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Updated: May 20, 2026

Murine Dermal Fibroblast Isolation by FACS
Published on: January 7, 2016
The renal (myo-)fibroblast: a heterogeneous group of cells
Abstract:
Several studies have demonstrated that mesenchymal stem cells have the capacity to reverse acute and chronic kidney injury in different experimental models by paracrine mechanisms. This paracrine action may be accounted for, at least in part, by microvesicles (MVs) released from mesenchymal stem cells, resulting in a horizontal transfer of mRNA, microRNA and proteins. MVs, released as exosomes from the endosomal compartment, or as shedding vesicles from the cell surface, are now recognized as being an integral component of the intercellular microenvironment. By acting as vehicles for information transfer, MVs play a pivotal role in cell-to-cell communication. This exchange of information between the injured cells and stem cells has the potential to be bi-directional. Thus, MVs may either transfer transcripts from injured cells to stem cells, resulting in reprogramming of their phenotype to acquire specific features of the tissue, or conversely, transcripts could be transferred from stem cells to injured cells, restraining tissue injury and inducing cell cycle re-entry of resident cells, leading to tissue self-repair. Upon administration with a therapeutic regimen, MVs mimic the effect of mesenchymal stem cells in various experimental models by inhibiting apoptosis and stimulating cell proliferation. In this review, we discuss whether MVs released from mesenchymal stem cells have the potential to be exploited in novel therapeutic approaches in regenerative medicine to repair damaged tissues, as an alternative to stem cell-based therapy.
Insights
Mesenchymal stem cell-derived microvesicles (MVs) show potential for kidney injury repair. These MVs transfer genetic material, mimicking stem cell therapy benefits for tissue regeneration.
Area of Science:
- Cell Biology
- Regenerative Medicine
- Biotechnology
Background:
- Mesenchymal stem cells (MSCs) can reverse kidney injury via paracrine mechanisms.
- Microvesicles (MVs) released by MSCs mediate this paracrine action through horizontal transfer of biomolecules.
- MVs function as key mediators of intercellular communication, transferring mRNA, microRNA, and proteins.
Discussion:
- MSC-derived MVs can facilitate bi-directional information exchange with injured cells.
- MVs may reprogram recipient cells or transfer therapeutic molecules to restrain injury.
- This transfer can induce cell cycle re-entry and promote tissue self-repair.
Key Insights:
- MVs mimic MSC therapeutic effects by inhibiting apoptosis and stimulating proliferation.
- The horizontal transfer of cellular components via MVs is crucial for their regenerative potential.
- MSC-derived MVs offer a cell-free therapeutic alternative for tissue repair.
Outlook:
- Investigating MSC-derived MVs for novel therapeutic strategies in regenerative medicine.
- Exploring MVs as a potential alternative to direct stem cell transplantation for treating kidney injury.
- Further research into MV composition and targeted delivery for enhanced therapeutic efficacy.
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