Human RIPK3 maintains MLKL in an inactive conformation prior to cell death by necroptosis

Author:

Meng YanxiangORCID,Davies Katherine A.ORCID,Fitzgibbon Cheree,Young Samuel N.,Garnish Sarah E.,Horne Christopher R.ORCID,Luo Cindy,Garnier Jean-Marc,Liang Lung-Yu,Cowan Angus D.ORCID,Samson Andre L.ORCID,Lessene GuillaumeORCID,Sandow Jarrod J.ORCID,Czabotar Peter E.ORCID,Murphy James M.ORCID

Abstract

AbstractThe ancestral origins of the lytic cell death mode, necroptosis, lie in host defense. However, the dysregulation of necroptosis in inflammatory diseases has led to widespread interest in targeting the pathway therapeutically. This mode of cell death is executed by the terminal effector, the MLKL pseudokinase, which is licensed to kill following phosphorylation by its upstream regulator, RIPK3 kinase. The precise molecular details underlying MLKL activation are still emerging and, intriguingly, appear to mechanistically-diverge between species. Here, we report the structure of the human RIPK3 kinase domain alone and in complex with the MLKL pseudokinase. These structures reveal how human RIPK3 structurally differs from its mouse counterpart, and how human RIPK3 maintains MLKL in an inactive conformation prior to induction of necroptosis. Residues within the RIPK3:MLKL C-lobe interface are crucial to complex assembly and necroptotic signaling in human cells, thereby rationalizing the strict species specificity governing RIPK3 activation of MLKL.

Funder

University of Melbourne

Department of Industry, Innovation and Science, Australian Government

Wendy Dowsett Scholarship

Department of Health | National Health and Medical Research Council

Anaxis Pharma Pty Ltd.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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