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ULK1/2 Inhibitors that Degrade ATG13 Effectively Target KRAS-Mutant Cancers
Abstract:
KRAS mutations drive tumorigenesis in multiple cancer types, including lung and pancreatic cancer. Autophagy is a cell survival pathway that supports tumor growth under metabolic stress and has been proposed to be a potential therapeutic avenue specifically in KRAS mutant cancers. The Unc-51-like ATG-activating kinases 1 and 2 (ULK) initiate the earliest regulated steps of autophagy and are the only protein kinases in the canonical autophagy pathway, thus making them attractive therapeutic targets for KRAS mutant tumors. We show here that genetic depletion of ULK1 or ATG13, core components of the ULK1 complex, in KRAS mutant lung and pancreatic cancer cell lines results in growth inhibition. Previously, we developed small molecule ULK1 inhibitors that not only inhibit ULK kinase activity but also induced the degradation of other core members of the ULK complex including ATG101 and ATG13. Therefore, we developed a high-throughput screening (HTS) assay in which ATG13 was HiBiT-tagged in KRAS mutant lung cancer cells to evaluate ULK inhibitors for ATG13 degradation. Using this approach, we discovered a lead ULK inhibitor, SBP-1750 , that potently inhibited ULK activity, promoted robust ATG13 degradation, impaired ATG, and induced KRAS mutant cancer cell death. Studies in a KRAS-mutant orthotopic syngeneic pancreatic cancer model show that oral treatment with SBP-1750 significantly reduced tumor growth. Pharmacokinetic analysis of SBP-1750 indicates favorable drug exposure and pharmacodynamic analysis confirms ATG13 degradation in vivo, mirroring in vitro results. Finally, immunohistochemical staining of orthotopic pancreatic tumors reveals a significant increase in CD4⁺ and CD8⁺ T cell infiltration upon treatment, suggesting that SBP-1750 enhances anti-tumor immunity. These findings support further development of SBP-1750 as a novel ATG-targeting cancer therapy.
Insights
A novel drug, SBP-1750, targets autophagy-related gene (ATG) proteins in KRAS-mutant cancers. This drug inhibits ULK1 kinase activity, degrades key ATG proteins, and reduces tumor growth, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- KRAS mutations are key drivers in lung and pancreatic cancers.
- Autophagy, initiated by ULK kinases, supports tumor growth and is a target for KRAS-mutant cancers.
- ULK1 and ATG13 are essential components of the autophagy initiation complex.
Purpose of the Study:
- To identify and evaluate ULK inhibitors targeting autophagy in KRAS-mutant cancers.
- To assess the efficacy of a novel ULK inhibitor, SBP-1750, in preclinical cancer models.
Main Methods:
- Developed a high-throughput screening assay using HiBiT-tagged ATG13 in KRAS-mutant lung cancer cells.
- Tested SBP-1750 for ULK kinase inhibition and ATG13 degradation.
- Evaluated SBP-1750's anti-tumor efficacy in an orthotopic pancreatic cancer model and analyzed immune cell infiltration.
Main Results:
- SBP-1750 potently inhibited ULK activity and induced ATG13 degradation, leading to KRAS-mutant cancer cell death.
- Oral administration of SBP-1750 significantly reduced tumor growth in a pancreatic cancer model.
- SBP-1750 treatment increased CD4+ and CD8+ T cell infiltration in tumors, enhancing anti-tumor immunity.
Conclusions:
- SBP-1750 is a promising novel therapeutic agent targeting the autophagy pathway in KRAS-mutant cancers.
- SBP-1750 demonstrates anti-tumor activity and immunomodulatory effects.
- Further development of SBP-1750 as an ATG-targeting cancer therapy is warranted.
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