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Updated: May 22, 2026

A Microphysiological System to Study Leukocyte-Endothelial Cell Interaction during Inflammation
Published on: December 9, 2021
Protein kinase C-α and arginase I mediate pneumolysin-induced pulmonary endothelial hyperpermeability
Rudolf Lucas1, Guang Yang, Boris A Gorshkov
1Vascular Biology Center and Dept. of Pharmacology and Toxicology, Georgia Health Sciences University, 1459 Laney-Walker Blvd., Augusta, GA 30912-2500, USA. rlucas@georgiahealth.edu
Abstract:
Antibiotics-induced release of the pore-forming virulence factor pneumolysin (PLY) in patients with pneumococcal pneumonia results in its presence days after lungs are sterile and is a major factor responsible for the induction of permeability edema. Here we sought to identify major mechanisms mediating PLY-induced endothelial dysfunction. We evaluated PLY-induced endothelial hyperpermeability in human lung microvascular endothelial cells (HL-MVECs) and human lung pulmonary artery endothelial cells in vitro and in mice instilled intratracheally with PLY. PLY increases permeability in endothelial monolayers by reducing stable and dynamic microtubule content and modulating VE-cadherin expression. These events, dependent upon an increased calcium influx, are preceded by protein kinase C (PKC)-α activation, perturbation of the RhoA/Rac1 balance, and an increase in myosin light chain phosphorylation. At later time points, PLY treatment increases the expression and activity of arginase in HL-MVECs. Arginase inhibition abrogates and suppresses PLY-induced endothelial barrier dysfunction by restoring NO generation. Consequently, a specific PKC-α inhibitor and the TNF-derived tonoplast intrinsic protein peptide, which blunts PLY-induced PKC-α activation, are able to prevent activation of arginase in HL-MVECs and to reduce PLY-induced endothelial hyperpermeability in mice. Arginase I (AI)(+/-)/arginase II (AII)(-/-) C57BL/6 mice, displaying a significantly reduced arginase I expression in the lungs, are significantly less sensitive to PLY-induced capillary leak than their wild-type or AI(+/+)/AII(-/-) counterparts, indicating an important role for arginase I in PLY-induced endothelial hyperpermeability. These results identify PKC-α and arginase I as potential upstream and downstream therapeutic targets in PLY-induced pulmonary endothelial dysfunction.
Insights
Pneumolysin (PLY) released by antibiotics in pneumonia causes lung fluid leakage. Protein Kinase C-alpha (PKC-α) and arginase I are key mediators of this endothelial dysfunction, offering potential therapeutic targets.
Area of Science:
- Pulmonary Medicine
- Cell Biology
- Microbiology
Background:
- Antibiotics can release pneumolysin (PLY) from bacteria in pneumonia.
- PLY contributes to lung vascular permeability and edema even after bacterial clearance.
Purpose of the Study:
- To elucidate the mechanisms of PLY-induced endothelial dysfunction.
- To identify potential therapeutic targets for PLY-mediated lung injury.
Main Methods:
- In vitro studies using human lung microvascular and pulmonary artery endothelial cells.
- In vivo studies in mice with intratracheal PLY instillation.
- Assessment of endothelial permeability, microtubule content, VE-cadherin, calcium influx, PKC-α, RhoA/Rac1, myosin light chain phosphorylation, and arginase activity.
Main Results:
- PLY increased endothelial permeability by disrupting microtubules and VE-cadherin.
- PKC-α activation and altered RhoA/Rac1 balance preceded increased calcium influx and barrier dysfunction.
- Arginase I activity was upregulated by PLY and inhibition restored endothelial barrier function and NO generation.
- PKC-α inhibition and arginase I deficiency reduced PLY-induced hyperpermeability and capillary leak.
Conclusions:
- PKC-α is an upstream activator of arginase I in PLY-induced endothelial dysfunction.
- Arginase I plays a critical role in mediating PLY-induced pulmonary endothelial hyperpermeability.
- Targeting PKC-α and arginase I may be effective therapeutic strategies for pneumococcal pneumonia complications.
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