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Published on: January 2, 2018
Cytoplasmic mRNA decay controlling inflammatory gene expression is determined by pre-mRNA fate decision
Annika Bestehorn1, Julius von Wirén1, Christina Zeiler1
1Max Perutz Labs, Vienna Biocenter Campus (VBC), Dr.-Bohr-Gasse 9, 1030 Vienna, Austria; University of Vienna, Max Perutz Labs, Department of Microbiology, Immunobiology and Genetics, Dr.-Bohr-Gasse 9, 1030 Vienna, Austria; Vienna Biocenter PhD Program, a Doctoral School of the University of Vienna and Medical University of Vienna, 1030 Vienna, Austria.
Abstract:
The fidelity of immune responses depends on timely controlled and selective mRNA degradation that is largely driven by RNA-binding proteins (RBPs). It remains unclear whether stochastic or directed processes govern the selection of an individual mRNA molecule for degradation. Using human and mouse cells, we show that tristetraprolin (TTP, also known as ZFP36), an essential anti-inflammatory RBP, destabilizes target mRNAs via a hierarchical molecular assembly. The assembly formation strictly relies on the interaction of TTP with RNA. The TTP homolog ZFP36L1 exhibits similar requirements, indicating a broader relevance of this regulatory program. Unexpectedly, the assembly of the cytoplasmic mRNA-destabilization complex is licensed in the nucleus by TTP binding to pre-mRNA, which we identify as the principal TTP target rather than mRNA. Hence, the fate of an inflammation-induced mRNA is decided concomitantly with its synthesis. This mechanism prevents the translation of excessive and potentially harmful inflammation mediators, irrespective of transcription.
Insights
Tristetraprolin (TTP) controls immune response fidelity by degrading inflammatory mRNAs. TTP targets pre-mRNAs in the nucleus, preventing harmful protein production before translation.
Area of Science:
- Molecular Biology
- Immunology
- Gene Regulation
Background:
- Immune response fidelity relies on controlled mRNA degradation, primarily mediated by RNA-binding proteins (RBPs).
- The precise mechanisms governing selective mRNA degradation remain largely unknown, with questions about stochastic versus directed processes.
Purpose of the Study:
- To elucidate the molecular mechanisms by which tristetraprolin (TTP), an anti-inflammatory RBP, regulates mRNA degradation.
- To determine whether TTP targets pre-mRNA or mature mRNA for degradation and the implications for cellular regulation.
Main Methods:
- Utilized human and mouse cell lines to investigate TTP-mediated mRNA destabilization.
- Analyzed the role of TTP-RNA interactions in forming molecular assemblies for mRNA degradation.
- Investigated the subcellular localization of TTP activity, specifically focusing on nuclear versus cytoplasmic events.
Main Results:
- TTP destabilizes target mRNAs through a hierarchical molecular assembly dependent on TTP-RNA interactions.
- The TTP homolog ZFP36L1 demonstrates similar regulatory requirements, suggesting a conserved mechanism.
- Crucially, TTP binding to pre-mRNA in the nucleus licenses the formation of cytoplasmic mRNA-destabilization complexes, identifying pre-mRNA as the primary target.
Conclusions:
- The fate of inflammation-induced mRNAs is determined during their synthesis in the nucleus through TTP binding to pre-mRNA.
- This nuclear-initiated mechanism effectively prevents the translation of excessive inflammatory mediators, ensuring immune response control.
- The findings reveal a novel regulatory checkpoint at the pre-mRNA level controlling gene expression and inflammatory responses.
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