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Receptors for advanced glycation end-products targeting protect against hyperoxia-induced lung injury in mice
Paul R Reynolds1, Robert E Schmitt, Stephen D Kasteler
1Department of Internal Medicine, Pulmonary Division, University of Utah Health Sciences Center, Salt Lake City, Utah, USA. paul.reynolds@hsc.utah.edu
Abstract:
Patients with acute lung injury almost always require supplemental oxygen during treatment; however, elevated oxygen itself is toxic. Receptors for advanced glycation end-products (RAGE) are multi-ligand cell surface receptors predominantly localized to alveolar type I cells that influence development and cigarette smoke-induced inflammation, but studies that address the role of RAGE in acute lung injury are insufficient. In the present investigation, we test the hypothesis that RAGE signaling functions in hyperoxia-induced inflammation. RAGE-null mice exposed to hyperoxia survived 3 days longer than age-matched wild-type mice. After 4 days in hyperoxia, RAGE-null mice had less total cell infiltration into the airway, decreased total protein leak, diminished alveolar damage in hematoxylin and eosin-stained lung sections, and a lower lung wet-to-dry weight ratio. An inflammatory cytokine antibody array revealed decreased secretion of several proinflammatory molecules in lavage fluid obtained from RAGE knockout mice when compared with wild-type control animals. Real-time RT-PCR and immunoblotting revealed that hyperoxia induced RAGE expression in primary alveolar epithelial cells, and immunohistochemistry identified increased RAGE expression in the lungs of mice after exposure to hyperoxia. These data reveal that RAGE targeting leads to a diminished hyperoxia-induced pulmonary inflammatory response. Further research into the role of RAGE signaling in the lung should identify novel targets likely to be important in the therapeutic alleviation of lung injury and associated persistent inflammation.
Insights
Receptors for advanced glycation end-products (RAGE) worsen lung inflammation from high oxygen. Blocking RAGE in mice reduced inflammation and improved survival, suggesting RAGE is a therapeutic target for acute lung injury.
Area of Science:
- Pulmonary Medicine
- Inflammation Research
- Cell Biology
Background:
- Supplemental oxygen is crucial for acute lung injury (ALI) but can be toxic.
- Receptors for advanced glycation end-products (RAGE) are implicated in lung inflammation, but their role in ALI is not fully understood.
Purpose of the Study:
- To investigate the role of RAGE signaling in hyperoxia-induced pulmonary inflammation and injury.
Main Methods:
- Utilized RAGE-null mice exposed to hyperoxia.
- Assessed survival rates, inflammatory cell infiltration, protein leakage, alveolar damage, and lung wet-to-dry ratios.
- Analyzed inflammatory cytokine profiles using antibody arrays.
- Quantified RAGE expression via real-time RT-PCR, immunoblotting, and immunohistochemistry.
Main Results:
- RAGE-null mice exhibited significantly longer survival under hyperoxia compared to wild-type mice.
- Reduced lung inflammation, including decreased cell infiltration, protein leakage, and alveolar damage, was observed in RAGE-null mice.
- Hyperoxia exposure upregulated RAGE expression in alveolar epithelial cells and lung tissue.
- A decrease in pro-inflammatory cytokine secretion was noted in RAGE-null mice.
Conclusions:
- RAGE signaling plays a critical role in mediating hyperoxia-induced pulmonary inflammation.
- Targeting RAGE can attenuate lung injury and inflammation caused by elevated oxygen levels.
- RAGE represents a potential therapeutic target for managing ALI and associated persistent inflammation.