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Targeting PIKfyve-driven lipid metabolism in pancreatic cancer

Author

Listed:
  • Caleb Cheng

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Jing Hu

    (University of Michigan
    University of Michigan
    Shandong University)

  • Rahul Mannan

    (University of Michigan
    University of Michigan)

  • Tongchen He

    (University of Michigan
    Central South University)

  • Rupam Bhattacharyya

    (University of Michigan
    University of Michigan)

  • Brian Magnuson

    (University of Michigan
    University of Michigan)

  • Jasmine P. Wisniewski

    (University of Michigan)

  • Sydney Peters

    (University of Michigan)

  • Saadia A. Karim

    (CRUK Scotland Institute)

  • David J. MacLean

    (CRUK Scotland Institute)

  • Hüseyin Karabürk

    (University of Michigan)

  • Li Zhang

    (University of Michigan)

  • Nicholas J. Rossiter

    (University of Michigan)

  • Yang Zheng

    (University of Michigan
    University of Michigan)

  • Lanbo Xiao

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Chungen Li

    (Chinese Academy of Sciences)

  • Dominik Awad

    (University of Michigan)

  • Somnath Mahapatra

    (University of Michigan
    University of Michigan)

  • Yi Bao

    (University of Michigan
    University of Michigan)

  • Yuping Zhang

    (University of Michigan
    University of Michigan)

  • Xuhong Cao

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Zhen Wang

    (Chinese Academy of Sciences)

  • Rohit Mehra

    (University of Michigan
    University of Michigan)

  • Pietro Morlacchi

    (Agilent Technologies)

  • Vaibhav Sahai

    (University of Michigan
    University of Michigan)

  • Marina Pasca di Magliano

    (University of Michigan
    University of Michigan)

  • Yatrik M. Shah

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Lois S. Weisman

    (University of Michigan
    University of Michigan)

  • Jennifer P. Morton

    (CRUK Scotland Institute
    University of Glasgow)

  • Ke Ding

    (Chinese Academy of Sciences)

  • Yuanyuan Qiao

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Costas A. Lyssiotis

    (University of Michigan
    University of Michigan
    University of Michigan)

  • Arul M. Chinnaiyan

    (University of Michigan
    University of Michigan
    University of Michigan
    University of Michigan)

Abstract

Pancreatic ductal adenocarcinoma (PDAC) subsists in a nutrient-deregulated microenvironment, making it particularly susceptible to treatments that interfere with cancer metabolism1,2. For example, PDAC uses, and is dependent on, high levels of autophagy and other lysosomal processes3–5. Although targeting these pathways has shown potential in preclinical studies, progress has been hampered by the difficulty in identifying and characterizing favourable targets for drug development6. Here, we characterize PIKfyve, a lipid kinase that is integral to lysosomal functioning7, as a targetable vulnerability in PDAC. Using a genetically engineered mouse model, we established that PIKfyve is essential to PDAC progression. Furthermore, through comprehensive metabolic analyses, we found that PIKfyve inhibition forces PDAC to upregulate a distinct transcriptional and metabolic program favouring de novo lipid synthesis. In PDAC, the KRAS–MAPK signalling pathway is a primary driver of de novo lipid synthesis. Accordingly, simultaneously targeting PIKfyve and KRAS–MAPK resulted in the elimination of the tumour burden in numerous preclinical human and mouse models. Taken together, these studies indicate that disrupting lipid metabolism through PIKfyve inhibition induces synthetic lethality in conjunction with KRAS–MAPK-directed therapies for PDAC.

Suggested Citation

  • Caleb Cheng & Jing Hu & Rahul Mannan & Tongchen He & Rupam Bhattacharyya & Brian Magnuson & Jasmine P. Wisniewski & Sydney Peters & Saadia A. Karim & David J. MacLean & Hüseyin Karabürk & Li Zhang & N, 2025. "Targeting PIKfyve-driven lipid metabolism in pancreatic cancer," Nature, Nature, vol. 642(8068), pages 776-784, June.
  • Handle: RePEc:nat:nature:v:642:y:2025:i:8068:d:10.1038_s41586-025-08917-z
    DOI: 10.1038/s41586-025-08917-z
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