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Macropinocytosis and Vascularization Determine Response to mTOR Inhibitors in Lung Squamous Cell Carcinoma
Morgan R Brady1, Nedas Matulionis2, Heather R Christofk2,3
1Division of Pulmonary and Critical Care Medicine, David Geffen School of Medicine, UCLA, Los Angeles, California.
Abstract:
The capacity of cancer cells to rewire their cellular metabolism in response to therapeutic pressure confers resistance to treatments targeting key metabolic pathways, which represents a significant challenge in personalized cancer therapy for lung tumors. In this study, we investigated the mechanisms of resistance to the small-molecule mTOR inhibitor TAK228 across lung squamous cell carcinoma (LUSC) models, including cell lines, xenografts, and patient-derived xenografts (PDX). LUSC cells adapted to mTOR inhibition by engaging macropinocytosis, a form of endocytosis that facilitates enhanced uptake of extracellular nutrients, thereby increasing amino acid availability. Coinhibition of both mTOR and macropinocytosis using small-molecule inhibitors effectively reduced tumor growth. Additionally, angiogenesis limited the efficacy of inhibition of mTOR and macropinocytosis by ensuring a sufficient nutrient supply. Notably, inhibiting angiogenesis in combination with inhibitors of mTOR and macropinocytosis reduced tumor growth in xenografts and PDXs. Moreover, prolonged treatment of LUSC PDXs with TAK228 and the glutaminase inhibitor CB-839 led to upregulation of vascularization, which coincided with a rebound in tumor growth despite continued therapeutic administration. These findings highlight adaptive resistance mechanisms to small-molecule inhibitors that target key metabolic pathways, lending insights into potential future clinical strategies for the treatment of LUSC.
Significance:
Macropinocytosis and angiogenesis are adaptive mechanisms that support nutrient uptake and availability to drive resistance to metabolic therapies, providing a promising future therapeutic strategy to overcome metabolic flexibility of lung cancer.
Insights
Lung cancer cells resist mTOR inhibitors by increasing nutrient uptake via macropinocytosis. Combining mTOR and macropinocytosis inhibitors, plus anti-angiogenesis strategies, shows promise for treating lung squamous cell carcinoma.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Cancer cells adapt metabolism to evade therapy, posing challenges for lung cancer treatment.
- Resistance to mTOR inhibitors is a key issue in lung squamous cell carcinoma (LUSC).
Purpose of the Study:
- Investigate resistance mechanisms to mTOR inhibitor TAK228 in LUSC models.
- Identify strategies to overcome therapeutic resistance in LUSC.
Main Methods:
- Utilized LUSC cell lines, xenografts, and patient-derived xenografts (PDXs).
- Examined cellular adaptation to mTOR inhibition, focusing on macropinocytosis and nutrient uptake.
- Evaluated combination therapies involving mTOR, macropinocytosis, and angiogenesis inhibitors.
Main Results:
- LUSC cells adapted to mTOR inhibition by upregulating macropinocytosis for nutrient acquisition.
- Co-inhibition of mTOR and macropinocytosis reduced tumor growth.
- Angiogenesis counteracted combined mTOR and macropinocytosis inhibition by supplying nutrients.
- Combined inhibition of mTOR, macropinocytosis, and angiogenesis decreased tumor growth in models.
- Prolonged treatment with TAK228 and CB-839 led to increased vascularization and tumor growth rebound.
Conclusions:
- Adaptive resistance to mTOR inhibitors in LUSC involves metabolic rewiring via macropinocytosis.
- Targeting both mTOR and macropinocytosis, alongside angiogenesis, offers a potential therapeutic strategy for LUSC.
- Understanding these resistance mechanisms is crucial for developing effective personalized cancer therapies.
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