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Published on: May 14, 2016
Sustained Oncogenic Signaling in the Cytostatic State Enables Targeting of Nonproliferating Persistent Cancer Cells
Abstract:
Many advanced therapeutics possess cytostatic properties that suppress cancer cell growth without directly inducing death. Treatment-induced cytostatic cancer cells can persist and constitute a reservoir from which recurrent growth and resistant clones can develop. Current management approaches primarily comprise maintenance and monitoring because strategies for targeting nonproliferating cancer cells have been elusive. Here, we used targeted therapy paradigms and engineered cytostatic states to explore therapeutic opportunities for depleting treatment-mediated cytostatic cancer cells. Sustained oncogenic AKT signaling was common, while nonessential, in treatment-mediated cytostatic cancer cells harboring PI3K-pathway mutations, which are associated with cancer recurrence. Engineering oncogenic signals in quiescent mammary organotypic models showed that sustained, aberrant activation of AKT sensitized cytostatic epithelial cells to proteasome inhibition. Mechanistically, sustained AKT signaling altered cytostatic state homeostasis and promoted an oxidative and proteotoxic environment, which imposed an increased proteasome dependency for maintaining cell viability. Under cytostatic conditions, inhibition of the proteasome selectively induced apoptosis in the population with aberrant AKT activation compared with normal cells. Therapeutically exploiting this AKT-driven proteasome vulnerability was effective in depleting treatment-mediated cytostatic cancer cells independent of breast cancer subtype, epithelial origin, and cytostatic agent. Moreover, transient targeting during cytostatic treatment conditions was sufficient to reduce recurrent tumor growth in spheroid and mouse models. This work identified an AKT-driven proteasome-vulnerability that enables depletion of persistent cytostatic cancer cells harboring PTEN-PI3K pathway mutations, revealing a viable strategy for targeting nonproliferating persistent cancer cell populations before drug resistance emerges.
Significance:
This study finds that sustained oncogenic signaling in therapy-induced cytostatic cancer cells confers targetable vulnerabilities to deplete persistent cancer cell populations and reduce cancer recurrence.
Insights
Persistent cancer cells can regrow and become resistant. This study reveals that targeting sustained oncogenic AKT signaling in these cells with proteasome inhibitors can effectively deplete them, reducing cancer recurrence.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Advanced cancer therapeutics often induce cytostatic effects, halting cell growth but not causing death.
- Persistent cytostatic cancer cells can lead to tumor recurrence and drug resistance.
- Targeting non-proliferating cancer cells remains a significant challenge in cancer management.
Purpose of the Study:
- To explore therapeutic strategies for depleting treatment-induced cytostatic cancer cells.
- To identify vulnerabilities in persistent cancer cells with sustained oncogenic signaling.
- To develop methods to prevent cancer recurrence by targeting quiescent cancer cells.
Main Methods:
- Utilized targeted therapy paradigms and engineered cytostatic states in mammary organotypic models.
- Investigated the role of sustained oncogenic AKT signaling in treatment-mediated cytostatic cancer cells with PI3K-pathway mutations.
- Assessed the efficacy of proteasome inhibition in sensitizing cytostatic cells to apoptosis.
Main Results:
- Sustained, aberrant AKT signaling in cytostatic cancer cells created an oxidative and proteotoxic environment, increasing proteasome dependency.
- Proteasome inhibition selectively induced apoptosis in cytostatic cancer cells with aberrant AKT activation.
- Targeting this AKT-driven proteasome vulnerability effectively depleted persistent cancer cells across various subtypes and cytostatic agents.
- Transient targeting during cytostatic treatment reduced recurrent tumor growth in spheroid and mouse models.
Conclusions:
- Identified a novel AKT-driven proteasome vulnerability in persistent cytostatic cancer cells harboring PTEN-PI3K pathway mutations.
- Demonstrated that targeting this vulnerability can deplete non-proliferating cancer cell populations before resistance emerges.
- Provides a viable therapeutic strategy to combat cancer recurrence by targeting persistent cytostatic cancer cells.
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