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Updated: May 21, 2025

Exploring the Regulation of Lipid Droplet Catabolism through Lipophagy
Published on: January 31, 2025
Targeting PIKfyve-driven lipid metabolism in pancreatic cancer
Caleb Cheng1,2,3, Jing Hu1,4,5, Rahul Mannan1,4
1Michigan Center for Translational Pathology, University of Michigan, Ann Arbor, MI, USA.
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.
Insights
Targeting PIKfyve in pancreatic cancer (PDAC) disrupts lipid metabolism. Combining PIKfyve inhibition with KRAS-MAPK therapy eliminates tumors by inducing synthetic lethality, offering a new treatment strategy.
Area of Science:
- Oncology
- Cancer Metabolism
- Lipid Biology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) relies on a deregulated microenvironment and metabolic pathways like autophagy.
- Targeting cancer metabolism shows promise, but identifying effective drug targets remains challenging.
- PIKfyve, a lipid kinase crucial for lysosomal function, is implicated in PDAC progression.
Purpose of the Study:
- To characterize PIKfyve as a targetable vulnerability in PDAC.
- To investigate the metabolic consequences of PIKfyve inhibition in PDAC.
- To evaluate the efficacy of combined PIKfyve and KRAS-MAPK pathway inhibition in PDAC models.
Main Methods:
- Utilized a genetically engineered mouse model of PDAC.
- Performed comprehensive metabolic analyses to understand PIKfyve inhibition effects.
- Assessed the impact of simultaneous PIKfyve and KRAS-MAPK targeting in preclinical models.
Main Results:
- PIKfyve is essential for PDAC progression.
- PIKfyve inhibition induces de novo lipid synthesis upregulation via KRAS-MAPK signaling.
- Combined PIKfyve inhibition and KRAS-MAPK targeting eliminated tumor burden in preclinical models.
Conclusions:
- PIKfyve is a druggable target in PDAC.
- Disrupting lipid metabolism via PIKfyve inhibition leads to synthetic lethality.
- Combination therapy targeting PIKfyve and KRAS-MAPK presents a promising therapeutic strategy for PDAC.
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