HERC4-mediated ubiquitination licenses RIPK1 to initiate TNF-induced cell death

TNF can activate both prosurvival and prodeath signaling downstream of tumor necrosis factor receptor 1 (TNFR1). Survival signaling originates from TNFR1-containing membrane-bound complex I, while death signaling is driven by cytosolic complex II. Receptor-interacting protein kinase 1 (RIPK1) is a central component of both complexes but the molecular switch converting RIPK1 from a prosurvival scaffold in complex I to a prodeath kinase in complex II has remained elusive. Here, we identify the E3 ligase HERC4 as the molecular determinant of prodeath signaling. We show that HERC4 binds complex I-derived S166-phosphorylated, kinase-active RIPK1 and ubiquitinates it within its death domain. This enables RIPK1 oligomerization and assembly of the apoptosis-inducing RIPK1–FADD–caspase 8-containing complex IIa and, upon caspase inhibition, formation of the necroptosis-initiating RIPK1–RIPK3-containing necrosome. HERC4 deficiency protects mice from TNF-induced systemic inflammatory response syndrome and acute liver injury. Thus, HERC4 is the link enabling complex I-derived RIPK1 to initiate death signaling. Lu and Du et al. show that HERC4 E3 ligase ubiquitinates S166-phosphorylated RIPK1 to initiate prodeath complex assembly and TNF-induced cell death, acting as the pivotal prodeath switch and that loss of HERC4 protects mice from TNF-driven inflammation and liver injury.

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Journal
Nature Structural & Molecular Biology
Published
2026-09-28
DOI
https://doi.org/10.1038/s41594-026-01871-y
Primary Topic
Cell death mechanisms and regulation
Type
article
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article

HERC4-mediated ubiquitination licenses RIPK1 to initiate TNF-induced cell death

She Chen, Xiaoliang Yu, Sudan He, Haohao Lu et al.
Nature Structural & Molecular Biology
Cell death mechanisms and regulation
article

HERC4-mediated ubiquitination licenses RIPK1 to initiate TNF-induced cell death

She Chen, Xiaoliang Yu, Sudan He, Haohao Lu, Tongde Du, Shouqiao Hou, Henning Walczak, Lin Li, Yanfen Liu, Ke Li, Minyan Shi, Dongmei Cao, Xinhui Wang, Feng Ma, Linjie Liu, Rui Li
article en

Abstract

TNF can activate both prosurvival and prodeath signaling downstream of tumor necrosis factor receptor 1 (TNFR1). Survival signaling originates from TNFR1-containing membrane-bound complex I, while death signaling is driven by cytosolic complex II. Receptor-interacting protein kinase 1 (RIPK1) is a central component of both complexes but the molecular switch converting RIPK1 from a prosurvival scaffold in complex I to a prodeath kinase in complex II has remained elusive. Here, we identify the E3 ligase HERC4 as the molecular determinant of prodeath signaling. We show that HERC4 binds complex I-derived S166-phosphorylated, kinase-active RIPK1 and ubiquitinates it within its death domain. This enables RIPK1 oligomerization and assembly of the apoptosis-inducing RIPK1–FADD–caspase 8-containing complex IIa and, upon caspase inhibition, formation of the necroptosis-initiating RIPK1–RIPK3-containing necrosome. HERC4 deficiency protects mice from TNF-induced systemic inflammatory response syndrome and acute liver injury. Thus, HERC4 is the link enabling complex I-derived RIPK1 to initiate death signaling. Lu and Du et al. show that HERC4 E3 ligase ubiquitinates S166-phosphorylated RIPK1 to initiate prodeath complex assembly and TNF-induced cell death, acting as the pivotal prodeath switch and that loss of HERC4 protects mice from TNF-driven inflammation and liver injury.

Nature Structural & Molecular Biology
China Pharmaceutical University (CN), University of Cologne (DE), Chinese Academy of Medical Sciences & Peking Union Medical College (CN), ShanghaiTech University (CN), National Institute of Biological Sciences, Beijing (CN), Suzhou Institute of Systems Medicine (CN), Cologne Excellence Cluster on Cellular Stress Responses in Aging Associated Diseases (DE), University College London (GB)
Good health and well-being
Openalex Percentile: Top 19%
Cell death mechanisms and regulation
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