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Updated: Aug 27, 2025

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Published on: February 22, 2014
MLKL post-translational modifications: road signs to infection, inflammation and unknown destinations
Gianmaria Liccardi1, Alessandro Annibaldi2
1Center for Biochemistry, Medical Faculty, University of Cologne, Joseph-Stelzmann-Str. 52, 50931, Cologne, Germany. gianmaria.liccardi@uk-koeln.de.
Abstract:
Necroptosis is a caspase-independent modality of cell death that requires the activation of the executioner MLKL. In the last ten years the field gained a substantial amount of evidence regarding its involvement in host response to pathogens, TNF-induced inflammatory diseases as well as pathogen recognition receptors (PRR)-induced inflammation. However, there are still a lot of questions that remain unanswered. While it is clear that there are specific events needed to drive MLKL activation, substantial differences between human and mouse MLKL not only highlight different evolutionary pressure, but also provide potential insights on alternative modalities of activation. While in TNF-induced necroptosis it is clear the involvement of the RIPK3 mediated phosphorylation, it still remains to be understood how certain inflammatory in vivo phenotypes are not equally rescued by either RIPK3 or MLKL loss. Moreover, the plethora of different reported phosphorylation events on MLKL, even in cells that do not express RIPK3, suggest indeed that there is more to MLKL than RIPK3-mediated activation, not only in the execution of necroptosis but perhaps in other inflammatory conditions that include IFN response. The recent discovery of MLKL ubiquitination has highlighted a new checkpoint in the regulation of MLKL activation and the somewhat conflicting evidence reported certainly require some untangling. In this review we will highlight the recent findings on MLKL activation and involvement to pathogen response with a specific focus on MLKL post-translational modifications, in particular ubiquitination. This review will highlight the outstanding main questions that have risen from the last ten years of research, trying at the same time to propose potential avenues of research.
Insights
Necroptosis, a cell death pathway, involves MLKL activation. Recent research uncovers MLKL ubiquitination and phosphorylation, revealing complex regulation beyond RIPK3, crucial for host defense and inflammation.
Area of Science:
- Cellular Biology
- Immunology
- Molecular Biology
Background:
- Necroptosis is a caspase-independent cell death pathway critical for host defense against pathogens and in inflammatory diseases.
- The executioner mixed lineage kinase domain-like protein (MLKL) activation is central to necroptosis.
- While RIPK3-mediated phosphorylation is known, MLKL activation is complex, with species-specific differences and unclarified roles in various inflammatory conditions.
Purpose of the Study:
- To review recent findings on MLKL activation and its role in pathogen response.
- To focus on MLKL post-translational modifications, particularly ubiquitination, and their regulatory roles.
- To highlight outstanding questions and propose future research directions in necroptosis.
Main Methods:
- Literature review of recent studies on necroptosis and MLKL.
- Analysis of data concerning MLKL activation, phosphorylation, and ubiquitination.
- Synthesis of evidence regarding MLKL's role in host-pathogen interactions and inflammation.
Main Results:
- MLKL activation is essential for necroptosis, with significant human-mouse differences in activation mechanisms.
- RIPK3-mediated phosphorylation is a key event, but other signaling pathways and post-translational modifications (like ubiquitination) also regulate MLKL.
- MLKL's role extends beyond TNF-induced necroptosis, impacting PRR-induced inflammation and IFN response.
Conclusions:
- MLKL activation is a highly regulated process involving multiple post-translational modifications, including ubiquitination, offering new therapeutic targets.
- Understanding these complex regulatory networks is crucial for deciphering MLKL's role in immunity and disease.
- Further research is needed to fully elucidate MLKL's functions and non-canonical activation pathways.
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