Z-REX uncovers a bifurcation in function of Keap1 paralogs

Author:

Van Hall-Beauvais Alexandra1ORCID,Poganik Jesse R12,Huang Kuan-Ting1ORCID,Parvez Saba3,Zhao Yi14ORCID,Lin Hong-Yu5,Liu Xuyu167,Long Marcus John Curtis8,Aye Yimon1ORCID

Affiliation:

1. Swiss Federal Institute of Technology Lausanne

2. Division of Genetics, Department of Medicine, Brigham and Women’s Hospital, Harvard Medical School

3. Department of Pharmacology and Toxicology, College of Pharmacy, University of Utah

4. BayRay Innovation Center, Shenzhen Bay Laboratory

5. Department of Chemical Biology, College of Chemistry and Chemical Engineering, Xiamen University

6. School of Chemistry, The University of Sydney

7. The Heart Research Institute, Newtown

8. Department of Biochemistry, Faculty of Biology and Medicine, University of Lausanne

Abstract

Studying electrophile signaling is marred by difficulties in parsing changes in pathway flux attributable to on-target, vis-à-vis off-target, modifications. By combining bolus dosing, knockdown, and Z-REX—a tool investigating on-target/on-pathway electrophile signaling, we document that electrophile labeling of one zebrafish-Keap1-paralog (zKeap1b) stimulates Nrf2- driven antioxidant response (AR) signaling (like the human-ortholog). Conversely, zKeap1a is a dominant-negative regulator of electrophile-promoted Nrf2-signaling, and itself is nonpermissive for electrophile-induced Nrf2-upregulation. This behavior is recapitulated in human cells: (1) zKeap1b-expressing cells are permissive for augmented AR-signaling through reduced zKeap1b–Nrf2 binding following whole-cell electrophile treatment; (2) zKeap1a-expressing cells are non-permissive for AR-upregulation, as zKeap1a–Nrf2 binding capacity remains unaltered upon whole-cell electrophile exposure; (3) 1:1 ZKeap1a:zKeap1b-co-expressing cells show no Nrf2-release from the Keap1-complex following whole-cell electrophile administration, rendering these cells unable to upregulate AR. We identified a zKeap1a-specific point-mutation (C273I) responsible for zKeap1a’s behavior during electrophilic stress. Human-Keap1(C273I), of known diminished Nrf2-regulatory capacity, dominantly muted electrophile-induced Nrf2-signaling. These studies highlight divergent and interdependent electrophile signaling behaviors, despite conserved electrophile sensing.

Funder

Novartis FreeNovation

European Research Council

Swiss Federal Institute of Technology Lausanne

National Institutes of Health

AHA predoctoral Fellowship

HHMI International Fellow

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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