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Delineating the mTOR kinase pathway using a dual TORC1/2 inhibitor, AZD8055, in multiple myeloma
Diana Cirstea1, Loredana Santo2, Teru Hideshima3
1MGH Cancer Center, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts. LeBow Institute for Myeloma Therapeutics and Jerome Lipper Center for Multiple Myeloma Research, Harvard Medical School, Dana-Farber Cancer Institute, Boston, Massachusetts.
Abstract:
Despite promising preclinical results with mTOR kinase inhibitors in multiple myeloma, resistance to these drugs may arise via feedback activation loops. This concern is especially true for insulin-like growth factor 1 receptor (IGF1R), because IGF1R signaling is downregulated by multiple AKT and mTOR feedback mechanisms. We have tested this hypothesis in multiple myeloma using the novel selective mTOR kinase inhibitor AZD8055. We evaluated p-mTOR S(2481) as the readout for mTORC2/Akt activity in multiple myeloma cells in the context of mTOR inhibition via AZD8055 or rapamycin. We next validated AZD8055 inhibition of mTORC1 and mTORC2 functions in multiple myeloma cells alone or in culture with bone marrow stroma cells and growth factors. Unlike rapamycin, AZD8055 resulted in apoptosis of multiple myeloma cells. AZD8055 treatment, however, induced upregulation of IGF1R phosphorylation in p-Akt S(473)-expressing multiple myeloma cell lines. Furthermore, exposure of AZD8055-treated cells to IGF1 induced p-Akt S(473) and rescued multiple myeloma cells from apoptosis despite mTOR kinase inhibition and TORC2/Akt blockage. The addition of blocking IGF1R antibody resulted in reversing this effect and increased AZD8055-induced apoptosis. Our study suggests that combination treatment with AZD8055 and IGF1R-blocking agents is a promising strategy in multiple myeloma with potential IGF1R/Akt signaling-mediated survival.
Insights
The mTOR inhibitor AZD8055 shows promise in multiple myeloma by inducing apoptosis. However, feedback loops involving insulin-like growth factor 1 receptor (IGF1R) can cause resistance, suggesting combination therapy is a viable strategy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- mTOR kinase inhibitors show preclinical promise in multiple myeloma.
- Resistance to mTOR inhibitors can occur through feedback activation loops, particularly involving IGF1R.
- IGF1R signaling is normally downregulated by AKT and mTOR feedback mechanisms.
Purpose of the Study:
- To investigate the efficacy of the novel selective mTOR kinase inhibitor AZD8055 in multiple myeloma.
- To evaluate the role of IGF1R feedback activation in resistance to mTOR inhibition.
- To explore combination therapy strategies for multiple myeloma.
Main Methods:
- Utilized AZD8055, a selective mTOR kinase inhibitor, in multiple myeloma cell lines.
- Assessed mTORC1 and mTORC2 activity using p-mTOR S(2481) as a readout.
- Investigated the effects of AZD8055 treatment alone and in combination with IGF1 or IGF1R-blocking antibodies.
Main Results:
- AZD8055 induced apoptosis in multiple myeloma cells, unlike rapamycin.
- AZD8055 treatment led to increased IGF1R phosphorylation in p-Akt S(473)-expressing cells.
- IGF1 exposure rescued cells from apoptosis, while IGF1R blockade enhanced AZD8055-induced apoptosis.
Conclusions:
- AZD8055 is effective in inducing apoptosis in multiple myeloma.
- IGF1R signaling activation represents a resistance mechanism to mTOR inhibition.
- Combination therapy with AZD8055 and IGF1R-blocking agents is a promising strategy for multiple myeloma treatment.
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