Uridine-derived ribose fuels glucose-restricted pancreatic cancer

Zeribe C. Nwosu(University of Michigan), Matthew H. Ward(Washington University in St. Louis), Peter Sajjakulnukit(University of Michigan), Pawan Poudel(Institute of Cancer Research), Chanthirika Ragulan(Institute of Cancer Research), Steven Kasperek(University of Michigan), Megan D. Radyk(University of Michigan), Damien Sutton(University of Michigan), Rosa E. Menjivar(University of Michigan), Anthony Andren(University of Michigan), Juan J. Apiz-Saab(University of Chicago), Zachary P. Tolstyka(University of Michigan), Kristee Brown(University of Michigan), Ho‐Joon Lee(University of Michigan), Lindsey N. Dzierozynski(University of Chicago), Xi He(University of Michigan), Hari PS(Institute of Cancer Research), Julia Ugras(University of Michigan), Gift Nyamundanda(Institute of Cancer Research), Li Zhang(University of Michigan), Christopher J. Halbrook(University of Michigan), Eileen S. Carpenter(University of Michigan), Jiaqi Shi(University of Michigan), Leah P. Shriver(Washington University in St. Louis), Gary J. Patti(Washington University in St. Louis), Alexander Muir(University of Chicago), Marina Pasca di Magliano(University of Michigan), Anguraj Sadanandam(Institute of Cancer Research), Costas A. Lyssiotis(University of Michigan)
Nature
May 17, 2023
Cited by 141Open Access
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Abstract

. Although altered metabolism drives tumour progression, the spectrum of metabolites used as nutrients by PDA remains largely unknown. Here we identified uridine as a fuel for PDA in glucose-deprived conditions by assessing how more than 175 metabolites impacted metabolic activity in 21 pancreatic cell lines under nutrient restriction. Uridine utilization strongly correlated with the expression of uridine phosphorylase 1 (UPP1), which we demonstrate liberates uridine-derived ribose to fuel central carbon metabolism and thereby support redox balance, survival and proliferation in glucose-restricted PDA cells. In PDA, UPP1 is regulated by KRAS-MAPK signalling and is augmented by nutrient restriction. Consistently, tumours expressed high UPP1 compared with non-tumoural tissues, and UPP1 expression correlated with poor survival in cohorts of patients with PDA. Uridine is available in the tumour microenvironment, and we demonstrated that uridine-derived ribose is actively catabolized in tumours. Finally, UPP1 deletion restricted the ability of PDA cells to use uridine and blunted tumour growth in immunocompetent mouse models. Our data identify uridine utilization as an important compensatory metabolic process in nutrient-deprived PDA cells, suggesting a novel metabolic axis for PDA therapy.


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