USP25 promotes pathological HIF-1-driven metabolic reprogramming and is a potential therapeutic target in pancreatic cancer

Jessica K. Nelson(Institute of Cancer Research), May Zaw Thin(Institute of Cancer Research), Theodore Evan(The Francis Crick Institute), Steven Howell(The Francis Crick Institute), Mary Wu(The Francis Crick Institute), Bruna Almeida(The Francis Crick Institute), Nathalie Legrave(The Francis Crick Institute), Duco S. Koenis(Queen Mary University of London), Gabriela Koifman(Institute of Cancer Research), Yoichiro Sugimoto(The Francis Crick Institute), Miriam Llorián Sopeña(The Francis Crick Institute), James I. MacRae(The Francis Crick Institute), Emma Nye(The Francis Crick Institute), Michael Howell(The Francis Crick Institute), Ambrosius P. Snijders(The Francis Crick Institute), Andreas Prachalias(King's College Hospital), Yoh Zen(King's College Hospital), Debashis Sarker(King's College Hospital), Axel Behrens(Breast Cancer Now)
Nature Communications
April 19, 2022
Cited by 95Open Access
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Abstract

Deubiquitylating enzymes (DUBs) play an essential role in targeted protein degradation and represent an emerging therapeutic paradigm in cancer. However, their therapeutic potential in pancreatic ductal adenocarcinoma (PDAC) has not been explored. Here, we develop a DUB discovery pipeline, combining activity-based proteomics with a loss-of-function genetic screen in patient-derived PDAC organoids and murine genetic models. This approach identifies USP25 as a master regulator of PDAC growth and maintenance. Genetic and pharmacological USP25 inhibition results in potent growth impairment in PDAC organoids, while normal pancreatic organoids are insensitive, and causes dramatic regression of patient-derived xenografts. Mechanistically, USP25 deubiquitinates and stabilizes the HIF-1α transcription factor. PDAC is characterized by a severely hypoxic microenvironment, and USP25 depletion abrogates HIF-1α transcriptional activity and impairs glycolysis, inducing PDAC cell death in the tumor hypoxic core. Thus, the USP25/HIF-1α axis is an essential mechanism of metabolic reprogramming and survival in PDAC, which can be therapeutically exploited.


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