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Macrophage Differentiation and Polarization into an M2-Like Phenotype using a Human Monocyte-Like THP-1 Leukemia Cell Line
Published on: August 2, 2021
Stat2-Drp1 mediated mitochondrial mass increase is necessary for pro-inflammatory differentiation of macrophages
Weihua Yu1, Xin Wang1, Jiuzhou Zhao2
1Department of Toxicology, Shanxi Provincial Key Lab of Free Radical Biology and Medicine, Ministry of Education Key Lab of Hazard Assessment and Control in Special Operational Environment, School of Public Health, Fourth Military Medical University, Xi'an, 710032, PR China.
Abstract:
Macrophage recruitment and pro-inflammatory differentiation are hallmarks of various diseases, including infection and sepsis. Although studies suggest that mitochondria may regulate macrophage immune responses, it remains unclear whether mitochondrial mass affects macrophage pro-inflammatory differentiation. Here, we found that lipopolysaccharide (LPS)-activated macrophages possess higher mitochondrial mass than resting cells. Therefore, this study aimed to explore the functional role and molecular mechanisms of increased mitochondrial mass in pro-inflammatory differentiated macrophages. Results show that an increase in the mitochondrial mass of macrophages positively correlates with inflammatory cytokine generation in response to LPS. RNA-seq analysis revealed that LPS promotes signal transducers and activators of transcription 2 (Stat2) and dynamin-related protein 1 (Drp1) expression, which are enriched in positive mitochondrial fission regulation. Meanwhile, knockdown or pharmacological inhibition of Drp1 blunts LPS-induced mitochondrial mass increase and pro-inflammatory differentiation. Moreover, Stat2 boosts Drp1 phosphorylation at serine 616, required for Drp1-mediated mitochondrial fission. LPS also causes Stat2-and Drp1-dependent biogenesis, which contributes to the generation of additional mitochondria. However, these mitochondria are profoundly remodeled, displaying fragmented morphology, loose cristae, reduced Δψm, and metabolic programming. Furthermore, these remodeled mitochondria shift their function from ATP synthesis to reactive oxygen species (ROS) production, which drives NFκB-dependent inflammatory cytokine transcription. Interestingly, an increase in mitochondrial mass with constitutively active phosphomimetic mutant of Drp1 (Drp1S616E) boosted pro-inflammatory response in macrophages without LPS stimulation. In vivo, we also demonstrated that Mdivi-1 administration inhibits LPS-induced macrophage pro-inflammatory differentiation. Importantly, we observed Stat2 phosphorylation and Drp1-dependent mitochondrial mass increase in macrophages isolated from LPS-challenged mice. In conclusion, we comprehensively demonstrate that a Stat2-Drp1 dependent mitochondrial mass increase is necessary for pro-inflammatory differentiation of macrophages. Therefore, targeting the Stat2-Drp1 axis may provide novel therapeutic approaches for treating infection and inflammatory diseases.
Insights
Increased mitochondrial mass in macrophages, driven by Stat2 and Drp1, is crucial for pro-inflammatory responses in diseases like sepsis. Targeting this pathway offers new therapeutic strategies for inflammatory conditions.
Area of Science:
- Immunology
- Cell Biology
- Mitochondrial Biology
Background:
- Macrophage pro-inflammatory differentiation is key in diseases like sepsis.
- Mitochondria's role in macrophage immune responses is suggested but not fully understood.
- The impact of mitochondrial mass on macrophage pro-inflammatory differentiation remains unclear.
Purpose of the Study:
- To investigate the functional role of increased mitochondrial mass in pro-inflammatory macrophage differentiation.
- To elucidate the molecular mechanisms underlying mitochondrial mass changes in activated macrophages.
- To explore the therapeutic potential of targeting mitochondrial pathways in inflammation.
Main Methods:
- Lipopolysaccharide (LPS) stimulation of macrophages.
- RNA-sequencing (RNA-seq) analysis to identify key molecular players.
- Knockdown and pharmacological inhibition of dynamin-related protein 1 (Drp1).
- Assessment of mitochondrial morphology, mass, membrane potential (Δψm), and ROS production.
- In vivo studies using Mdivi-1 administration in LPS-challenged mice.
Main Results:
- LPS-activated macrophages exhibit increased mitochondrial mass, correlating with inflammatory cytokine production.
- LPS upregulates signal transducers and activators of transcription 2 (Stat2) and Drp1, promoting mitochondrial fission.
- Stat2-Drp1 signaling drives mitochondrial biogenesis and remodeling, shifting function towards ROS production.
- Inhibition of Drp1 or Mdivi-1 treatment reduces LPS-induced pro-inflammatory differentiation in vitro and in vivo.
- Stat2 phosphorylation and Drp1-dependent mitochondrial mass increase were observed in macrophages from LPS-challenged mice.
Conclusions:
- A Stat2-Drp1 dependent increase in mitochondrial mass is essential for macrophage pro-inflammatory differentiation.
- Remodeled mitochondria shift from ATP synthesis to ROS production, driving inflammation.
- Targeting the Stat2-Drp1 axis presents a potential therapeutic strategy for inflammatory diseases.

