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Updated: Feb 24, 2026

Evaluation of a Reliable Biomarker in a Cecal Ligation and Puncture-Induced Mouse Model of Sepsis
Published on: December 9, 2022
PP4 modulates macrophage-neutrophil crosstalk to restrict CCL5 -driven NETosis in sepsis
Feng-Ming Yang1, Shih-Chang Hsu2, Yu-Chih Wu3
1Graduate Institute of Physiology, National Taiwan University College of Medicine, Taipei, Taiwan.
Abstract:
Sepsis is a life-threatening clinical syndrome caused by a dysregulated innate immune response to infection, resulting in excessive systemic inflammation, multi-organ failure, and persistently high mortality rates. In fatal human sepsis, PP4 expression is markedly reduced in myeloid cells, suggesting a protective role against dysregulated innate immunity. However, its role in macrophage-neutrophil crosstalk during sepsis environment remains unclear. To delineate its cell-type specificity, we generated myeloid cell-specific PP4 knockout mice and investigated PP4's function in innate immune regulation during sepsis. PP4-deficient mice exhibited significantly increased susceptibility to sepsis, with severe tissue damage following cecal ligation and puncture (CLP) or endotoxin challenge. Mechanistically, PP4 modulates macrophage-neutrophil crosstalk during the sepsis environment, with its loss leading to dysregulated CCL5/CCR5 signaling, driving excessive neutrophil activation. Elevated macrophage-derived CCL5 enhanced PAD4-dependent NETosis, ROS production, and elastase activity via CCR5, while CCR5 inhibition effectively mitigated neutrophil hyperactivity. At the molecular level, PP4 directly dephosphorylated TBK1, thereby inactivating IRF3 and suppressing macrophage-driven CCL5 production. Furthermore, ERK1/2 phosphorylation upregulated CCR5 expression in PP4-deficient neutrophils post-CLP, amplifying the CCL5/CCR5-mediated NETosis response. Notably, transfection with wild-type PP4-but not a phosphatase-deficient mutant-reduced LPS-mediated CCR5 expression in neutrophils, thereby limiting ROS production and NETs formation. These findings establish PP4 as a critical regulator of CCL5/CCR5-driven NETosis, uncovering a novel therapeutic target for modulating innate immune responses in sepsis.
Insights
Protein phosphatase 4 (PP4) deficiency in myeloid cells exacerbates sepsis by dysregulating macrophage-neutrophil crosstalk. Loss of PP4 promotes excessive NETosis via CCL5/CCR5 signaling, highlighting PP4 as a sepsis therapeutic target.
Area of Science:
- Immunology
- Molecular Biology
- Pathophysiology
Background:
- Sepsis is a life-threatening condition characterized by excessive inflammation and multi-organ failure.
- Reduced myeloid cell protein phosphatase 4 (PP4) expression is observed in fatal human sepsis.
- The specific role of PP4 in macrophage-neutrophil interactions during sepsis is not well understood.
Purpose of the Study:
- To investigate the cell-type-specific function of PP4 in regulating innate immunity during sepsis.
- To elucidate the molecular mechanisms by which PP4 influences macrophage-neutrophil crosstalk in a sepsis model.
Main Methods:
- Generated myeloid cell-specific PP4 knockout mice.
- Induced sepsis using cecal ligation and puncture (CLP) and endotoxin challenge.
- Analyzed neutrophil activation, NETosis, ROS production, and signaling pathways (CCL5/CCR5, TBK1/IRF3, ERK1/2).
Main Results:
- PP4-deficient mice showed increased sepsis susceptibility and severe tissue damage.
- Loss of PP4 led to dysregulated CCL5/CCR5 signaling, enhancing neutrophil activation and NETosis.
- PP4 directly dephosphorylated TBK1, suppressing CCL5 production; ERK1/2 mediated CCR5 upregulation in neutrophils.
Conclusions:
- PP4 is a critical regulator of macrophage-neutrophil crosstalk and NETosis in sepsis.
- The CCL5/CCR5 signaling pathway is a key mediator of PP4's protective effect.
- Targeting PP4 or the CCL5/CCR5 pathway offers a potential therapeutic strategy for sepsis.
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