SDR enzymes oxidize specific lipidic alkynylcarbinols into cytotoxic protein-reactive species

Author:

Demange Pascal1,Joly Etienne1,Marcoux Julien1,Zanon Patrick RA23ORCID,Listunov Dymytrii45,Rullière Pauline4,Barthes Cécile5,Noirot Céline6,Izquierdo Jean-Baptiste1,Rozié Alexandrine17,Pradines Karen17,Hee Romain17,de Brito Maria Vieira58,Marcellin Marlène1,Serre Remy-Felix9,Bouchez Olivier9,Burlet-Schiltz Odile1,Oliveira Maria Conceição Ferreira8,Ballereau Stéphanie4ORCID,Bernardes-Génisson Vania5,Maraval Valérie5,Calsou Patrick17,Hacker Stephan M23,Génisson Yves4ORCID,Chauvin Remi5ORCID,Britton Sébastien17ORCID

Affiliation:

1. Institut de Pharmacologie et de Biologie Structurale, IPBS, CNRS, Université de Toulouse

2. Leiden Institute of Chemistry, Leiden University

3. Department of Chemistry, Technical University of Munich

4. SPCMIB, UMR5068, CNRS, Université de Toulouse, UPS

5. LCC-CNRS, Université de Toulouse, CNRS, UPS

6. INRAE, UR 875 Unité de Mathématique et Informatique Appliquées, Genotoul Bioinfo Auzeville

7. Equipe labellisée la Ligue contre le Cancer 2018

8. Department of Organic and Inorganic Chemistry, Science Center, Federal University of Ceará

9. INRAE, US 1426 GeT-PlaGe, F-31326

Abstract

Hundreds of cytotoxic natural or synthetic lipidic compounds contain chiral alkynylcarbinol motifs, but the mechanism of action of those potential therapeutic agents remains unknown. Using a genetic screen in haploid human cells, we discovered that the enantiospecific cytotoxicity of numerous terminal alkynylcarbinols, including the highly cytotoxic dialkynylcarbinols, involves a bioactivation by HSD17B11, a short-chain dehydrogenase/reductase (SDR) known to oxidize the C-17 carbinol center of androstan-3-alpha,17-beta-diol to the corresponding ketone. A similar oxidation of dialkynylcarbinols generates dialkynylketones, that we characterize as highly protein-reactive electrophiles. We established that, once bioactivated in cells, the dialkynylcarbinols covalently modify several proteins involved in protein-quality control mechanisms, resulting in their lipoxidation on cysteines and lysines through Michael addition. For some proteins, this triggers their association to cellular membranes and results in endoplasmic reticulum stress, unfolded protein response activation, ubiquitin-proteasome system inhibition and cell death by apoptosis. Finally, as a proof-of-concept, we show that generic lipidic alkynylcarbinols can be devised to be bioactivated by other SDRs, including human RDH11 and HPGD/15-PGDH. Given that the SDR superfamily is one of the largest and most ubiquitous, this unique cytotoxic mechanism-of-action could be widely exploited to treat diseases, in particular cancer, through the design of tailored prodrugs.

Funder

University of Toulouse

Agence Nationale de la Recherche

CAPES-COFECUB Ph-C

FEDER

Fonds der Chemischen Industrie

Technical University of Munich

Ligue Contre le Cancer

Toulouse Metropole

Region Midi-Pyrénées

Fondation ARC pour la Recherche sur le Cancer

Publisher

eLife Sciences Publications, Ltd

Subject

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

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