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Published on: May 1, 2020
Rapamycin induces transactivation of the EGFR and increases cell survival
D Chaturvedi1, X Gao, M S Cohen
1Department of Pharmacology and Experimental Therapeutics, Stritch School of Medicine, Loyola University Medical Center, Maywood, IL 60153, USA. dchaturvedi@lumc.edu
Abstract:
The mammalian target of rapamycin (mTOR) signaling network regulates cell growth, proliferation and cell survival. Deregulated activation of this pathway is a common event in diverse human diseases such as cancers, cardiac hypertrophy, vascular restenosis and nephrotic hypertrophy. Although mTOR inhibitor, rapamycin, has been widely used to inhibit the aberrant signaling due to mTOR activation that plays a major role in hyperproliferative diseases, in some cases rapamycin does not attenuate the cell proliferation and survival. Thus, we studied the mechanism(s) by which cells may confer resistance to rapamycin. Our data show that in a variety of cell types the mTOR inhibitor rapamycin activates extracellularly regulated kinases (Erk1/2) signaling. Rapamycin-mediated activation of the Erk1/2 signaling requires (a) the epidermal growth factor receptor (EGFR), (b) its tyrosine kinase activity and (c) intact autophosphorylation sites on the receptor. Rapamycin treatment increases tyrosine phosphorylation of EGFR without the addition of growth factor and this transactivation of receptor involves activation of c-Src. We also show that rapamycin treatment triggers activation of cell survival signaling pathway by activating the prosurvival kinases Erk1/2 and p90RSK. These studies provide a novel paradigm by which cells escape the apoptotic actions of rapamycin and its derivatives that inhibit the mTOR pathway.
Insights
Rapamycin, an mTOR inhibitor, can paradoxically activate pro-survival Erk1/2 signaling via EGFR, leading to cancer cell resistance. Understanding this mechanism is key to overcoming rapamycin resistance in hyperproliferative diseases.
Area of Science:
- Cellular signaling pathways
- Molecular mechanisms of disease
- Cancer biology
Background:
- The mammalian target of rapamycin (mTOR) pathway controls cell growth and survival.
- Aberrant mTOR activation drives diseases like cancer and hypertrophy.
- Rapamycin inhibits mTOR but sometimes fails to prevent cell proliferation.
Purpose of the Study:
- Investigate mechanisms of rapamycin resistance.
- Elucidate how cells evade rapamycin's apoptotic effects.
- Identify signaling pathways activated by rapamycin treatment.
Main Methods:
- Studied rapamycin's effect on various cell types.
- Analyzed extracellularly regulated kinases (Erk1/2) signaling activation.
- Investigated the role of epidermal growth factor receptor (EGFR) and c-Src in rapamycin response.
Main Results:
- Rapamycin activates Erk1/2 signaling in multiple cell types.
- EGFR, its kinase activity, and autophosphorylation sites are essential for rapamycin-mediated Erk1/2 activation.
- Rapamycin treatment transactivates EGFR via c-Src, promoting cell survival signaling through Erk1/2 and p90RSK.
Conclusions:
- Cells can develop resistance to rapamycin by activating pro-survival Erk1/2 signaling.
- EGFR transactivation is a critical mechanism for rapamycin resistance.
- This study reveals a novel paradigm for cellular escape from mTOR inhibition.
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