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beta(2)-Integrin blockade driven by E-selectin promoter prevents neutrophil sequestration and lung injury in mice
1Department of Pharmacology, College of Medicine, University of Illinois, Chicago, IL 60612-7343, USA.
Abstract:
Interaction of CD11/CD18 beta(2) integrins on polymorphonuclear leukocytes (PMNs) with their counterreceptor, intercellular adhesion molecule-1, on the surface of vascular endothelial cells is a critical event mediating stable PMN adhesion and migration across the pulmonary vascular endothelial barrier. Neutrophil inhibitory factor (NIF), a 41-kDa glycoprotein isolated from the canine hookworm (Ancylostoma caninum), binds to the I domain of CD11a and CD11b and inhibits beta(2) integrin-dependent PMN adhesion. We describe a novel strategy using the endothelial cell-specific E-selectin promoter to induce NIF expression in an inflammation-specific manner in pulmonary vascular endothelial cells. A construct containing NIF cDNA driven by the inducible endothelial cell-specific E-selectin promoter (pESNIF) was transfected into human pulmonary artery endothelial cells (HPAECs). Lipopolysaccharide challenge (known to activate E-selectin) resulted in NIF mRNA and protein expression in transfected HPAECs. NIF expression induced by the E-selectin promoter prevented PMN adhesion to the activated HPAECs, whereas PMNs adhered avidly to activated HPAECs in the absence of NIF expression. To address the utility of this approach in conditionally preventing in vivo PMN sequestration, we injected mice intravenously with cationic liposomes containing the pESNIF construct. Analysis of lung tissue showed that intraperitoneal challenge of Escherichia coli resulted in NIF expression. Inflammation-specific NIF expression induced by the E-selectin promoter prevented lung PMN sequestration and vascular injury induced by E coli challenge. These studies suggest the feasibility of conditionally blocking beta(2) integrin function at sites where the endothelium is activated and thereby of locally preventing PMN activation and migration responses that lead to tissue inflammation.
Insights
This study developed a novel method to inhibit neutrophil adhesion during inflammation. By using an E-selectin promoter to express Neutrophil Inhibitory Factor (NIF), researchers successfully prevented neutrophil sequestration and vascular injury in preclinical models.
Area of Science:
- Immunology
- Molecular Biology
- Vascular Biology
Background:
- Polymorphonuclear leukocyte (PMN) adhesion to endothelial cells is crucial for inflammatory responses.
- CD11/CD18 beta(2) integrins and intercellular adhesion molecule-1 mediate this adhesion.
- Neutrophil Inhibitory Factor (NIF) inhibits beta(2) integrin-dependent PMN adhesion.
Purpose of the Study:
- To develop an inflammation-specific gene therapy strategy to block PMN adhesion.
- To utilize the E-selectin promoter for inducible NIF expression in pulmonary vascular endothelial cells.
- To evaluate the efficacy of this approach in preventing PMN sequestration and vascular injury in vivo.
Main Methods:
- Constructed a plasmid (pESNIF) with NIF cDNA under the E-selectin promoter.
- Transfected human pulmonary artery endothelial cells (HPAECs) with pESNIF.
- Stimulated cells with lipopolysaccharide to activate E-selectin and induce NIF expression.
- Administered pESNIF via liposomes to mice and challenged with Escherichia coli.
- Assessed NIF expression, PMN adhesion, sequestration, and vascular injury.
Main Results:
- Lipopolysaccharide challenge induced NIF mRNA and protein expression in transfected HPAECs.
- E-selectin promoter-driven NIF expression prevented PMN adhesion to activated HPAECs.
- In vivo, E. coli challenge led to NIF expression in mouse lungs.
- This inflammation-specific NIF expression inhibited lung PMN sequestration and vascular injury.
Conclusions:
- A novel strategy for inflammation-specific gene therapy targeting PMN adhesion was established.
- Inducible NIF expression via the E-selectin promoter effectively blocks beta(2) integrin function.
- This approach shows potential for locally preventing PMN-mediated inflammation and tissue damage.