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Polymorphonuclear leukocyte adhesion triggers the disorganization of endothelial cell-to-cell adherens junctions
A Del Maschio1, A Zanetti, M Corada
1Laboratory of Vascular Biology, Istituto di Ricerche Farmacologiche Mario Negri, Milano, Italy. delmaschio@irfmn.mnegri.it
Abstract:
Polymorphonuclear leukocytes (PMN) infiltration into tissues is frequently accompanied by increase in vascular permeability. This suggests that PMN adhesion and transmigration could trigger modifications in the architecture of endothelial cell-to-cell junctions. In the present paper, using indirect immunofluorescence, we found that PMN adhesion to tumor necrosis factor-activated endothelial cells (EC) induced the disappearance from endothelial cell-to-cell contacts of adherens junction (AJ) components: vascular endothelial (VE)-cadherin, alpha-catenin, beta-catenin, and plakoglobin. Immunoprecipitation and Western blot analysis of the VE-cadherin/catenin complex showed that the amount of beta-catenin and plakoglobin was markedly reduced from the complex and from total cell extracts. In contrast, VE-cadherin and alpha-catenin were only partially affected. Disorganization of endothelial AJ by PMN was not accompanied by EC retraction or injury and was specific for VE-cadherin/catenin complex, since platelet/endothelial cell adhesion molecule 1 (PECAM-1) distribution at cellular contacts was unchanged. PMN adhesion to EC seems to be a prerequisite for VE-cadherin/catenin complex disorganization. This phenomenon could be fully inhibited by blocking PMN adhesion with an anti-integrin beta 2 mAb, while it could be reproduced by any condition that induced increase of PMN adhesion, such as addition of PMA or an anti-beta 2-activating mAb. The effect on endothelial AJ was specific for PMN since adherent activated lymphocytes did not induce similar changes. High concentrations of protease inhibitors and oxygen metabolite scavengers were unable to prevent AJ disorganization mediated by PMN. PMN adhesion to EC was accompanied by increase in EC permeability in vitro. This effect was dependent on PMN adhesion, was not mediated by proteases and oxygen-reactive metabolites, and could be reproduced by EC treatment with EGTA. Finally, immunohistochemical analysis showed that VE-cadherin distribution was affected by PMN adhesion to the vessel wall in vivo too. This work suggests that PMN adhesion could trigger intracellular signals in EC that possibly regulate VE-cadherin /catenin complex disorganization. This effect could increase EC permeability and facilitate PMN transmigration during the acute inflammatory reaction.
Insights
Polymorphonuclear leukocyte (PMN) adhesion to endothelial cells disrupts adherens junctions, specifically reducing beta-catenin and plakoglobin. This PMN-induced effect increases vascular permeability, facilitating leukocyte transmigration during inflammation.
Area of Science:
- Cell Biology
- Immunology
- Vascular Biology
Background:
- Polymorphonuclear leukocytes (PMN) infiltration increases vascular permeability.
- PMN adhesion and transmigration may alter endothelial cell-to-cell junctions.
Purpose of the Study:
- Investigate how PMN adhesion affects endothelial adherens junctions (AJ).
- Determine the molecular mechanisms and consequences of PMN-induced AJ disorganization.
Main Methods:
- Indirect immunofluorescence to visualize AJ components.
- Immunoprecipitation and Western blot to analyze protein complexes.
- In vitro and in vivo assays to assess endothelial permeability and VE-cadherin distribution.
Main Results:
- PMN adhesion to activated endothelial cells (EC) caused loss of VE-cadherin, beta-catenin, and plakoglobin from cell contacts.
- Beta-catenin and plakoglobin were reduced in AJ complexes and total cell extracts.
- Endothelial permeability increased upon PMN adhesion, independent of proteases or oxygen metabolites.
- VE-cadherin distribution was altered by PMN adhesion in vivo.
Conclusions:
- PMN adhesion triggers intracellular signals in EC, leading to VE-cadherin/catenin complex disorganization.
- This disorganization increases EC permeability, facilitating PMN transmigration.
- The findings elucidate a key mechanism in acute inflammatory responses.