Cell-type-specific crosstalk between p38 MAPK and Rho signaling in lung micro- and macrovascular barrier dysfunction
Tinghuai Wu1, Junjie Xing, Anna A Birukova
1Lung Injury Center, Section of Pulmonary and Critical Medicine, Department of Medicine, University of Chicago, Chicago, IL 60637, USA.
Abstract:
Lung inflammation and alterations in endothelial cell (EC) micro- and macrovascular permeability are key events to development of acute lung injury. Using ECs derived from human pulmonary artery and lung microvasculature, we investigated the interplay between p38 stress mitogen-activated protein kinase (MAPK) and Rho guanosine triphosphatase signaling in inflammatory and hyperpermeability responses. Both cell types were treated with Staphylococcus aureus-derived peptidoglycan (PepG) and lipoteichoic acid (LTA) with or without pretreatment with p38 MAPK or Rho kinase inhibitors. LTA and PepG increased permeability markedly in both pulmonary macrovascular and microvascular ECs. Agonist-induced hyperpermeability was accompanied by cytoskeletal remodeling, disruption of cell-cell contacts, formation of paracellular gaps, and activation of p38 MAPK, nuclear factor kappa-B (NFκB), and Rho/Rho kinase signaling. In macrovascular ECs, pharmacologic inhibition of Rho kinase with Y27632 suppressed p38 MAP kinase cascade activation significantly, whereas inhibition of p38 MAPK with SB203580 had no effect on Rho activation. In contrast, inhibition of p38 MAPK in microvascular ECs suppressed LTA/PepG-induced activation of Rho, whereas the Rho inhibitor suppressed activation of p38 MAPK. Inhibition of either p38 MAPK or Rho kinase attenuated activation of NFκB signaling substantially. These results demonstrate cell-type-specific differences in signaling induced by Staphylococcus aureus-derived pathogens in pulmonary endothelium. Thus, although Gram-positive bacterial compounds caused barrier dysfunction in both EC types, it was induced by a different pattern of crosstalk between Rho, p38 MAPK, and NFκB signaling. These observations may have important implications in defining microvasculature-specific therapeutic strategies aimed at the treatment of sepsis and acute lung injury induced by Gram-positive bacterial pathogens.
Insights
Staphylococcus aureus toxins increase lung endothelial cell permeability via distinct p38 MAPK and Rho signaling pathways. Targeting these pathways may offer new treatments for acute lung injury and sepsis.
Area of Science:
- Pulmonary vascular biology
- Cell signaling
- Inflammatory disease
Background:
- Lung inflammation and altered endothelial cell (EC) permeability are critical in acute lung injury.
- Understanding the signaling pathways involved is key to developing effective treatments.
Purpose of the Study:
- To investigate the interplay between p38 mitogen-activated protein kinase (MAPK) and Rho guanosine triphosphatase signaling in pulmonary ECs.
- To determine cell-type-specific differences in responses to Staphylococcus aureus components.
Main Methods:
- Human pulmonary artery and microvascular ECs were treated with Staphylococcus aureus components (peptidoglycan and lipoteichoic acid).
- Cells were pretreated with p38 MAPK or Rho kinase inhibitors.
- Changes in permeability, cytoskeletal remodeling, and signaling pathway activation (p38 MAPK, Rho, NFκB) were assessed.
Main Results:
- Both peptidoglycan and lipoteichoic acid increased EC permeability, causing cytoskeletal changes and gap formation.
- In macrovascular ECs, Rho kinase inhibition affected p38 MAPK activation, but not vice-versa.
- In microvascular ECs, p38 MAPK inhibition affected Rho activation, and Rho inhibition affected p38 MAPK activation.
- Inhibition of either pathway attenuated nuclear factor kappa-B (NFκB) signaling.
Conclusions:
- Staphylococcus aureus components induce barrier dysfunction in pulmonary endothelium through cell-type-specific signaling crosstalk.
- Distinct interactions between Rho, p38 MAPK, and NFκB pathways occur in macrovascular versus microvascular ECs.
- These findings suggest potential for targeted therapies for sepsis and acute lung injury.
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