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Published on: December 9, 2022
Essential role of CCR2 in neutrophil tissue infiltration and multiple organ dysfunction in sepsis
Fabricio O Souto1, José C Alves-Filho, Walter M Turato
1Department of Pharmacology, School of Medicine Ribeirao Preto, University of Sao Paulo, Ribeirao Preto, Sao Paulo, Brazil.
Rationale:
Sepsis is defined as a systemic inflammatory response to infection, which in its severe form is associated with multiple organ dysfunction syndrome (MODS). The precise mechanisms by which MODS develops remain unclear. Neutrophils have a pivotal role in the defense against infections; however, overwhelming activation of neutrophils is known to elicit tissue damage.
Objectives:
We investigated the role of the chemokine receptor CCR2 in driving neutrophil infiltration and eliciting tissue damage in remote organs during sepsis.
Methods:
Sepsis was induced in wild-type mice treated with CCR2 antagonist (RS504393) or CCR2(-/-) mice by cecal ligation and puncture (CLP) model. Neutrophil infiltration into the organs was measured by myeloperoxidase activity and fluorescence-activated cell sorter. CCR2 expression and chemotaxis were determined in neutrophils stimulated with Toll-like receptor agonists or isolated from septic mice and patients.
Measurements And Main Results:
CCR2 expression and responsiveness to its ligands was induced in circulating neutrophils during CLP-induced sepsis by a mechanism dependent on Toll-like receptor/nuclear factor-κB pathway. Genetic or pharmacologic inhibition of CCR2 protected mice from CLP-induced mortality. This protection was associated with lower infiltration of neutrophils into the lungs, heart, and kidneys and reduced serum biochemical indicators of organ injury and dysfunction. Importantly, neutrophils from septic patients express high levels of CCR2, and the severity of patient illness correlated positively with increasing neutrophil chemotaxis to CCR2 ligands.
Conclusions:
Collectively, these data identify CCR2 as a key receptor that drives the inappropriate infiltration of neutrophils into remote organs during sepsis. Therefore, CCR2 blockade is a novel potential therapeutic target for treatment of sepsis-induced MODS.
Insights
Chemokine receptor CCR2 drives neutrophil infiltration into organs during sepsis, causing tissue damage. Blocking CCR2 protects mice from sepsis mortality and organ injury, suggesting it as a therapeutic target.
Area of Science:
- Immunology
- Pathophysiology
- Pharmacology
Background:
- Sepsis, a systemic inflammatory response to infection, can lead to multiple organ dysfunction syndrome (MODS).
- The exact mechanisms of MODS development are not fully understood.
- Neutrophils, crucial for infection defense, can cause tissue damage when excessively activated.
Purpose of the Study:
- To investigate the role of chemokine receptor CCR2 in neutrophil infiltration and remote organ damage during sepsis.
- To determine if CCR2 inhibition can mitigate sepsis-induced pathology.
Main Methods:
- Sepsis was induced in mice using the cecal ligation and puncture (CLP) model.
- Mice were treated with a CCR2 antagonist or genetically modified to lack CCR2 (CCR2-/-).
- Neutrophil infiltration was quantified, and CCR2 expression/chemotaxis were analyzed in neutrophils from septic mice and patients.
Main Results:
- CCR2 expression and responsiveness increased in neutrophils during sepsis via the Toll-like receptor/nuclear factor-κB pathway.
- Inhibition of CCR2 (genetic or pharmacologic) significantly reduced mortality in septic mice.
- Reduced neutrophil infiltration into lungs, heart, and kidneys correlated with improved organ function markers.
Conclusions:
- CCR2 is identified as a critical receptor mediating inappropriate neutrophil infiltration into organs during sepsis.
- CCR2 blockade emerges as a promising therapeutic strategy for treating sepsis-induced MODS.
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