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.

Cancer Research
|January 24, 2018
PubMed

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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