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Distinct pseudokinase domain conformations underlie divergent activation mechanisms among vertebrate MLKL orthologues

Authors :
Wayland Yeung
Natarajan Kannan
Wil I. L. Lehmann
Emma J. Petrie
Cheree Fitzgibbon
Lung-Yu Liang
Jarrod J. Sandow
Richard W Birkinshaw
James D. Chalmers
Isabelle S Lucet
Katherine A Davies
Wayne M. Patrick
Samuel N. Young
Peter E. Czabotar
Diane Coursier
James M. Murphy
Sarah E Garnish
Source :
Nature Communications, Nature Communications, Vol 11, Iss 1, Pp 1-11 (2020)
Publication Year :
2020
Publisher :
Springer Science and Business Media LLC, 2020.

Abstract

The MLKL pseudokinase is the terminal effector in the necroptosis cell death pathway. Phosphorylation by its upstream regulator, RIPK3, triggers MLKL’s conversion from a dormant cytoplasmic protein into oligomers that translocate to, and permeabilize, the plasma membrane to kill cells. The precise mechanisms underlying these processes are incompletely understood, and were proposed to differ between mouse and human cells. Here, we examine the divergence of activation mechanisms among nine vertebrate MLKL orthologues, revealing remarkable specificity of mouse and human RIPK3 for MLKL orthologues. Pig MLKL can restore necroptotic signaling in human cells; while horse and pig, but not rat, MLKL can reconstitute the mouse pathway. This selectivity can be rationalized from the distinct conformations observed in the crystal structures of horse and rat MLKL pseudokinase domains. These studies identify important differences in necroptotic signaling between species, and suggest that, more broadly, divergent regulatory mechanisms may exist among orthologous pseudoenzymes.<br />The necroptotic cell death pathway involves signaling through pseudokinases. Here the authors define the structural determinants of species specificity in necroptosis signaling mediated by the essential necroptotic effector pseudokinase, Mixed Lineage Kinase Domain-Like (MLKL).

Details

ISSN :
20411723
Volume :
11
Database :
OpenAIRE
Journal :
Nature Communications
Accession number :
edsair.doi.dedup.....bce841711b8c8099a799e973a9e3a0db