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  • A Unique Morphological Phenotype in Chemoresistant Triple-Negative Breast Cancer Reveals Metabolic Reprogramming and PLIN4 Expression as a Molecular Vulnerability.

A Unique Morphological Phenotype in Chemoresistant Triple-Negative Breast Cancer Reveals Metabolic Reprogramming and PLIN4 Expression as a Molecular Vulnerability.

Molecular cancer research : MCR (2019-09-21)
Isabelle Sirois, Adriana Aguilar-Mahecha, Josiane Lafleur, Emma Fowler, Viet Vu, Michelle Scriver, Marguerite Buchanan, Catherine Chabot, Aparna Ramanathan, Banujan Balachandran, Stéphanie Légaré, Ewa Przybytkowski, Cathy Lan, Urszula Krzemien, Luca Cavallone, Olga Aleynikova, Cristiano Ferrario, Marie-Christine Guilbert, Naciba Benlimame, Amine Saad, Moulay Alaoui-Jamali, Horace Uri Saragovi, Sylvia Josephy, Ciara O'Flanagan, Stephen D Hursting, Vincent R Richard, René P Zahedi, Christoph H Borchers, Eric Bareke, Sheida Nabavi, Peter Tonellato, Josée-Anne Roy, André Robidoux, Elizabeth A Marcus, Catalin Mihalcioiu, Jacek Majewski, Mark Basik
ABSTRACT

The major obstacle in successfully treating triple-negative breast cancer (TNBC) is resistance to cytotoxic chemotherapy, the mainstay of treatment in this disease. Previous preclinical models of chemoresistance in TNBC have suffered from a lack of clinical relevance. Using a single high dose chemotherapy treatment, we developed a novel MDA-MB-436 cell-based model of chemoresistance characterized by a unique and complex morphologic phenotype, which consists of polyploid giant cancer cells giving rise to neuron-like mononuclear daughter cells filled with smaller but functional mitochondria and numerous lipid droplets. This resistant phenotype is associated with metabolic reprogramming with a shift to a greater dependence on fatty acids and oxidative phosphorylation. We validated both the molecular and histologic features of this model in a clinical cohort of primary chemoresistant TNBCs and identified several metabolic vulnerabilities including a dependence on PLIN4, a perilipin coating the observed lipid droplets, expressed both in the TNBC-resistant cells and clinical chemoresistant tumors treated with neoadjuvant doxorubicin-based chemotherapy. These findings thus reveal a novel mechanism of chemotherapy resistance that has therapeutic implications in the treatment of drug-resistant cancer. IMPLICATIONS: These findings underlie the importance of a novel morphologic-metabolic phenotype associated with chemotherapy resistance in TNBC, and bring to light novel therapeutic targets resulting from vulnerabilities in this phenotype, including the expression of PLIN4 essential for stabilizing lipid droplets in resistant cells.

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MISSION® esiRNA, targeting human PPARG