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Published on: February 13, 2017
Wnt5A Signaling Promotes Defense Against Bacterial Pathogens by Activating a Host Autophagy Circuit
Suborno Jati1, Suman Kundu1, Arijit Chakraborty1
1Division of Cancer Biology and Inflammatory Disorder, CSIR-Indian Institute of Chemical Biology, Kolkata, India.
Abstract:
Bacterial pathogens are associated with severe infections (e.g., sepsis) and exacerbation of debilitating conditions such as chronic obstructive pulmonary disease (COPD). The interactions of bacterial pathogens with macrophages, a key component of innate immunity and host defense, are not clearly understood and continue to be intensively studied. Having previously demonstrated a role of Wnt5A signaling in phagocytosis, we proceeded to decipher the connection of Wnt5A signaling with infection by pathogenic bacteria, namely Pseudomonas aeruginosa (PA) and Streptococcus pneumoniae (SP), which are related with the progression of COPD and sepsis. We found that during the initial hours of infection with PA and SP, there is decrease in the steady state levels of the Wnt5A protein in macrophages. Suppression of Wnt5A signaling, moreover, impairs macrophage clearance of the bacterial infection both in vitro and in vivo. Activation of Wnt5A signaling, on the other hand, enhances clearance of the infection. Macrophage-mediated containment of bacterial infection in our study is dependant on Wnt5A-induced Rac1/Disheveled activation and cytochalasin D inhibitable actin assembly, which is associated with ULK1 kinase activity and LC3BII accumulation. Our experimental findings are consistent with Wnt5A signaling-dependent induction of autophagic killing (xenophagy) of PA and SP, as further substantiated by transmission electron microscopy. Overall, our study unveils the prevalence of a Wnt5A-Rac1-Disheveled-mediated actin-associated autophagy circuit as an important component of innate immunity in host macrophages that may turn out crucial for restricting infection by leading bacterial pathogens.
Insights
Wnt5A signaling in macrophages is crucial for fighting bacterial infections like Pseudomonas aeruginosa and Streptococcus pneumoniae. Activating this pathway enhances bacterial clearance, revealing a key innate immunity mechanism.
Area of Science:
- Immunology
- Cell Biology
- Microbiology
Background:
- Bacterial pathogens cause severe infections (sepsis) and worsen chronic conditions (COPD).
- Macrophage interactions with bacteria are vital for innate immunity but not fully understood.
- Wnt5A signaling's role in phagocytosis was previously established.
Purpose of the Study:
- To investigate the role of Wnt5A signaling in macrophage response to pathogenic bacteria, specifically Pseudomonas aeruginosa (PA) and Streptococcus pneumoniae (SP).
- To determine if Wnt5A signaling influences bacterial clearance by macrophages.
Main Methods:
- Assessed Wnt5A protein levels in macrophages during PA and SP infection.
- Manipulated Wnt5A signaling (suppression and activation) to observe effects on bacterial clearance in vitro and in vivo.
- Investigated downstream signaling pathways including Rac1/Disheveled, actin assembly, ULK1 kinase, and LC3BII.
- Utilized transmission electron microscopy to confirm autophagic killing.
Main Results:
- Wnt5A protein levels decreased in macrophages during early PA and SP infection.
- Suppression of Wnt5A impaired bacterial clearance, while activation enhanced it.
- Wnt5A-mediated clearance involved Rac1/Disheveled activation, actin assembly, and was linked to ULK1 kinase activity and LC3BII accumulation.
- Evidence supported Wnt5A-dependent induction of xenophagy (autophagic killing) of PA and SP.
Conclusions:
- Wnt5A signaling is essential for macrophage-mediated clearance of PA and SP.
- A Wnt5A-Rac1-Disheveled-mediated actin-associated autophagy circuit is identified as a critical innate immune mechanism in macrophages.
- This pathway is crucial for restricting infections by major bacterial pathogens.
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