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Updated: Jan 19, 2026

Humanized Mouse Model to Study Bacterial Infections Targeting the Microvasculature
Published on: April 1, 2014
Membrane TLR9 Positive Neutrophil Mediated MPLA Protects Against Fatal Bacterial Sepsis
Zhaogang Yang1,2, Luowei Wang1, Hongmei Yu3
1Department of Molecular Biology, College of Basic Medical Sciences Jilin University, Changchun 130021, China.
Abstract:
Sepsis is a major cause of patient mortality and morbidity from bacterial infections. Although neutrophils are known to be important in the development of sepsis, how distinctive neutrophil subtypes regulate inflammatory processes involved in septicemia remains unclear. Preconditioning protects organisms against subsequent higher-dose exposures to the same, or even different, stimuli. Several studies have reported various effects of preconditioning on immune cells. However, the detailed mechanisms underlying neutrophil-mediated protection through preconditioning in sepsis remain unknown. Methods: Flow cytometry was conducted to sort the mice peritoneal lavage cells and the blood samples from patients with sepsis. Western blotting and ELISA were carried out to elucidate the expression of TLR9 signal transduction pathway proteins. Histological analysis was used to assess the effect of InP on intestine and liver structure in tlr9 and cav-1 mice. Fluorescence microscopy, Co-IP, and FRET were carried out to determine the association of TLR9 with Cav-1. Results: We show that membrane toll-like receptor-9 positive (mTLR9+) neutrophils exert a protective effect against fatal bacterial infections through the process of inflammatory preconditioning (InP). InP, which occurs in the setting of a low-dose bacterial challenge, active ingredient is Monophosphoryl lipid A (MPLA), triggers the membrane translocation of TLR9 from the neutrophil cytosol, where it binds to Cav-1. Our findings showed that InP enables TLR9 to facilitate MyD88-mediated TRAF3 and IRF3 signal transduction. Depletion of either TLR9 or Cav-1 largely eliminates the neutrophil-mediated InP effect in sepsis models in vitro and in vivo. Further, examination of clinical samples from patients with sepsis showed that clinical outcomes and likelihood of recovery are closely correlated with mTLR9 and Cav-1 expression in circulating neutrophils. Conclusion: These results demonstrate that the TLR9-Cav-1 axis is a critical signaling pathway involved in the regulation of neutrophil-dependent MPLA mediated InP, and the presence of mTLR9+ neutrophils could be an attractive indicator of clinical outcomes in bacterial sepsis that could be further explored as a potential therapeutic target.
Insights
Neutrophils with membrane toll-like receptor-9 (mTLR9+) protect against sepsis via inflammatory preconditioning (InP). This involves TLR9 binding Cav-1, a pathway crucial for sepsis recovery and a potential therapeutic target.
Area of Science:
- Immunology
- Cell Biology
- Molecular Medicine
Background:
- Sepsis, a life-threatening response to bacterial infections, involves neutrophils, but their protective mechanisms via preconditioning are unclear.
- Inflammatory preconditioning (InP) offers protection against subsequent challenges, yet the specific molecular pathways in neutrophils remain largely unknown.
Purpose of the Study:
- To investigate the role of neutrophil subtypes in sepsis-induced inflammation and protection.
- To elucidate the molecular mechanisms of neutrophil-mediated protection through inflammatory preconditioning (InP) in sepsis.
Main Methods:
- Flow cytometry and Western blotting were used to analyze neutrophils from mice and sepsis patients.
- ELISA, histological analysis, fluorescence microscopy, co-immunoprecipitation (Co-IP), and Förster Resonance Energy Transfer (FRET) were employed to study signaling pathways.
- Experiments involved tlr9 and cav-1 knockout mice and in vitro/in vivo sepsis models.
Main Results:
- Membrane toll-like receptor-9 positive (mTLR9+) neutrophils demonstrated a protective effect against fatal bacterial infections via InP.
- InP, induced by Monophosphoryl lipid A (MPLA), promotes TLR9 translocation to bind Cav-1, facilitating MyD88-mediated signaling.
- Depletion of TLR9 or Cav-1 abrogated the protective InP effect; mTLR9+ and Cav-1 expression correlated with better clinical outcomes in sepsis patients.
Conclusions:
- The TLR9-Cav-1 axis is a critical pathway regulating neutrophil-dependent InP in sepsis.
- mTLR9+ neutrophils serve as a potential biomarker for predicting clinical outcomes in bacterial sepsis.
- This pathway represents a promising therapeutic target for sepsis treatment.

