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Updated: Jul 12, 2025

Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
Phosphorylation-dependent pseudokinase domain dimerization drives full-length MLKL oligomerization
Yanxiang Meng1,2, Sarah E Garnish1,2, Katherine A Davies1,2
1Walter and Eliza Hall Institute of Medical Research, 1G Royal Parade, Parkville, VIC, 3052, Australia.
Abstract:
The necroptosis pathway is a lytic, pro-inflammatory mode of cell death that is widely implicated in human disease, including renal, pulmonary, gut and skin inflammatory pathologies. The precise mechanism of the terminal steps in the pathway, where the RIPK3 kinase phosphorylates and triggers a conformation change and oligomerization of the terminal pathway effector, MLKL, are only emerging. Here, we structurally identify RIPK3-mediated phosphorylation of the human MLKL activation loop as a cue for MLKL pseudokinase domain dimerization. MLKL pseudokinase domain dimerization subsequently drives formation of elongated homotetramers. Negative stain electron microscopy and modelling support nucleation of the MLKL tetramer assembly by a central coiled coil formed by the extended, ~80 Å brace helix that connects the pseudokinase and executioner four-helix bundle domains. Mutational data assert MLKL tetramerization as an essential prerequisite step to enable the release and reorganization of four-helix bundle domains for membrane permeabilization and cell death.
Insights
Necroptosis cell death relies on RIPK3 kinase activating MLKL. This study reveals RIPK3 phosphorylation triggers MLKL dimerization and tetramerization, essential for membrane permeabilization and cell death.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Necroptosis is a pro-inflammatory cell death pathway implicated in various human diseases.
- The terminal steps of necroptosis, involving RIPK3 kinase and MLKL, are not fully understood.
Purpose of the Study:
- To structurally elucidate the mechanism of MLKL activation by RIPK3.
- To understand how MLKL oligomerization leads to cell membrane permeabilization.
Main Methods:
- Negative stain electron microscopy
- Structural modeling
- Mutational analysis
Main Results:
- RIPK3-mediated phosphorylation induces MLKL pseudokinase domain dimerization.
- MLKL dimerization drives the formation of elongated homotetramers.
- A central coiled coil within MLKL nucleates tetramer assembly, preceding membrane permeabilization.
Conclusions:
- MLKL tetramerization is a critical prerequisite for its membrane-disrupting function.
- Understanding MLKL activation provides insights into necroptosis-related diseases.
- Structural details reveal the mechanism of MLKL activation by RIPK3 kinase.
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