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Updated: Dec 30, 2025

Real-Time Measurement of the Mitochondrial Bioenergetic Profile of Neutrophils
Published on: June 2, 2023
Formyl Peptide Receptor-1 Blockade Prevents Receptor Regulation by Mitochondrial Danger-Associated Molecular Patterns
Kiyoshi Itagaki1, Elzbieta Kaczmarek1, Woon Yong Kwon1,2
1Department of Surgery, Beth Israel Deaconess Medical Center/Harvard Medical School, Boston, MA.
Objectives:
Trauma predisposes to systemic sterile inflammation (systemic inflammatory response syndrome) as well as infection, but the mechanisms linking injury to infection are poorly understood. Mitochondrial debris contains formyl peptides. These bind formyl peptide receptor-1, trafficking neutrophils to wounds, initiating systemic inflammatory response syndrome, and wound healing. Bacterial formyl peptides, however, also attract neutrophils via formyl peptide receptor-1. Thus, mitochondrial formyl peptides might suppress neutrophils antimicrobial function. Also, formyl peptide receptor-1 blockade used to mitigate systemic inflammatory response syndrome might predispose to sepsis. We examined how mitochondrial formyl peptides impact neutrophils functions contributing to antimicrobial responses and how formyl peptide receptor-1 antagonists affect those functions.
Design:
Prospective study of human and murine neutrophils and clinical cohort analysis.
Setting:
University research laboratory and level 1 trauma center.
Patients:
Trauma patients, volunteer controls.
Animal Subjects:
C57Bl/6, formyl peptide receptor-1, and formyl peptide receptor-2 knockout mice.
Interventions:
Human and murine neutrophils functions were activated with autologous mitochondrial debris, mitochondrial formyl peptides, or bacterial formyl peptides followed by chemokines or leukotrienes. The experiments were repeated using formyl peptide receptor-1 antagonist cyclosporin H, "designer" human formyl peptide receptor-1 antagonists (POL7178 and POL7200), or anti-formyl peptide receptor-1 antibodies. Mouse injury/lung infection model was used to evaluate effect of formyl peptide receptor-1 inhibition.
Measurements And Main Results:
Human neutrophils cytosolic calcium, chemotaxis, reactive oxygen species production, and phagocytosis were studied before and after exposure to mitochondrial debris, mitochondrial formyl peptides, and bacterial formyl peptides. Mitochondrial formyl peptide and bacterial formyl peptides had similar effects on neutrophils. Responses to chemokines and leukotrienes were suppressed by prior exposure to formyl peptides. POL7200 and POL7178 were specific antagonists of human formyl peptide receptor-1 and more effective than cyclosporin H or anti-formyl peptide receptor-1 antibodies. Formyl peptides inhibited mouse neutrophils responses to chemokines only if formyl peptide receptor-1 was present. Formyl peptide receptor-1 blockade did not inhibit neutrophils bacterial phagocytosis or reactive oxygen species production. Cyclosporin H increased bacterial clearance in lungs after injury.
Conclusions:
Formyl peptides both activate and desensitize neutrophils. Formyl peptide receptor-1 blockade prevents desensitization, potentially both diminishing systemic inflammatory response syndrome and protecting the host against secondary infection after tissue trauma or primary infection.
Insights
Trauma-released formyl peptides activate and desensitize neutrophils. Blocking formyl peptide receptor-1 (FPR1) prevents this desensitization, potentially reducing systemic inflammatory response syndrome and secondary infections after injury.
Area of Science:
- Immunology
- Trauma Biology
- Molecular Medicine
Background:
- Trauma triggers sterile inflammation and infection susceptibility via unknown mechanisms.
- Mitochondrial debris contains formyl peptides that bind formyl peptide receptor-1 (FPR1), influencing neutrophil migration and inflammation.
- Both mitochondrial and bacterial formyl peptides activate neutrophils via FPR1, raising questions about potential immune suppression.
Purpose of the Study:
- To investigate how mitochondrial formyl peptides affect neutrophil antimicrobial functions.
- To determine the impact of formyl peptide receptor-1 (FPR1) antagonists on neutrophil antimicrobial responses.
- To evaluate the potential of FPR1 blockade in mitigating trauma-induced inflammation and infection.
Main Methods:
- Prospective study involving human and murine neutrophils, alongside a clinical cohort analysis.
- Neutrophil functions (calcium, chemotaxis, ROS, phagocytosis) were assessed after stimulation with mitochondrial or bacterial formyl peptides.
- Experiments utilized FPR1 knockout mice and tested specific FPR1 antagonists (cyclosporin H, POL7178, POL7200) and antibodies.
Main Results:
- Mitochondrial and bacterial formyl peptides exhibited similar effects on neutrophils, including suppression of responses to chemokines and leukotrienes.
- Specific FPR1 antagonists (POL7200, POL7178) were more effective than other agents in blocking human FPR1.
- FPR1 blockade did not impair neutrophil phagocytosis or reactive oxygen species production, and cyclosporin H improved bacterial clearance in a mouse injury model.
Conclusions:
- Formyl peptides can both activate and desensitize neutrophils.
- Formyl peptide receptor-1 (FPR1) blockade inhibits this desensitization process.
- FPR1 blockade may simultaneously reduce systemic inflammatory response syndrome and enhance host defense against secondary infections post-trauma.
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