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Updated: Aug 29, 2025

Alveolar Macrophage Phagocytosis and Bacteria Clearance in Mice
Published on: March 2, 2019
QKI degradation in macrophage by RNF6 protects mice from MRSA infection via enhancing PI3K p110β dependent autophagy
Dongsheng Zhai1, Wenwen Wang2, Zichen Ye2,3
1Department of Pharmacology, School of Pharmacy, Fourth Military Medical University, Xi'an, Shaanxi, China.
Background:
Sepsis is a fatal condition commonly caused by Methicillin-resistant Staphylococcus aureus (MRSA) with a high death rate. Macrophages can protect the host from various microbial pathogens by recognizing and eliminating them. Earlier we found that Quaking (QKI), an RNA binding protein (RBP), was involved in differentiation and polarization of macrophages. However, the role of QKI in sepsis caused by pathogenic microbes, specifically MRSA, is unclear. This study aimed to investigate the role of QKI in regulation of host-pathogen interaction in MRSA-induced sepsis and explored the underlying mechanisms.
Methods:
Transmission electron microscope and immunofluorescence were used to observe the autophagy level in macrophages. Real-time PCR and western blot were used to analyzed the expression of mRNA and protein respectively. The potential protein interaction was analyzed by iTRAQ mass spectrometry and Immunoprecipitation. RNA fluorescence in situ hybridization, dual-luciferase reporter assay and RNA immunoprecipitation were used to explore the mechanism of QKI regulating mRNA of PI3K-p110β.
Results:
The mRNA level of QKI was aberrantly decreased in monocytes and PBMCs of septic patients with the increasing level of plasma procalcitonin (PCT). Then the mice with myeloid specific knockout of QKI was challenged with MRSA or Cecal Ligation and Puncture (CLP). Mice in these two models displayed higher survival rates and lower bacterial loads. Mechanistically, QKI deletion promoted phagocytosis and autophagic degradation of MRSA via activating p110β (a member of Class IA phosphoinositide 3-kinases) mediated autophagic response. QKI expression in macrophages led to the sequestration of p110β in mRNA processing (P) bodies and translational repression. Upon infection, the direct interaction of RNF6, a RING-type E3 ligase, mediated QKI ubiquitination degradation and facilitated PI3K-p110β related autophagic removal of pathogen. The administration of nanoparticles with QKI specific siRNA significantly protected mice from MRSA infection.
Conclusions:
This study disclosed the novel function of QKI in the P body mRNA regulation during infection. QKI degradation in macrophage by RNF6 protects mice from MRSA infection via enhancing PI3K-p110β dependent autophagy. It suggested that QKI may serve as a potential theranostic marker in MRSA-induced sepsis.
Insights
Quaking (QKI) protein degradation in macrophages enhances autophagy and protects against Methicillin-resistant Staphylococcus aureus (MRSA) sepsis. This finding suggests QKI as a potential therapeutic target for MRSA infections.
Area of Science:
- Immunology
- Molecular Biology
- Infectious Diseases
Background:
- Sepsis, a life-threatening condition, is often caused by Methicillin-resistant Staphylococcus aureus (MRSA).
- Macrophages play a crucial role in combating microbial pathogens.
- The function of Quaking (QKI), an RNA binding protein, in MRSA-induced sepsis was previously unknown.
Purpose of the Study:
- To investigate the role of QKI in host-pathogen interactions during MRSA-induced sepsis.
- To elucidate the underlying molecular mechanisms of QKI's involvement.
Main Methods:
- Analysis of QKI mRNA levels in septic patients.
- Generation of myeloid-specific QKI knockout mice models for MRSA infection and Cecal Ligation and Puncture (CLP) models.
- Assessment of autophagy using transmission electron microscopy and immunofluorescence.
- Gene and protein expression analysis via real-time PCR and western blot.
- Protein interaction studies using iTRAQ mass spectrometry and immunoprecipitation.
- Mechanism exploration using RNA fluorescence in situ hybridization, dual-luciferase reporter assay, and RNA immunoprecipitation.
- In vivo therapeutic intervention using nanoparticles with QKI specific siRNA.
Main Results:
- QKI mRNA levels were decreased in monocytes and PBMCs of septic patients.
- QKI knockout mice exhibited increased survival rates and reduced bacterial loads in MRSA and CLP models.
- QKI deletion promoted MRSA phagocytosis and autophagic degradation by activating PI3K-p110β-mediated autophagy.
- RNF6-mediated QKI ubiquitination and degradation upon infection facilitated PI3K-p110β-related autophagic clearance.
- Administration of QKI siRNA nanoparticles improved survival in MRSA-infected mice.
Conclusions:
- QKI plays a regulatory role in P body mRNA processing during infection.
- RNF6-mediated QKI degradation in macrophages enhances PI3K-p110β-dependent autophagy, protecting against MRSA sepsis.
- QKI may represent a potential theranostic marker for MRSA-induced sepsis.
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