Person: Hetz, Claudio
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Publication The Unfolded Protein Response: At the Intersection between Endoplasmic Reticulum Function and Mitochondrial Bioenergetics
(Frontiers Media S.A., 2017) Carreras-Sureda, Amado; Pihán, Philippe; Hetz, ClaudioEndoplasmic reticulum (ER) to mitochondria communication has emerged in recent years as a signaling hub regulating cellular physiology with a relevant contribution to diseases including cancer and neurodegeneration. This functional integration is exerted through discrete interorganelle structures known as mitochondria-associated membranes (MAMs). At these domains, ER/mitochondria physically associate to dynamically adjust metabolic demands and the response to stress stimuli. Here, we provide a focused overview of how the ER shapes the function of the mitochondria, giving a special emphasis to the significance of local signaling of the unfolded protein response at MAMs. The implications to cell fate control and the progression of cancer are also discussed.
Publication Dual IRE1 RNase functions dictate glioblastoma development
(John Wiley and Sons Inc., 2018) Lhomond, Stéphanie; Avril, Tony; Dejeans, Nicolas; Voutetakis, Konstantinos; Doultsinos, Dimitrios; McMahon, Mari; Pineau, Raphaël; Obacz, Joanna; Papadodima, Olga; Jouan, Florence; Bourien, Heloise; Logotheti, Marianthi; Jégou, Gwénaële; Pallares‐Lupon, Néstor; Schmit, Kathleen; Le Reste, Pierre‐Jean; Etcheverry, Amandine; Mosser, Jean; Barroso, Kim; Vauléon, Elodie; Maurel, Marion; Samali, Afshin; Patterson, John B; Pluquet, Olivier; Hetz, Claudio; Quillien, Véronique; Chatziioannou, Aristotelis; Chevet, EricAbstract Proteostasis imbalance is emerging as a major hallmark of cancer, driving tumor aggressiveness. Evidence suggests that the endoplasmic reticulum (ER), a major site for protein folding and quality control, plays a critical role in cancer development. This concept is valid in glioblastoma multiform (GBM), the most lethal primary brain cancer with no effective treatment. We previously demonstrated that the ER stress sensor IRE1α (referred to as IRE1) contributes to GBM progression, through XBP1 mRNA splicing and regulated IRE1‐dependent decay (RIDD) of RNA. Here, we first demonstrated IRE1 signaling significance to human GBM and defined specific IRE1‐dependent gene expression signatures that were confronted to human GBM transcriptomes. This approach allowed us to demonstrate the antagonistic roles of XBP1 mRNA splicing and RIDD on tumor outcomes, mainly through selective remodeling of the tumor stroma. This study provides the first demonstration of a dual role of IRE1 downstream signaling in cancer and opens a new therapeutic window to abrogate tumor progression.