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Biology subjects

Tourriere, H.

Publications and source records attributed to Tourriere, H..

2 recordsLinked to original sources

FMO4 drives lung adenocarcinoma by stabilizing the MAT2A/MAT2B complex and hindering ferroptosis

Lung cancer is the leading cause of death by cancer in the world and finding new targets is a major medical need to tackle this disease. Here, upon proteomic analysis to identify common players in oncogenic EGFR- and KRAS-driven lung adenocarcinoma mouse models, we uncovered a largely unknown protein in cancer, flavin-containing monooxygenase 4 (FMO4), whose expression was increased in lung tumors compared with adjacent lung tissue. FMO4 expression was strongly increased also in lung cancer samples from patients compared with healthy lung, and its expression level was inversely correlated with overall survival. Remarkably, in vivo deletion of FMO4 greatly decreased tumor burden and increased survival in oncogenic KRAS-driven lung adenocarcinoma mice unveiling its crucial role in tumor biology. Mechanistically, we found that FMO4 loss of function promotes ferroptosis and cooperates with ferroptosis inducers in vitro and in vivo. Moreover, FMO4 facilitates the interaction between MAT2A and MAT2B, promoting the generation of cysteine from methionine, which in turn boosts the generation of glutathione, thus protecting lung adenocarcinoma against ferroptosis. In summary we identified a new target in lung adenocarcinoma with important implications in cancer biology.

cancer biology↗

MDM2 stabilization of Notch intracellular domain upon DNA damage plays a major role in non-small cell lung carcinoma response to platinum chemotherapy

Despite major advances in lung cancer clinical management, majority of patients suffering non-small cell lung carcinoma (NSCLC) are treated in first line with platinum in combination with immune checkpoint inhibitors. Although platinum compounds normally display an initial therapeutic effect, relapse constitutes a major challenge in the clinical management of NSCLC patients. Therefore, it is fundamental to understand the relapse underlying mechanisms to find new therapeutic opportunities to improve patients survival. Here, we found that different DNA damage inducers increase the protein levels of Notch Intracellular Domain (NICD), i.e., the active form of NOTCH1. Mechanistically, we unveiled that upon platinum treatment, there was a concomitant increase of MDM2 together with NICD, and we also observed an MDM2-mediated ubiquitination and stabilization of NICD. Of note, using patient-derived xenografts displaying intrinsic carboplatin resistance, we demonstrated that the combination of carboplatin with MDM2 and NICD inhibitors increased survival and reduced tumor growth compared with carboplatin in monotherapy. Moreover, in patients with NSCLC who received platinum chemotherapy, MDM2 expression level in the tumor was correlated with poor progression-free survival, further validating MDM2 key role in the response to platinum compounds. Our findings open a therapeutic opportunity for NSCLC patients, the main lung cancer subtype of the leading cause of death by cancer worldwide.

cancer biology↗