Related Experiment Video
Updated: Jun 29, 2025

Proplatelet Formation Dynamics of Mouse Fresh Bone Marrow Explants
Published on: May 20, 2021
SET domain containing 2 promotes megakaryocyte polyploidization and platelet generation through methylation of
Lei Chen1, Jingkun Liu1, Kunying Chen1
1Key Laboratory of Genomic and Precision Medicine, Beijing Institute of Genomics, Chinese Academy of Sciences and China National Center for Bioinformation, Beijing, China; University of Chinese Academy of Sciences, Beijing, China.
Background:
Megakaryocytes (MKs) are polyploid cells responsible for producing ∼1011 platelets daily in humans. Unraveling the mechanisms regulating megakaryopoiesis holds the promise for the production of clinical-grade platelets from stem cells, overcoming significant current limitations in platelet transfusion medicine. Previous work identified that loss of the epigenetic regulator SET domain containing 2 (SETD2) was associated with an increased platelet count in mice. However, the role of SETD2 in megakaryopoiesis remains unknown.
Objectives:
Here, we examined how SETD2 regulated MK development and platelet production using complementary murine and human systems.
Methods:
We manipulated the expression of SETD2 in multiple in vitro and ex vivo models to assess the ploidy of MKs and the function of platelets.
Results:
The genetic ablation of Setd2 increased the number of high-ploidy bone marrow MKs. Peripheral platelet counts in Setd2 knockout mice were significantly increased ∼2-fold, and platelets exhibited normal size, morphology, and function. By knocking down and overexpressing SETD2 in ex vivo human cell systems, we demonstrated that SETD2 negatively regulated MK polyploidization by controlling methylation of α-tubulin, microtubule polymerization, and MK nuclear division. Small-molecule inactivation of SETD2 significantly increased the production of high-ploidy MKs and platelets from human-induced pluripotent stem cells and cord blood CD34+ cells.
Conclusion:
These findings identify a previously unrecognized role for SETD2 in regulating megakaryopoiesis and highlight the potential of targeting SETD2 to increase platelet production from human cells for transfusion practices.
Insights
The epigenetic regulator SET domain containing 2 (SETD2) negatively controls megakaryocyte (MK) polyploidization. Targeting SETD2 increases high-ploidy MKs and platelet production from human stem cells, offering potential for transfusion medicine.
Area of Science:
- Hematology
- Epigenetics
- Stem Cell Biology
Background:
- Megakaryocytes (MKs) are crucial for daily platelet production.
- Understanding megakaryopoiesis is key for stem cell-derived platelet therapies.
- The role of SETD2 in MK development was previously unknown.
Purpose of the Study:
- To investigate the function of SETD2 in megakaryocyte development and platelet production.
- To explore SETD2's regulatory mechanisms in both murine and human systems.
Main Methods:
- Genetic manipulation of SETD2 expression in vitro and ex vivo models.
- Assessment of MK ploidy and platelet function.
- Utilizing murine models and human induced pluripotent stem cells (iPSCs) and CD34+ cells.
Main Results:
- Genetic ablation of Setd2 increased high-ploidy MKs and peripheral platelet counts in mice.
- SETD2 negatively regulates MK polyploidization via α-tubulin methylation and microtubule dynamics.
- SETD2 inactivation in human cells significantly boosted high-ploidy MK and platelet production.
Conclusions:
- SETD2 plays a novel inhibitory role in megakaryopoiesis.
- Targeting SETD2 presents a promising strategy for enhancing platelet production from human stem cells.
- This approach could advance platelet transfusion medicine.
More Related Videos
Related Concept Videos
Structure and Function of Platelets
Platelets are continually replenished, circulating in the bloodstream for 9-12 days before being removed by phagocytes, primarily in the spleen. A microliter of circulating blood contains between 150,000 and 450,000...
Master Transcription Regulators
Epigenetic Regulation

