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mTOR Kinase Inhibition Causes Feedback-Dependent Biphasic Regulation of AKT Signaling
Author(s) -
Vanessa Rodrik-Outmezguine,
Sarat Chandarlapaty,
Nen C. Pagano,
Poulikos I. Poulikakos,
Maurizio Scaltriti,
Elizabeth Moskatel,
José Baselga,
Sylvie M. Guichard,
Neal Rosen
Publication year - 2011
Publication title -
cancer discovery
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.795
H-Index - 163
eISSN - 2159-8290
pISSN - 2159-8274
DOI - 10.1158/2159-8290.cd-11-0085
Subject(s) - mtorc2 , protein kinase b , mtorc1 , pi3k/akt/mtor pathway , phosphorylation , microbiology and biotechnology , signal transduction , cancer research , kinase , biology , chemistry
mTOR kinase inhibitors block mTORC1 and mTORC2 and thus do not cause the mTORC2 activation of AKT observed with rapamycin. We now show, however, that these drugs have a biphasic effect on AKT. Inhibition of mTORC2 leads to AKT serine 473 (S473) dephosphorylation and a rapid but transient inhibition of AKT T308 phosphorylation and AKT signaling. However, inhibition of mTOR kinase also relieves feedback inhibition of receptor tyrosine kinases (RTK), leading to subsequent phosphoinositide 3-kinase activation and rephosphorylation of AKT T308 sufficient to reactivate AKT activity and signaling. Thus, catalytic inhibition of mTOR kinase leads to a new steady state characterized by profound suppression of mTORC1 and accumulation of activated AKT phosphorylated on T308, but not S473. Combined inhibition of mTOR kinase and the induced RTKs fully abolishes AKT signaling and results in substantial cell death and tumor regression in vivo. These findings reveal the adaptive capabilities of oncogenic signaling networks and the limitations of monotherapy for inhibiting feedback-regulated pathways.

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