs was reduced, and targeted correction of the RUNX1 mutation restored MK production. In this study, we used isogenic pairs of FPD-iPSCs and the MK differentiation system to identify RUNX1 target genes. Using integrative genomic analysis of hematopoietic progenitor cells generated from FPD-iPSCs, and mutation-corrected isogenic controls, we identified 2 gene sets the transcription of which is either up- or downregulated by RUNX1 in mutation-corrected iPSCs. Notably, NOTCH4 expression was negatively controlled by RUNX1 via a novel regulatory DNA element within the locus, and we examined its involvement in MK generation. Specific inactivation of NOTCH4 by an improved CRISPR-Cas9 system in human iPSCs enhanced megakaryopoiesis. Moreover, small molecules known to inhibit Notch signaling promoted MK generation from both normal human iPSCs and postnatal CD34+ hematopoietic stem and progenitor cells. Our study newly identified NOTCH4 as a RUNX1 target gene and revealed a previously unappreciated role of NOTCH4 signaling in promoting human megakaryopoiesis. Our work suggests that human iPSCs with monogenic mutations have the potential to serve as an invaluable resource for discovery of novel druggable targets.
Insights
Familial Platelet Disorder (FPD) involves defective megakaryocyte (MK) development. Researchers identified NOTCH4 as a RUNX1 target gene, revealing its role in inhibiting MK production and suggesting new therapeutic targets.
Area of Science:
- Hematology
- Stem Cell Biology
- Molecular Genetics
Background:
- Megakaryocytes (MKs) are crucial for platelet production, essential for hemostasis.
- RUNX1 mutations cause Familial Platelet Disorder (FPD), impairing MK and platelet development.
- The precise molecular mechanisms underlying FPD remain incompletely understood.
Purpose of the Study:
- To identify RUNX1 target genes using patient-derived induced pluripotent stem cells (iPSCs).
- To elucidate the role of identified RUNX1 targets in megakaryopoiesis.
- To explore potential therapeutic strategies for FPD and related disorders.
Main Methods:
- Generation and differentiation of isogenic human iPSC lines from FPD patients with RUNX1 mutations.
- Integrative genomic analysis to identify RUNX1-regulated gene sets.
- CRISPR-Cas9 gene editing to inactivate NOTCH4 and assessment of megakaryopoiesis.
- Pharmacological inhibition of Notch signaling in hematopoietic stem and progenitor cells.
Main Results:
- Identified gene sets transcriptionally regulated by RUNX1 during hematopoietic differentiation.
- Discovered NOTCH4 as a direct RUNX1 target gene, negatively regulated by RUNX1.
- Demonstrated that NOTCH4 inhibition enhances human megakaryopoiesis.
- Showed that inhibiting Notch signaling promotes MK generation from normal iPSCs and CD34+ cells.
Conclusions:
- NOTCH4 is a novel RUNX1 target gene that suppresses human megakaryopoiesis.
- NOTCH4 signaling represents a previously unrecognized pathway regulating megakaryopoiesis.
- Targeting NOTCH4 signaling offers a potential therapeutic avenue for FPD and related conditions.
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