Pleckstrin homology domain leucine-rich repeat protein phosphatases set the amplitude of receptor tyrosine kinase output
Author(s) -
Gloria Reyes,
Matt Niederst,
Ksenya CohenKatsenelson,
Joshua D. Stender,
Maya T. Kunkel,
Muhan Chen,
John Brognard,
Emma Sierecki,
Tianyan Gao,
Dawid G. Nowak,
Lloyd C. Trotman,
Christopher K. Glass,
Alexandra C. Newton
Publication year - 2014
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1404221111
Subject(s) - pleckstrin homology domain , protein kinase b , biology , receptor tyrosine kinase , protein tyrosine phosphatase , proto oncogene tyrosine protein kinase src , microbiology and biotechnology , tropomyosin receptor kinase c , tyrosine kinase , signal transduction , cancer research , platelet derived growth factor receptor , biochemistry , receptor , growth factor
Growth factor receptor levels are aberrantly high in diverse cancers, driving the proliferation and survival of tumor cells. Understanding the molecular basis for this aberrant elevation has profound clinical implications. Here we show that the pleckstrin homology domain leucine-rich repeat protein phosphatase (PHLPP) suppresses receptor tyrosine kinase (RTK) signaling output by a previously unidentified epigenetic mechanism unrelated to its previously described function as the hydrophobic motif phosphatase for the protein kinase AKT, protein kinase C, and S6 kinase. Specifically, we show that nuclear-localized PHLPP suppresses histone phosphorylation and acetylation, in turn suppressing the transcription of diverse growth factor receptors, including the EGF receptor. These data uncover a much broader role for PHLPP in regulation of growth factor signaling beyond its direct inactivation of AKT: By suppressing RTK levels, PHLPP dampens the downstream signaling output of two major oncogenic pathways, the PI3 kinase/AKT and the Rat sarcoma (RAS)/ERK pathways. Our data are consistent with a model in which PHLPP modifies the histone code to control the transcription of RTKs.
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