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Published on: July 6, 2019
Cyclic-di-GMP induces inflammation and acute lung injury through direct binding to MD2
Chenchen Qian1,2, Weiwei Zhu2, Jiong Wang2
1School of Pharmacy, Hangzhou Normal University, Hangzhou, Zhejiang, China.
Background:
Severe bacterial infections can trigger acute lung injury (ALI) and acute respiratory distress syndrome, with bacterial pathogen-associated molecular patterns (PAMPs) exacerbating the inflammatory response, particularly in COVID-19 patients. Cyclic-di-GMP (CDG), one of the PAMPs, is synthesized by various Gram-positve and Gram-negative bacteria. Previous studies mainly focused on the inflammatory responses triggered by intracellular bacteria-released CDG. However, how extracellular CDG, which is released by bacterial autolysis or rupture, activates the inflammatory response remains unclear.
Methods:
The interaction between extracellular CDG and myeloid differentiation protein 2 (MD2) was investigated using in vivo and in vitro models. MD2 blockade was achieved using specific inhibitor and genetic knockout mice. Site-directed mutagenesis, co-immunoprecipitation, SPR and Bis-ANS displacement assays were used to identify the potential binding sites of MD2 on CDG.
Results:
Our data show that extracellular CDG directly interacts with MD2, leading to activation of the TLR4 signalling pathway and lung injury. Specific inhibitors or genetic knockout of MD2 in mice significantly alleviated CDG-induced lung injury. Moreover, isoleucine residues at positions 80 and 94, along with phenylalanine at position 121, are essential for the binding of MD2 to CDG.
Conclusion:
These results reveal that extracellular CDG induces lung injury through direct interaction with MD2 and activation of the TLR4 signalling pathway, providing valuable insights into bacteria-induced ALI mechanisms and new therapeutic approaches for the treatment of bacterial co-infection in COVID-19 patients.
Insights
Extracellular cyclic-di-GMP (CDG) directly activates myeloid differentiation protein 2 (MD2), triggering the TLR4 pathway and causing lung injury. Blocking MD2 alleviates this CDG-induced acute lung injury (ALI).
Area of Science:
- Infectious diseases
- Immunology
- Pulmonology
Background:
- Severe bacterial infections can cause acute lung injury (ALI), with pathogen-associated molecular patterns (PAMPs) worsening inflammation, especially in COVID-19.
- Cyclic-di-GMP (CDG) is a bacterial PAMP, but how extracellular CDG triggers inflammation is unclear.
- Prior research focused on intracellular CDG's inflammatory effects.
Purpose of the Study:
- To investigate the mechanism by which extracellular CDG induces lung injury.
- To identify the interaction between extracellular CDG and host immune receptors.
- To explore potential therapeutic targets for bacterial-induced ALI.
Main Methods:
- In vivo and in vitro models were used to study extracellular CDG and myeloid differentiation protein 2 (MD2) interaction.
- MD2 was blocked using specific inhibitors and genetic knockout mice.
- Site-directed mutagenesis, co-immunoprecipitation, SPR, and Bis-ANS assays identified MD2 binding sites on CDG.
Main Results:
- Extracellular CDG directly binds to MD2, activating the Toll-like receptor 4 (TLR4) signaling pathway and causing lung injury.
- MD2 inhibition or knockout significantly reduced CDG-induced lung injury in mice.
- Specific isoleucine and phenylalanine residues on MD2 are crucial for CDG binding.
Conclusions:
- Extracellular CDG induces lung injury via direct MD2 interaction and TLR4 pathway activation.
- This finding offers insights into bacterial-induced ALI mechanisms.
- Provides a basis for new therapies against bacterial co-infections, particularly in COVID-19.
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