TY - JOUR
T1 - Lysosomal lipid switch sensitises to nutrient deprivation and mTOR targeting in pancreatic cancer
AU - de Santis, Maria Chiara
AU - Gozzelino, Luca
AU - Margaria, Jean Piero
AU - Costamagna, Andrea
AU - Ratto, Edoardo
AU - Gulluni, Federico
AU - di Gregorio, Enza
AU - Mina, Erica
AU - Lorito, Nicla
AU - Bacci, Marina
AU - Lattanzio, Rossano
AU - Sala, Gianluca
AU - Cappello, Paola
AU - Novelli, Francesco
AU - Giovannetti, Elisa
AU - Vicentini, Caterina
AU - Andreani, Silvia
AU - Delfino, Pietro
AU - Corbo, Vincenzo
AU - Scarpa, Aldo
AU - Porporato, Paolo Ettore
AU - Morandi, Andrea
AU - Hirsch, Emilio
AU - Martini, Miriam
N1 - Funding Information:
We thank Prof. Andrea Graziani, Dr. Alessio Menga, Dr. Carlo Cosimo Campa, Prof. Vincenzo Calautti, Prof. Riccardo Taulli and Prof. Chiara Ambrogio for critically reading the manuscript and useful discussion. We acknowledge the Open Lab of Advanced Microscopy (OLMA) at the Molecular Biotechnology Centre (MBC) for support and Euro-BioImaging (www.eurobioimaging.eu) for providing access to imaging technologies and services via the MultiModal Molecular Imaging Italian Node (Torino, Italy). The data of the PanCuRx cohort used in this study were generated with the support of the Ontario Institute for Cancer Research through funding provided by the Government of Ontario.
Funding Information:
MCDS and JPM are supported by Fondazione Italiana per la Ricerca sul Cancro/Associazione Italiana Ricerca sul Cancro (FIRC/AIRC) fellowships (22 248 and 22558). FG is supported by Fondazione Pezcoller/SIC-Patrizia Coser. MM is supported by Worldwide Cancer Research grant (WWCR, 20–0033). EH is supported by AIRC (21875), MIUR (Ministero Università Ricerca, PRIN 2017) and Leducq Transatlantic Network of Excellence (19CVD02). EG is supported by AIRC (IG24444) and Dutch Cancer Society (KWF-11957). PD is supported by Fondazione Nadia Valsecchi Onlus. VC and AS are supported by AIRC (18 718 and 12182). AS is also supported by Italian Ministry of Health (FIMPDACUP_J38D19000690001). PEP is supported by AIRC (MFAG 2018 - ID. 21564). MB is supported by Fondazione Pezcoller/SIC Prof.ssa De Gasperi Ronc. AM is supported by AIRC and Fondazione Cassa di Risparmio di Firenze (IG22941 and MultiUser19515). FN is supported by AIRC (IG19931) and Fondazione Ricerca Molinette Onlus (Fondo CD38, Fondo Ursula and Giorgio Cytron). The data presented in the current study were in part generated using the equipment of the Facility di Medicina Molecolare, funded by 'Ministero dell’Istruzione dell’Università e della Ricerca-Bando Dipartimenti di Eccellenza 2018–2022' (AM).
Publisher Copyright:
© Author(s) (or their employer(s)) 2023. Re-use permitted under CC BY-NC. No commercial re-use. See rights and permissions. Published by BMJ.
PY - 2023
Y1 - 2023
N2 - 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.
AB - 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.
KW - AMINO ACIDS
KW - CELL BIOLOGY
KW - LIPID METABOLISM
KW - PANCREATIC CANCER
KW - SIGNAL TRANSDUCTION
UR - https://www.scopus.com/pages/publications/85145668810
UR - https://www.ncbi.nlm.nih.gov/pubmed/35623884
UR - https://www.scopus.com/pages/publications/85145668810
U2 - 10.1136/gutjnl-2021-325117
DO - 10.1136/gutjnl-2021-325117
M3 - Article
C2 - 35623884
SN - 0017-5749
VL - 72
SP - 360
EP - 371
JO - Gut
JF - Gut
IS - 2
ER -