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Identification of a Murine Erythroblast Subpopulation Enriched in Enucleating Events by Multi-spectral Imaging Flow Cytometry
Published on: June 6, 2014
The accumulation of miR-125b-5p is indispensable for efficient erythroblast enucleation
Fang Fang1,2,3, Lei Xu1, Liqing Liang1
1Stem Cell and Regenerative Medicine Lab, Beijing Institute of Radiation Medicine, Beijing, 100850, China.
Abstract:
Erythroblast enucleation is a precisely regulated but not clearly understood process. Polycythemia shows pathological erythroblast enucleation, and we discovered a low miR-125b-5p level in terminal erythroblasts of patients with polycythemia vera (PV) compared to those of healthy controls. Exogenous upregulation of miR-125b-5p levels restored the enucleation rate to normal levels. Direct downregulation of miR-125b-5p in mouse erythroblasts simulated the enucleation issue found in patients with PV, and miR-125b-5p accumulation was found in enucleating erythroblasts, collectively suggesting the importance of miR-125b-5p accumulation for erythroblast enucleation. To elucidate the role of miR-125b-5p in enucleation, gain- and loss-of-function studies were performed. Overexpression of miR-125b-5p improved the enucleation of erythroleukemia cells and primary erythroblasts. Infused erythroblasts with higher levels of miR-125b-5p also exhibited accelerated enucleation. In contrast, miR-125b-5p inhibitors significantly suppressed erythrocyte enucleation. Intracellular imaging revealed that in addition to cytoskeletal assembly and nuclear condensation, miR-125b-5p overexpression resulted in mitochondrial reduction and depolarization. Real-time PCR, western blot analysis, luciferase reporter assays, small molecule inhibitor supplementation and gene rescue assays revealed that Bcl-2, as a direct target of miR-125b-5p, was one of the key mediators of miR-125b-5p during enucleation. Following suppression of Bcl-2, the activation of caspase-3 and subsequent activation of ROCK-1 resulted in cytoskeletal rearrangement and enucleation. In conclusion, this study is the first to reveal the pivotal role of miR-125b-5p in erythroblast enucleation.
Insights
MicroRNA-125b-5p accumulation is crucial for normal erythroblast enucleation. Low levels of this microRNA impair red blood cell formation, a finding relevant to polycythemia vera.
Area of Science:
- Hematology
- Molecular Biology
- Cell Biology
Background:
- Erythroblast enucleation, the process of red blood cell nucleus expulsion, is critical for hematopoiesis but not fully understood.
- Pathological erythroblast enucleation occurs in conditions like polycythemia vera (PV).
- Reduced levels of microRNA-125b-5p (miR-125b-5p) were observed in terminal erythroblasts from PV patients.
Purpose of the Study:
- To investigate the role of miR-125b-5p in erythroblast enucleation.
- To determine if miR-125b-5p levels are associated with pathological enucleation in polycythemia vera.
- To elucidate the molecular mechanisms by which miR-125b-5p regulates enucleation.
Main Methods:
- Gain- and loss-of-function studies using erythroleukemia cells and primary mouse erythroblasts.
- Exogenous miR-125b-5p upregulation and inhibitor-mediated downregulation.
- Intracellular imaging, real-time PCR, Western blot, and luciferase reporter assays.
- Analysis of downstream targets including Bcl-2, caspase-3, and ROCK-1.
Main Results:
- Upregulation of miR-125b-5p restored normal enucleation rates in PV erythroblasts and improved enucleation in cell models.
- Downregulation of miR-125b-5p in mouse erythroblasts mimicked PV enucleation defects.
- miR-125b-5p overexpression influenced mitochondrial function and cytoskeletal dynamics.
- Bcl-2 was identified as a direct target, mediating miR-125b-5p's effect on caspase-3 and ROCK-1 activation, crucial for enucleation.
Conclusions:
- miR-125b-5p plays a pivotal role in regulating erythroblast enucleation.
- The miR-125b-5p/Bcl-2/caspase-3/ROCK-1 pathway is a key mechanism controlling red blood cell nucleus expulsion.
- Dysregulation of miR-125b-5p may contribute to the enucleation defects observed in polycythemia vera.
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