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Two distinct mTORC2-dependent pathways converge on Rac1 to drive breast cancer metastasis
Meghan Morrison Joly1, Michelle M Williams1, Donna J Hicks1
1Department of Cancer Biology, Vanderbilt University School of Medicine, 2220 Pierce Avenue, Rm 749 Preston Research Building, Nashville, TN, 37232, USA.
Background:
The importance of the mTOR complex 2 (mTORC2) signaling complex in tumor progression is becoming increasingly recognized. HER2-amplified breast cancers use Rictor/mTORC2 signaling to drive tumor formation, tumor cell survival and resistance to human epidermal growth factor receptor 2 (HER2)-targeted therapy. Cell motility, a key step in the metastatic process, can be activated by mTORC2 in luminal and triple negative breast cancer cell lines, but its role in promoting metastases from HER2-amplified breast cancers is not yet clear.
Methods:
Because Rictor is an obligate cofactor of mTORC2, we genetically engineered Rictor ablation or overexpression in mouse and human HER2-amplified breast cancer models for modulation of mTORC2 activity. Signaling through mTORC2-dependent pathways was also manipulated using pharmacological inhibitors of mTOR, Akt, and Rac. Signaling was assessed by western analysis and biochemical pull-down assays specific for Rac-GTP and for active Rac guanine nucleotide exchange factors (GEFs). Metastases were assessed from spontaneous tumors and from intravenously delivered tumor cells. Motility and invasion of cells was assessed using Matrigel-coated transwell assays.
Results:
We found that Rictor ablation potently impaired, while Rictor overexpression increased, metastasis in spontaneous and intravenously seeded models of HER2-overexpressing breast cancers. Additionally, migration and invasion of HER2-amplified human breast cancer cells was diminished in the absence of Rictor, or upon pharmacological mTOR kinase inhibition. Active Rac1 was required for Rictor-dependent invasion and motility, which rescued invasion/motility in Rictor depleted cells. Rictor/mTORC2-dependent dampening of the endogenous Rac1 inhibitor RhoGDI2, a factor that correlated directly with increased overall survival in HER2-amplified breast cancer patients, promoted Rac1 activity and tumor cell invasion/migration. The mTORC2 substrate Akt did not affect RhoGDI2 dampening, but partially increased Rac1 activity through the Rac-GEF Tiam1, thus partially rescuing cell invasion/motility. The mTORC2 effector protein kinase C (PKC)α did rescue Rictor-mediated RhoGDI2 downregulation, partially rescuing Rac-guanosine triphosphate (GTP) and migration/motility.
Conclusion:
These findings suggest that mTORC2 uses two coordinated pathways to activate cell invasion/motility, both of which converge on Rac1. Akt signaling activates Rac1 through the Rac-GEF Tiam1, while PKC signaling dampens expression of the endogenous Rac1 inhibitor, RhoGDI2.
Insights
The mTOR complex 2 (mTORC2) pathway, regulated by Rictor, drives metastasis in HER2-amplified breast cancers. Inhibiting mTORC2 or its downstream effectors, Akt and PKCα, reduces cancer cell invasion and motility.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- The mTOR complex 2 (mTORC2) signaling pathway is increasingly recognized for its role in tumor progression.
- HER2-amplified breast cancers rely on Rictor/mTORC2 signaling for tumor growth, survival, and resistance to HER2-targeted therapies.
- While mTORC2 influences cell motility in other breast cancer subtypes, its role in HER2-amplified breast cancer metastasis remains unclear.
Purpose of the Study:
- To investigate the role of Rictor/mTORC2 signaling in the metastasis of HER2-amplified breast cancers.
- To elucidate the molecular mechanisms by which mTORC2 regulates cancer cell motility and invasion in this specific breast cancer subtype.
Main Methods:
- Genetically engineered mouse and human HER2-amplified breast cancer models with Rictor ablation or overexpression to modulate mTORC2 activity.
- Pharmacological inhibition of mTOR, Akt, and Rac pathways to assess signaling.
- Western analysis, Rac-GTP pull-down assays, and Rac GEF activity assays to evaluate signaling.
- Assessment of spontaneous and experimentally induced metastases, as well as cell motility and invasion using transwell assays.
Main Results:
- Rictor ablation significantly impaired metastasis, while Rictor overexpression enhanced it in HER2-amplified breast cancer models.
- HER2-amplified breast cancer cell migration and invasion were reduced by Rictor deficiency or mTOR kinase inhibition.
- Active Rac1 was essential for Rictor-dependent invasion and motility, with RhoGDI2 (a Rac1 inhibitor) downregulation by Rictor/mTORC2 promoting Rac1 activity.
- Akt partially increased Rac1 activity via Tiam1, and PKCα rescued Rictor-mediated RhoGDI2 downregulation, both contributing to cell invasion.
Conclusions:
- mTORC2 activates cell invasion and motility through two coordinated pathways converging on Rac1.
- The Akt pathway activates Rac1 through the Rac-GEF Tiam1.
- The PKC pathway dampens RhoGDI2, an endogenous Rac1 inhibitor, thereby promoting Rac1 activity and cancer cell invasion.
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