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Lysosomal lipid switch sensitises to nutrient deprivation and mTOR targeting in pancreatic cancer

  • Maria Chiara de Santis
  • , Luca Gozzelino
  • , Jean Piero Margaria
  • , Andrea Costamagna
  • , Edoardo Ratto
  • , Federico Gulluni
  • , Enza di Gregorio
  • , Erica Mina
  • , Nicla Lorito
  • , Marina Bacci
  • , Rossano Lattanzio
  • , Gianluca Sala
  • , Paola Cappello
  • , Francesco Novelli
  • , Elisa Giovannetti
  • , Caterina Vicentini
  • , Silvia Andreani
  • , Pietro Delfino
  • , Vincenzo Corbo
  • , Aldo Scarpa
  • Paolo Ettore Porporato, Andrea Morandi, Emilio Hirsch, Miriam Martini*
*Corresponding author for this work
  • University of Turin
  • University of Florence
  • Gabriele d'Annunzio University
  • Amsterdam UMC
  • Cancer Pharmacology Lab
  • University of Verona
  • Cancer Pharmacology Lab, Fondazione Pisana per la Scienza, via Giovannini 13, 56017 San Giuliano Terme, Pisa, Italy

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Objective Pancreatic ductal adenocarcinoma (PDAC) is an aggressive disease with limited therapeutic options. However, metabolic adaptation to the harsh PDAC environment can expose liabilities useful for therapy. Targeting the key metabolic regulator mechanistic target of rapamycin complex 1 (mTORC1) and its downstream pathway shows efficacy only in subsets of patients but gene modifiers maximising response remain to be identified. Design Three independent cohorts of PDAC patients were studied to correlate PI3K-C2γprotein abundance with disease outcome. Mechanisms were then studied in mouse (KPC mice) and cellular models of PDAC, in presence or absence of PI3K-C2γ(WT or KO). PI3K-C2 3-dependent metabolic rewiring and its impact on mTORC1 regulation were assessed in conditions of limiting glutamine availability. Finally, effects of a combination therapy targeting mTORC1 and glutamine metabolism were studied in WT and KO PDAC cells and preclinical models. Results PI3K-C2γexpression was reduced in about 30% of PDAC cases and was associated with an aggressive phenotype. Similarly, loss of PI3K-C2γin KPC mice enhanced tumour development and progression. The increased aggressiveness of tumours lacking PI3K-C2γcorrelated with hyperactivation of mTORC1 pathway and glutamine metabolism rewiring to support lipid synthesis. PI3K-C2 3-KO tumours failed to adapt to metabolic stress induced by glutamine depletion, resulting in cell death. Conclusion Loss of PI3K-C2γprevents mTOR inactivation and triggers tumour vulnerability to RAD001 (mTOR inhibitor) and BPTES/CB-839 (glutaminase inhibitors). Therefore, these results might open the way to personalised treatments in PDAC with PI3K-C2γloss.
Original languageEnglish
Pages (from-to)360-371
Number of pages12
JournalGut
Volume72
Issue number2
DOIs
Publication statusPublished - 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • AMINO ACIDS
  • CELL BIOLOGY
  • LIPID METABOLISM
  • PANCREATIC CANCER
  • SIGNAL TRANSDUCTION

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