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Updated: Feb 13, 2026

Derivation of Human Embryonic Stem Cells by Immunosurgery
Published on: December 13, 2007
Human embryonic stem cells extracellular vesicles and their effects on immortalized human retinal Müller cells
Yingqian Peng1, Edouard Baulier1, Yifeng Ke1
1Stein Eye Institute, Department of Ophthalmology, UCLA School of Medicine, Los Angeles, CA, United States of America.
Abstract:
Extracellular vesicles (EVs) released by virtually every cell of all organisms are involved in processes of intercellular communication through the delivery of their functional mRNAs, proteins and bioactive lipids. We previously demonstrated that mouse embryonic stem cell-released EVs (mESEVs) are able to transfer their content to different target retinal cells, inducing morphological and biochemical changes in them. The main objective of this paper is to characterize EVs derived from human embryonic stem cells (hESEVs) and investigate the effects that they have on cultured retinal glial, progenitor Müller cells, which are known to give rise to retinal neurons under specific conditions. This would allow us to establish if hESEVs have a pro-regenerative potential not yet described that could be used in the future for treatment of human retinal degenerative diseases. Initially, we showed that hESEVs are heterogeneous in size, contain mRNAs and proteins involved in the induction and maintenance of stem cell pluripotency and can be internalized by cultured Müller cells. After a single exposure to hESEVs these cells display changes in their gene expression profile, and with multiple exposures they de-differentiate and trans-differentiate into retinal neuronal precursors. hESEVs were then fractionated into microvesicles (MVs) and exosomes (EXOs), which were characterized by size, specific surface proteins and biochemical/molecular components. We demonstrate that despite the similar internalization of non-fractionated hESEVs, MVs and EXOs by Müller progenitor cells, in vitro, only the release of MVs' cargo into the cells' cytoplasm induces specific changes in their levels of pluripotency mRNAs and early retinal proteins. EXOs do not produce any detectable effect. Thus, we conclude that MVs and MVs-containing hESEVs are promising agents that possibly could promote the regeneration of diseased or damaged retinas in vivo through inducing glial Müller cells to become replacement neurons.
Insights
Human embryonic stem cell-derived extracellular vesicles (hESEVs) can reprogram Müller cells into retinal neurons. Microvesicles (MVs) within hESEVs are key to this pro-regenerative potential for treating retinal diseases.
Area of Science:
- Cell Biology
- Regenerative Medicine
- Ophthalmology
Background:
- Extracellular vesicles (EVs) mediate intercellular communication by transferring functional molecules.
- Previous studies showed mouse ESC-derived EVs (mESEVs) alter retinal cells.
- Human retinal degenerative diseases lack effective regenerative treatments.
Purpose of the Study:
- Characterize human ESC-derived EVs (hESEVs).
- Investigate hESEV effects on cultured Müller cells for regenerative potential.
- Determine if hESEVs can treat human retinal degenerative diseases.
Main Methods:
- Characterized hESEVs for size, mRNA, and protein content.
- Assessed hESEV internalization by Müller cells.
- Fractionated hESEVs into microvesicles (MVs) and exosomes (EXOs) for comparative analysis.
Main Results:
- hESEVs contain stemness-related molecules and are internalized by Müller cells.
- hESEV exposure induced gene expression changes, de-differentiation, and trans-differentiation into neuronal precursors.
- Only MVs, not EXOs, delivered cargo that altered Müller cell pluripotency mRNA and retinal protein levels.
Conclusions:
- hESEVs, particularly their MV component, show pro-regenerative potential.
- MVs from hESEVs can induce Müller cells to become replacement neurons.
- MVs and hESEVs are promising for treating retinal degeneration by promoting neurogenesis.
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