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Biology subjects

Basseville, A.

Publications and source records attributed to Basseville, A..

3 recordsLinked to original sources

BCL-xL antagonizes the deleterious effects of KRAS on mitochondrial scaffolding

In addition to its canonical role as a regulator of mitochondrial outer membrane permeabilization, BCL-xL exerts diverse non canonical functions contributing to cancer cell aggressiveness. In particular it regulates KRAS intracellular activation levels. We herein explored the mechanistic basis for this effect by a spatially restricted biotin-labelling proteomic approach designed to characterize proteins whose proximity to KRAS, used as a bait, is BCL-xL dependant. BCL-xL loss relocalizes KRAS to the vicinity of mitochondrial proteins. Proximal proteins include the mitochondrial scaffold prohibitin 2 (PHB2), which also interacts with BCL-xL and the downregulation of which prevents BCL-xL sensitive effects of KRAS induced contacts between mitochondria and endosomes, and mitochondrial mass decrease. These results argue that BCL-xL prevents a negative feedback regulation of KRAS canonical signaling by KRAS interference with mitochondrial quality control.

cell biology↗

Histone deacetylase inhibitor induces acetyl-CoA depletion leading to lethal metabolic stress in RAS-pathway activated cells

RAS-mutant cancers are among the most refractory to treatment. Apart from new G12C genotype targeted therapies, strategies to kill RAS-mutant cells by directly targeting RAS or its downstream effectors have been mostly unsuccessful, mainly due to pathway redundancy and heterogeneities in RAS-induced phenotypes. Here we identified a RAS-phenotype that can be targeted by the histone deacetylase inhibitor (HDACi) romidepsin. We showed that the hyperacetylation induced by romidepsin depleted acetyl-CoA, the cell donor substrate for acetylation, and led to metabolic stress and death in KRAS-activated cells. Elastic net analysis on transcriptomics from a 608-cell panel confirmed that HDACi sensitivity was linked to a difference in profiles in two pathways involved in acetyl-CoA metabolism. The analysis of a clinical dataset confirmed that perturbation of the two acetyl-CoA pathways were correlated with HDACi sensitivity in patients treated with belinostat. Our analysis suggests the potential utility of a RAS-associated acetyl-CoA phenotype to sharpen treatment choices for RAS-activated tumors.

cancer biology↗

Targeting of MCL-1 in breast cancer associated fibroblasts reverses their myofibroblastic phenotype and pro-invasive properties

Cancer associated fibroblasts (CAF) are a major cellular component of epithelial tumors. In breast cancers in particular these stromal cells have numerous tumorigenic effects in part due to their acquisition of a myofibroblastic phenotype. Breast CAFs (bCAFS) typically express MCL-1. We show here that targeting this regulator of mitochondrial integrity using a specific BH-3 mimetic promotes fragmentation of these organelles without inducing cell death. MCL-1 antagonism in primary bCAFs directly derived from human samples mitigates myofibroblastic features and decreases expression of genes involved in actomyosin organization and contractility, associated with a cytoplasmic retention of the transcriptional regulator, Yes-Associated Protein (YAP). Such treatment decreases bCAFs ability to promote cancer cells invasion in 3D co-culture assays. These effects are counteracted by an inhibitor of the mitochondrial fission protein DRP-1, which interacts with MCL-1 upon BH3 mimetic treatment. Our findings underscore the usefulness of targeting MCL-1 in breast cancer ecosystems, not only to favor death of cancer cells but also to counteract the tumorigenic activation of fibroblasts with which they co-evolve. The authors declare no conflict of interest.

cancer biology↗