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Published on: October 31, 2012
Characterization of Induced Pluripotent Stem Cell Microvesicle Genesis, Morphology and Pluripotent Content
Jing Zhou1,2, Shima Ghoroghi1, Alberto Benito-Martin3
1Department of Biological Sciences, City University of New York, Lehman College, 250 Bedford Park Boulevard West, Bronx, NY 10468.
Abstract:
Microvesicles (MVs) are lipid bilayer-covered cell fragments that range in diameter from 30 nm-1 uM and are released from all cell types. An increasing number of studies reveal that MVs contain microRNA, mRNA and protein that can be detected in the extracellular space. In this study, we characterized induced pluripotent stem cell (iPSC) MV genesis, content and fusion to retinal progenitor cells (RPCs) in vitro. Nanoparticle tracking revealed that iPSCs released approximately 2200 MVs cell/hour in the first 12 hrs with an average diameter of 122 nm. Electron and light microscopic analysis of iPSCs showed MV release via lipid bilayer budding. The mRNA content of iPSC MVs was characterized and revealed the presence of the transcription factors Oct-3/4, Nanog, Klf4, and C-Myc. The protein content of iPSCs MVs, detected by immunogold electron microscopy, revealed the presence of the Oct-3/4 and Nanog. Isolated iPSC MVs were shown to fuse with RPCs in vitro at multiple points along the plasma membrane. These findings demonstrate that the mRNA and protein cargo in iPSC MVs have established roles in maintenance of pluripotency. Building on this work, iPSC derived MVs may be shown to be involved in maintaining cellular pluripotency and may have application in regenerative strategies for neural tissue.
Insights
Induced pluripotent stem cell-derived microvesicles (MVs) carry mRNA and proteins essential for pluripotency. These MVs fuse with retinal progenitor cells, suggesting potential in regenerative medicine for neural tissue repair.
Area of Science:
- Stem Cell Biology
- Extracellular Vesicles
- Regenerative Medicine
Background:
- Microvesicles (MVs) are cell fragments released from various cell types.
- MVs contain microRNA, mRNA, and proteins, playing roles in intercellular communication.
- Induced pluripotent stem cells (iPSCs) hold promise for regenerative therapies.
Purpose of the Study:
- To characterize the biogenesis, content, and fusion of iPSC-derived MVs with retinal progenitor cells (RPCs).
- To investigate the potential of iPSC-MVs in maintaining cellular pluripotency and neural tissue regeneration.
Main Methods:
- Nanoparticle tracking analysis to quantify MV release and size.
- Electron and light microscopy to observe MV genesis and fusion.
- mRNA and protein content analysis of iPSC-MVs using molecular techniques and immunogold electron microscopy.
Main Results:
- iPSCs release approximately 2200 MVs/cell/hour, averaging 122 nm in diameter, via lipid bilayer budding.
- iPSC-MVs contain mRNA and proteins (Oct-3/4, Nanog, Klf4, C-Myc) crucial for pluripotency.
- Isolated iPSC-MVs demonstrated fusion with RPCs in vitro.
Conclusions:
- iPSC-derived MVs carry cargo that maintains pluripotency.
- These MVs fuse with target cells, indicating potential therapeutic applications.
- iPSC-MVs may offer novel regenerative strategies for neural tissues.
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