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Published on: May 1, 2015
Microvesicles derived from dermal myofibroblasts modify the integrity of the blood and lymphatic barriers using
Syrine Arif1, Megan Richer1, Sébastien Larochelle1
1Centre de recherche en organogénèse expérimentale de l'Université Laval/LOEX Centre de recherche du CHU de Québec-Université Laval Quebec Canada.
Abstract:
Microvesicles (MVs) are a subtype of extracellular vesicles that can transfer biological information from their producer cells to target cells. This communication can in turn affect both normal and pathological processes. Mounting evidence has revealed that dermal wound myofibroblasts (Wmyo) produce MVs, which can transfer biomolecules impacting receptor cells such as human dermal microvascular endothelial cells (HDMECs). While the effects of MVs on HDMECs are generally well described in the literature, little is known about the transport of MVs across the HDMEC barrier, and their potential effect on the barrier integrity remains unknown. Here, we investigated these roles of Wmyo-derived MVs on two sub-populations of HDMECs, blood endothelial cells (BECs) and lymphatic endothelial cells (LECs). Using an in vitro model to mimic the endothelial barrier, we showed that MVs crossed the LEC barrier but not the BEC barrier. In addition, we demonstrated that MVs were able to influence the cell-cell junctions of HDMECs. Specifically, we observed that after internalization via the predominantly caveolin-dependent pathway, MVs induced the opening of junctions in BECs. Conversely, in LECs, MVs mainly use the macropinocytosis pathway and induce closure of these junctions. Moreover, proteins in the MV membrane were responsible for this effect, but not specifically those belonging to the VEGF family. Finally, we found that once the LEC barrier permeability was reduced by MV stimuli, MVs ceased to cross the barrier. Conversely, when the BEC barrier was rendered permeable following stimulation with MVs, they were subsequently able to cross the barrier via the paracellular pathway. Taken together, these results suggest that the study of Wmyo-derived MVs offers valuable insights into their interaction with the HDMEC barrier in the context of wound healing. They highlight the potential significance of these MVs in the overall process.
Insights
Wound myofibroblast microvesicles (MVs) differentially affect endothelial barriers. MVs cross lymphatic endothelial cells, closing junctions, but not blood endothelial cells, opening them, impacting wound healing.
Area of Science:
- Cell Biology
- Extracellular Vesicles
- Endothelial Biology
Background:
- Microvesicles (MVs) mediate intercellular communication by transferring biomolecules.
- Dermal wound myofibroblasts (Wmyo) produce MVs that influence human dermal microvascular endothelial cells (HDMECs).
- The transport and barrier effects of Wmyo-MVs on HDMEC subpopulations remain unclear.
Purpose of the Study:
- Investigate Wmyo-MV transport across and effects on blood endothelial cells (BECs) and lymphatic endothelial cells (LECs).
- Determine MV-induced changes in endothelial barrier integrity and cell-cell junctions.
- Elucidate the mechanisms and pathways involved in MV-endothelial interactions.
Main Methods:
- Utilized an in vitro endothelial barrier model with BECs and LECs.
- Tracked Wmyo-MV translocation across endothelial monolayers.
- Analyzed MV effects on endothelial cell-cell junctions and barrier permeability using microscopy and functional assays.
- Investigated MV internalization pathways (caveolin-dependent, macropinocytosis).
Main Results:
- Wmyo-MVs crossed the LEC barrier but not the BEC barrier.
- MVs induced junction opening in BECs via caveolin-dependent pathways.
- MVs induced junction closure in LECs via macropinocytosis.
- MV membrane proteins, not VEGF family members, mediated these junctional effects.
- Barrier permeability changes influenced subsequent MV translocation.
Conclusions:
- Wmyo-derived MVs exhibit distinct interactions with BEC and LEC barriers, influencing their integrity.
- These differential effects suggest a role for MVs in regulating endothelial barrier function during wound healing.
- Understanding MV-endothelial interactions provides insights into pathological and physiological processes in wound repair.
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