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Published on: March 1, 2011
The Role of TTP Phosphorylation in the Regulation of Inflammatory Cytokine Production by MK2/3
Natalia Ronkina1, Nelli Shushakova2,3, Christopher Tiedje4
1Institute of Cell Biochemistry, Center of Biochemistry, Hannover Medical School, D-30625 Hannover, Germany.
Abstract:
Tristetraprolin (TTP) is an RNA-binding protein and an essential factor of posttranscriptional repression of cytokine biosynthesis in macrophages. Its activity is temporally inhibited by LPS-induced p38MAPK/MAPKAPK2/3-mediated phosphorylation, leading to a rapid increase in cytokine expression. We compared TTP expression and cytokine production in mouse bone marrow-derived macrophages of different genotypes: wild type, MAPKAP kinase 2 (MK2) deletion (MK2 knockout [KO]), MK2/3 double deletion (MK2/3 double KO [DKO]), TTP-S52A-S178A (TTPaa) knock-in, as well as combined MK2 KO/TTPaa and MK2/3 DKO/TTPaa. The comparisons reveal that MK2/3 are the only LPS-induced kinases for S52 and S178 of TTP and the role of MK2 and MK3 in the regulation of TNF biosynthesis is not restricted to phosphorylation of TTP at S52/S178 but includes independent processes, which could involve other TTP phosphorylations (such as S316) or other substrates of MK2/3 or p38MAPK Furthermore, we found differences in the dependence of various cytokines on the cooperation between MK2/3 deletion and TTP mutation ex vivo. In the cecal ligation and puncture model of systemic inflammation, a dramatic decrease of cytokine production in MK2/3 DKO, TTPaa, and DKO/TTPaa mice compared with wild-type animals is observed, thus confirming the role of the MK2/3/TTP signaling axis in cytokine production also in vivo. These findings improve our understanding of this signaling axis and could be of future relevance in the treatment of inflammation.
Insights
MAPK-activated protein kinases MK2 and MK3 regulate cytokine production by phosphorylating Tristetraprolin (TTP). This signaling axis is crucial for managing inflammation, offering potential therapeutic targets.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Tristetraprolin (TTP) is a key RNA-binding protein that represses cytokine biosynthesis in macrophages.
- Lipopolysaccharide (LPS) stimulation inhibits TTP activity via p38MAPK-mediated phosphorylation, increasing cytokine production.
Purpose of the Study:
- To investigate the roles of MAPKAP kinase 2 (MK2) and MK3 in TTP phosphorylation and cytokine regulation.
- To elucidate the in vivo relevance of the MK2/3/TTP signaling axis in systemic inflammation.
Main Methods:
- Comparison of TTP expression and cytokine production in various mouse genotypes (wild type, MK2 KO, MK2/3 DKO, TTPaa knock-in, and combined mutants).
- Analysis of LPS-induced TTP phosphorylation at specific sites (S52, S178).
- Assessment of cytokine production in a cecal ligation and puncture (CLP) model of systemic inflammation.
Main Results:
- MK2 and MK3 were identified as the primary LPS-induced kinases for TTP phosphorylation at S52 and S178.
- The MK2/3 regulation of TNF biosynthesis involves both TTP phosphorylation and independent mechanisms.
- Genetic ablation of MK2/3 and/or TTP mutation significantly reduced cytokine production in vivo.
Conclusions:
- MK2 and MK3 are critical regulators of TTP phosphorylation and subsequent cytokine production.
- The MK2/3/TTP signaling pathway plays a significant role in systemic inflammation.
- Targeting this axis holds potential for treating inflammatory conditions.
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