KRAS on Empty: Lipid Oxidation Blockade Reveals a Metabolic Achilles' Heel in Pancreatic Cancer
Deborah de la Caridad Delgado Herrera1, Christina M Ferrer1,2
1University of Maryland School of Medicine, Baltimore, Maryland.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is the third leading cause of cancer death in the United States, driven by its aggressive biology and high metastatic incidence at diagnosis. With a 5-year survival rate of just 8%, PDAC remains one of the most lethal cancers. Mutant KRAS, present in more than 90% of cases, serves as a key driver of tumorigenesis and metabolic reprogramming. In this issue of Cancer Research, Thakur and colleagues uncover a novel metabolic adaptation that PDAC cells use to survive therapeutic stress. Their integrated metabolomic and lipidomic analyses show that ERK inhibition-targeting a key KRAS pathway effector-not only disrupts glycolysis and glutamine metabolism but also triggers a compensatory increase in fatty acid oxidation (FAO). This shift occurs through lipophagy, a lysosome-mediated lipid degradation process, rather than cytosolic lipolysis. Mechanistically, ERK inhibition promotes the nuclear translocation of TFEB, which drives the upregulation of FAO and lipophagy genes. This metabolic reprogramming enables PDAC cells to survive KRAS pathway blockade. Importantly, cotargeting FAO alongside ERK or KRAS inhibitors elicits a potent synergistic antitumor effect in vivo. This dual-target strategy holds promise for overcoming PDAC resistance to KRAS-targeted therapies, laying the groundwork for novel combination treatments. See related article by Thakur et al., p. 3519.
Insights
Pancreatic cancer cells adapt to KRAS therapy by increasing fatty acid oxidation via lipophagy. Combining fatty acid oxidation inhibitors with KRAS or ERK inhibitors shows promise for treating pancreatic ductal adenocarcinoma.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is a lethal cancer with poor survival rates.
- Mutant KRAS drives PDAC tumorigenesis and metabolic reprogramming.
- Effective therapeutic strategies for PDAC remain limited.
Purpose of the Study:
- To identify novel metabolic adaptations in PDAC cells.
- To understand how PDAC cells survive KRAS pathway inhibition.
- To explore combination therapies for PDAC.
Main Methods:
- Integrated metabolomic and lipidomic analyses.
- Investigated the role of ERK inhibition and TFEB.
- Evaluated the efficacy of cotargeting fatty acid oxidation (FAO) in preclinical models.
Main Results:
- ERK inhibition disrupts glycolysis and glutamine metabolism but induces compensatory fatty acid oxidation (FAO) via lipophagy.
- ERK inhibition promotes TFEB nuclear translocation, upregulating FAO and lipophagy genes.
- Combined inhibition of FAO with ERK or KRAS inhibitors demonstrated synergistic antitumor effects in vivo.
Conclusions:
- PDAC cells utilize lipophagy-mediated FAO to survive KRAS pathway blockade.
- Dual-targeting of FAO alongside ERK or KRAS inhibitors offers a promising strategy to overcome therapeutic resistance in PDAC.
- This approach lays the foundation for novel combination treatments for pancreatic cancer.
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