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Glioblastoma Cells Counteract PARP Inhibition through Pro-Survival Induction of Lipid Droplets Synthesis and Utilization.
Majuelos-Melguizo, Jara; Rodríguez-Vargas, José Manuel; Martínez-López, Nuria; Delgado-Bellido, Daniel; García-Díaz, Ángel; Yuste, Víctor J; García-Macía, Marina; López, Laura M; Singh, Rajat; Oliver, F J.
  • Majuelos-Melguizo J; Department of Immunology and Cell Biology, Institute of Parasitology and Biomedicine "López-Neyra", IPBLN, CSIC, CIBERONC, 18016 Granada, Spain.
  • Rodríguez-Vargas JM; Department of Biochemistry, Autonomous University of Madrid (UAM), 'Alberto Sols' Biomedical Research Institute (CSIC-UAM), 28029 Madrid, Spain.
  • Martínez-López N; Department of Immunology and Cell Biology, Institute of Parasitology and Biomedicine "López-Neyra", IPBLN, CSIC, CIBERONC, 18016 Granada, Spain.
  • Delgado-Bellido D; Institute for Cell and Molecular Biosciences, Newcastle University, Newcastle upon Tyne NE2 4HH, UK.
  • García-Díaz Á; Department of Immunology and Cell Biology, Institute of Parasitology and Biomedicine "López-Neyra", IPBLN, CSIC, CIBERONC, 18016 Granada, Spain.
  • Yuste VJ; Department of Immunology and Cell Biology, Institute of Parasitology and Biomedicine "López-Neyra", IPBLN, CSIC, CIBERONC, 18016 Granada, Spain.
  • García-Macía M; Cell Death, Senescence and Survival Group, Department of Biochemistry and Molecular Biology and Institute of Neurosciences, Faculty of Medicine, Autonomous University of Barcelona, CIBERNED, 08193 Barcelona, Spain.
  • López LM; Institute of Cellular Medicine, Newcastle University, Newcastle upon Tyne NE2 4HH, UK.
  • Singh R; Department of Immunology and Cell Biology, Institute of Parasitology and Biomedicine "López-Neyra", IPBLN, CSIC, CIBERONC, 18016 Granada, Spain.
  • Oliver FJ; Department of Medicine, Albert Einstein College of Medicine, Bronx, NY 10461, USA.
Cancers (Basel) ; 14(3)2022 Jan 30.
Article en En | MEDLINE | ID: mdl-35158994
ABSTRACT
Glioblastoma multiforme (GBM) is the most common and aggressive primary brain tumor in adults. Poly (ADP-ribose) polymerase inhibitors (PARPi) represent a new class of anti-neoplastic drugs. In the current study, we have characterized the mechanism by which glioblastoma cells evade the effect of PARPi as anti-tumor agents. We have found that suppression of PARP activity exerts an anti-stemness effect and has a dual impact on autophagy, inducing its activation in the first 24 h (together with down-regulation of the pro-survival mTOR pathway) and preventing autophagosomes fusion to lysosomes at later time-points, in primary glioma cells. In parallel, PARPi triggered the synthesis of lipid droplets (LDs) through ACC-dependent activation of de novo fatty acids (FA) synthesis. Notably, inhibiting ß-oxidation and blocking FA utilization, increased PARPi-induced glioma cell death while treatment with oleic acid (OA) prevented the anti-glioma effect of PARPi. Moreover, LDs fuel glioma cells by inducing pro-survival lipid consumption as confirmed by quantitation of oxygen consumption rates using Seahorse respirometry in presence or absence of OA. In summary, we uncover a novel mechanism by which glioblastoma escapes to anti-tumor agents through metabolic reprogramming, inducing the synthesis and utilization of LDs as a pro-survival strategy in response to PARP inhibition.
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