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Published on: September 8, 2017
mTOR inhibition attenuates chemosensitivity through the induction of chemotherapy resistant persisters
Yuanhui Liu1,2, Nancy G Azizian1,2, Delaney K Sullivan3
1Center for Immunotherapy Research, Houston Methodist Research Institute, Houston, TX, 77030, USA.
Abstract:
Chemotherapy can eradicate a majority of cancer cells. However, a small population of tumor cells often survives drug treatments through genetic and/or non-genetic mechanisms, leading to tumor recurrence. Here we report a reversible chemoresistance phenotype regulated by the mTOR pathway. Through a genome-wide CRISPR knockout library screen in pancreatic cancer cells treated with chemotherapeutic agents, we have identified the mTOR pathway as a prominent determinant of chemosensitivity. Pharmacological suppression of mTOR activity in cancer cells from diverse tissue origins leads to the persistence of a reversibly resistant population, which is otherwise eliminated by chemotherapeutic agents. Conversely, activation of the mTOR pathway increases chemosensitivity in vitro and in vivo and predicts better survival among various human cancers. Persister cells display a senescence phenotype. Inhibition of mTOR does not induce cellular senescence per se, but rather promotes the survival of senescent cells through regulation of autophagy and G2/M cell cycle arrest, as revealed by a small-molecule chemical library screen. Thus, mTOR plays a causal yet paradoxical role in regulating chemotherapeutic response; inhibition of the mTOR pathway, while suppressing tumor expansion, facilitates the development of a reversible drug-tolerant senescence state.
Insights
The mechanistic target of rapamycin (mTOR) pathway regulates reversible chemoresistance. Inhibiting mTOR promotes drug-tolerant senescent cells, paradoxically aiding tumor recurrence despite initial tumor suppression.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Chemotherapy eliminates most cancer cells, but a resistant subpopulation causes tumor recurrence.
- Understanding mechanisms of chemoresistance is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To identify key regulators of reversible chemoresistance.
- To investigate the role of the mTOR pathway in chemotherapy response.
Main Methods:
- Genome-wide CRISPR knockout library screen in pancreatic cancer cells treated with chemotherapeutic agents.
- Pharmacological inhibition and activation of the mTOR pathway.
- Small-molecule chemical library screen to identify mechanisms of persister cell survival.
Main Results:
- The mTOR pathway was identified as a critical determinant of chemosensitivity.
- mTOR pathway suppression promoted a reversible chemoresistant, senescent persister cell population.
- mTOR pathway activation enhanced chemosensitivity and predicted better survival in human cancers.
Conclusions:
- The mTOR pathway plays a paradoxical role in chemotherapy response.
- mTOR inhibition can lead to a drug-tolerant senescent state, potentially promoting tumor recurrence.
- Targeting mTOR requires careful consideration of its dual role in cancer therapy.
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