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Published on: October 6, 2019
Transcription factor NFAT5 promotes macrophage survival in rheumatoid arthritis
Abstract:
Defective apoptotic death of activated macrophages has been implicated in the pathogenesis of rheumatoid arthritis (RA). However, the molecular signatures defining apoptotic resistance of RA macrophages are not fully understood. Here, global transcriptome profiling of RA macrophages revealed that the osmoprotective transcription factor nuclear factor of activated T cells 5 (NFAT5) critically regulates diverse pathologic processes in synovial macrophages including the cell cycle, apoptosis, and proliferation. Transcriptomic analysis of NFAT5-deficient macrophages revealed the molecular networks defining cell survival and proliferation. Proinflammatory M1-polarizing stimuli and hypoxic conditions were responsible for enhanced NFAT5 expression in RA macrophages. An in vitro functional study demonstrated that NFAT5-deficient macrophages were more susceptible to apoptotic death. Specifically, CCL2 secretion in an NFAT5-dependent fashion bestowed apoptotic resistance to RA macrophages in vitro. Injection of recombinant CCL2 into one of the affected joints of Nfat5+/- mice increased joint destruction and macrophage infiltration, demonstrating the essential role of the NFAT5/CCL2 axis in arthritis progression in vivo. Moreover, after intra-articular injection, NFAT5-deficient macrophages were more susceptible to apoptosis and less efficient at promoting joint destruction than were NFAT5-sufficient macrophages. Thus, NFAT5 regulates macrophage survival by inducing CCL2 secretion. Our results provide evidence that NFAT5 expression in macrophages enhances chronic arthritis by conferring apoptotic resistance to activated macrophages.
Insights
Nuclear factor of activated T cells 5 (NFAT5) promotes rheumatoid arthritis (RA) by preventing the death of activated macrophages. NFAT5 increases the secretion of CCL2, a molecule that enhances macrophage survival and joint destruction in RA.
Area of Science:
- Immunology
- Molecular Biology
- Pathogenesis of Rheumatoid Arthritis
Background:
- Defective apoptosis of activated macrophages contributes to rheumatoid arthritis (RA) pathogenesis.
- The molecular mechanisms underlying apoptotic resistance in RA macrophages remain unclear.
Purpose of the Study:
- To investigate the role of nuclear factor of activated T cells 5 (NFAT5) in regulating macrophage apoptosis and survival in RA.
- To elucidate the molecular pathways by which NFAT5 influences RA pathogenesis.
Main Methods:
- Global transcriptome profiling of RA macrophages to identify key regulatory factors.
- Transcriptomic analysis of NFAT5-deficient macrophages to understand survival and proliferation networks.
- In vitro functional studies assessing macrophage apoptosis and CCL2 secretion.
- In vivo studies using Nfat5+/- mice and recombinant CCL2 injection to evaluate arthritis progression.
Main Results:
- NFAT5 critically regulates cell cycle, apoptosis, and proliferation in synovial macrophages.
- Proinflammatory stimuli and hypoxia enhance NFAT5 expression in RA macrophages.
- NFAT5 deficiency increases macrophage susceptibility to apoptosis and reduces joint destruction.
- NFAT5-dependent CCL2 secretion confers apoptotic resistance to RA macrophages in vitro and promotes arthritis in vivo.
Conclusions:
- NFAT5 promotes macrophage survival and apoptotic resistance in RA by inducing CCL2 secretion.
- The NFAT5/CCL2 axis is a critical driver of chronic arthritis progression.
- Targeting NFAT5 may offer a therapeutic strategy for rheumatoid arthritis.
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