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Published on: May 19, 2016
Increased Activity of MAPKAPK2 within Mesenchymal Cells as a Target for Inflammation-Associated Fibrosis in Crohn's
Marina Chulkina1, Christina Rohmer1, Steven McAninch1
1Department of Medicine, Penn State College of Medicine, Hershey, PA, USA.
Background:
Mesenchymal stromal cells are suggested to play a critical role in Crohn's disease [CD]-associated fibrosis. MAPKAPK2 [MK2] has emerged as a potential therapeutic target to reduce inflammation in CD. However, the cell-specific pattern of phospho-MK2 activation and its role in CD-associated fibrosis are unknown. The objectives of this study were to evaluate cell-specific changes in MK2 activity between predominantly inflammatory CD vs CD with fibrotic complications and define the role of stromal cell-specific MK2 activation in CD-associated fibrosis.
Methods:
CD tissue, CD tissue-derived mesenchymal stromal cells known as myo-/fibroblasts [CD-MFs], and fibroblast-specific MK2 conditional knockout [KO] mice were used.
Results:
In the inflamed area of predominantly inflammatory CD, high MK2 activity was equally distributed between mesenchymal and haematopoietic cells. By contrast, in CD with fibrotic complications, high MK2 activity was mostly associated with mesenchymal stromal cells. Using ex vivo CD tissue explants and an IL-10KO murine colitis model, we demonstrated that pro-fibrotic responses are significantly reduced by treatment with the MK2 inhibitor PF-3644022. Inhibition of MK2 activity in primary cultures of CD-MFs significantly reduced basal and TGF-β1-induced profibrotic responses. Using fibroblast-specific MK2 knockout mice in chronic dextran saline sulphate colitis, we demonstrated that fibroblast intrinsic MK2 signalling is among the key processes involved in the chronic inflammation-induced profibrotic responses.
Conclusions:
Our data suggest that activation of MK2 within fibroblasts contributes to the chronic inflammation-induced fibrosis in CD and that targeting MK2 has potential for the development of novel therapeutic approaches for fibrosis in CD.
Insights
In Crohn's disease (CD) fibrosis, mesenchymal stromal cells show high MK2 activity. Inhibiting MK2 in fibroblasts reduces fibrosis, suggesting MK2 as a therapeutic target for CD-associated fibrotic complications.
Area of Science:
- Gastroenterology
- Cell Biology
- Immunology
Background:
- Mesenchymal stromal cells are implicated in Crohn's disease (CD)-associated fibrosis.
- Mitogen-activated protein kinase-activated protein kinase 2 (MK2) is a potential therapeutic target for CD inflammation.
- The specific role and cellular distribution of MK2 activation in CD fibrosis remain unclear.
Purpose of the Study:
- To investigate cell-specific MK2 activity patterns in inflammatory versus fibrotic CD.
- To determine the role of stromal cell-specific MK2 activation in CD-associated fibrosis.
Main Methods:
- Analysis of CD tissue and CD tissue-derived mesenchymal stromal cells (CD-MFs).
- Utilized fibroblast-specific MK2 conditional knockout (KO) mice.
- Employed ex vivo CD tissue explants and an IL-10KO murine colitis model.
Main Results:
- High MK2 activity was equally distributed in inflammatory CD but concentrated in mesenchymal stromal cells in fibrotic CD.
- MK2 inhibition (PF-3644022) significantly reduced pro-fibrotic responses in CD tissue explants and CD-MFs.
- Fibroblast-specific MK2 KO mice showed reduced profibrotic responses in a chronic colitis model.
Conclusions:
- Fibroblast MK2 activation contributes to chronic inflammation-induced fibrosis in CD.
- Targeting MK2 presents a potential therapeutic strategy for managing fibrosis in CD.
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