STAT1 potentiates oxidative stress revealing a targetable vulnerability that increases phenformin efficacy in breast cancer

Author:

Totten Stephanie P.,Im Young Kyuen,Cepeda Cañedo Eduardo,Najyb Ouafa,Nguyen AliceORCID,Hébert StevenORCID,Ahn RyuhjinORCID,Lewis KyleORCID,Lebeau Benjamin,La Selva Rachel,Sabourin Valérie,Martínez Constanza,Savage PaulORCID,Kuasne Hellen,Avizonis Daina,Santos Martínez NancyORCID,Chabot Catherine,Aguilar-Mahecha Adriana,Goulet Marie-Line,Dankner Matthew,Witcher MichaelORCID,Petrecca KevinORCID,Basik Mark,Pollak Michael,Topisirovic IvanORCID,Lin Rongtuan,Siegel Peter M.ORCID,Kleinman Claudia L.ORCID,Park MoragORCID,St-Pierre JulieORCID,Ursini-Siegel JosieORCID

Abstract

AbstractBioenergetic perturbations driving neoplastic growth increase the production of reactive oxygen species (ROS), requiring a compensatory increase in ROS scavengers to limit oxidative stress. Intervention strategies that simultaneously induce energetic and oxidative stress therefore have therapeutic potential. Phenformin is a mitochondrial complex I inhibitor that induces bioenergetic stress. We now demonstrate that inflammatory mediators, including IFNγ and polyIC, potentiate the cytotoxicity of phenformin by inducing a parallel increase in oxidative stress through STAT1-dependent mechanisms. Indeed, STAT1 signaling downregulates NQO1, a key ROS scavenger, in many breast cancer models. Moreover, genetic ablation or pharmacological inhibition of NQO1 using β-lapachone (an NQO1 bioactivatable drug) increases oxidative stress to selectively sensitize breast cancer models, including patient derived xenografts of HER2+ and triple negative disease, to the tumoricidal effects of phenformin. We provide evidence that therapies targeting ROS scavengers increase the anti-neoplastic efficacy of mitochondrial complex I inhibitors in breast cancer.

Funder

Gouvernement du Canada | Canadian Institutes of Health Research

Publisher

Springer Science and Business Media LLC

Subject

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

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