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Published on: November 5, 2021
Selective mTORC2 Inhibitor Therapeutically Blocks Breast Cancer Cell Growth and Survival
Thomas A Werfel1,2, Shan Wang3, Meredith A Jackson1
1Department of Biomedical Engineering, Vanderbilt University, Nashville, Tennessee.
Abstract:
Small-molecule inhibitors of the mTORC2 kinase (torkinibs) have shown efficacy in early clinical trials. However, the torkinibs under study also inhibit the other mTOR-containing complex mTORC1. While mTORC1/mTORC2 combined inhibition may be beneficial in cancer cells, recent reports describe compensatory cell survival upon mTORC1 inhibition due to loss of negative feedback on PI3K, increased autophagy, and increased macropinocytosis. Genetic models suggest that selective mTORC2 inhibition would be effective in breast cancers, but the lack of selective small-molecule inhibitors of mTORC2 have precluded testing of this hypothesis to date. Here we report the engineering of a nanoparticle-based RNAi therapeutic that can effectively silence the mTORC2 obligate cofactor Rictor. Nanoparticle-based Rictor ablation in HER2-amplified breast tumors was achieved following intratumoral and intravenous delivery, decreasing Akt phosphorylation and increasing tumor cell killing. Selective mTORC2 inhibition in vivo, combined with the HER2 inhibitor lapatinib, decreased the growth of HER2-amplified breast cancers to a greater extent than either agent alone, suggesting that mTORC2 promotes lapatinib resistance, but is overcome by mTORC2 inhibition. Importantly, selective mTORC2 inhibition was effective in a triple-negative breast cancer (TNBC) model, decreasing Akt phosphorylation and tumor growth, consistent with our findings that RICTOR mRNA correlates with worse outcome in patients with basal-like TNBC. Together, our results offer preclinical validation of a novel RNAi delivery platform for therapeutic gene ablation in breast cancer, and they show that mTORC2-selective targeting is feasible and efficacious in this disease setting.Significance: This study describes a nanomedicine to effectively inhibit the growth regulatory kinase mTORC2 in a preclinical model of breast cancer, targeting an important pathogenic enzyme in that setting that has been undruggable to date. Cancer Res; 78(7); 1845-58. ©2018 AACR.
Insights
Researchers developed a nanoparticle therapy to selectively inhibit mTORC2, a key kinase in breast cancer. This approach showed efficacy in preclinical models, offering a new therapeutic strategy for difficult-to-treat breast cancers.
Area of Science:
- Oncology
- Molecular Biology
- Nanomedicine
Background:
- Small-molecule inhibitors of mTORC2 (torkinibs) also inhibit mTORC1, leading to compensatory cell survival mechanisms.
- Genetic models suggest selective mTORC2 inhibition could be effective in breast cancers, but selective inhibitors are lacking.
- mTORC2 is implicated in breast cancer growth and resistance to HER2-targeted therapies.
Purpose of the Study:
- To engineer a nanoparticle-based RNAi therapeutic for selective silencing of Rictor, an mTORC2 cofactor.
- To evaluate the efficacy of selective mTORC2 inhibition in HER2-amplified and triple-negative breast cancer (TNBC) models.
- To assess the combination of selective mTORC2 inhibition with lapatinib in HER2-amplified breast cancer.
Main Methods:
- Development of a nanoparticle-based RNAi therapeutic to ablate Rictor.
- Intratumoral and intravenous administration of the Rictor-targeting nanoparticles in breast cancer models.
- Assessment of Akt phosphorylation, tumor cell killing, and tumor growth inhibition.
- Combination therapy with the HER2 inhibitor lapatinib.
Main Results:
- Nanoparticle-mediated Rictor ablation effectively inhibited mTORC2 signaling, decreasing Akt phosphorylation and increasing tumor cell killing in HER2-amplified breast tumors.
- Selective mTORC2 inhibition combined with lapatinib demonstrated superior efficacy in reducing tumor growth compared to either agent alone.
- Selective mTORC2 inhibition showed efficacy in a triple-negative breast cancer model, with Rictor mRNA levels correlating with worse outcomes in basal-like TNBC patients.
Conclusions:
- Selective mTORC2 inhibition via nanoparticle-based RNAi is a feasible and efficacious therapeutic strategy for breast cancer.
- mTORC2 plays a role in promoting resistance to HER2-targeted therapies like lapatinib.
- This nanomedicine approach targets an previously undruggable kinase, offering a novel therapeutic avenue for breast cancer treatment.
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