Kinase Suppressor of Ras 1 (KSR1) Regulates PGC1 alpha and Estrogen-Related Receptor alpha To Promote Oncogenic Ras-Dependent Anchorage-Independent Growth
MOLECULAR AND CELLULAR BIOLOGY
Authors: Fisher, Kurt W.; Das, Binita; Kortum, Robert L.; Chaika, Oleg V.; Lewis, Robert E.
Abstract
Kinase suppressor of ras 1 (KSR1) is a molecular scaffold of the Raf/MEK/extracellular signal-regulated kinase (ERK) cascade that enhances oncogenic Ras signaling. Here we show KSR1-dependent, but ERK-independent, regulation of metabolic capacity is mediated through the expression of peroxisome proliferator-activated receptor gamma coactivator 1 alpha (PGC1 alpha) and estrogen-related receptor alpha (ERR alpha). This KSR1-regulated pathway is essential for the transformation of cells by oncogenic Ras. In mouse embryo fibroblasts (MEFs) expressing H-Ras(V12), ectopic PGC1 alpha was sufficient to rescue ERR alpha expression, metabolic capacity, and anchorage-independent growth in the absence of KSR1. The ability of PGC1 alpha to promote anchorage-independent growth required interaction with ERR alpha, and treatment with an inhibitor of ERR alpha impeded anchorage-independent growth. In contrast to PGC1 alpha, the expression of constitutively active ERR alpha (CA-ERR alpha) was sufficient to enhance metabolic capacity but not anchorage-independent growth in the absence of KSR1. These data reveal KSR1-dependent control of PGC1 alpha- and ERR alpha-dependent pathways that are necessary and sufficient for signaling by oncogenic H-Ras(V12) to regulate metabolism and anchorage-independent growth, providing novel targets for therapeutic intervention.
Phospho-proteomic analyses of B-Raf protein complexes reveal new regulatory principles
ONCOTARGET
Authors: Eisenhardt, Anja E.; Sprenger, Adrian; Roering, Michael; Herr, Ricarda; Weinberg, Florian; Koehler, Martin; Braun, Sandra; Orth, Joachim; Diedrich, Britta; Lanner, Ulrike; Tscherwinski, Natalja; Schuster, Simon; Dumaz, Nicolas; Schmidt, Enrico; Baumeister, Ralf; Schlosser, Andreas; Dengjel, Joern; Brummer, Tilman
Abstract
B-Raf represents a critical physiological regulator of the Ras/RAF/MEK/ERK-pathway and a pharmacological target of growing clinical relevance, in particular in oncology. To understand how B-Raf itself is regulated, we combined mass spectrometry with genetic approaches to map its interactome in MCF-10A cells as well as in B-Raf deficient murine embryonic fibroblasts (MEFs) and B-Raf/Raf-1 double deficient DT40 lymphoma cells complemented with wildtype or mutant B-Raf expression vectors. Using a multi-protease digestion approach, we identified a novel ubiquitination site and provide a detailed B-Raf phospho-map. Importantly, we identify two evolutionary conserved phosphorylation clusters around T401 and S419 in the B-Raf hinge region. SILAC labelling and genetic/biochemical follow-up revealed that these clusters are phosphorylated in the contexts of oncogenic Ras, sorafenib induced Raf dimerization and in the background of the V600E mutation. We further show that the vemurafenib sensitive phosphorylation of the T401 cluster occurs in trans within a Raf dimer. Substitution of the Ser/Thr-residues of this cluster by alanine residues enhances the transforming potential of B-Raf, indicating that these phosphorylation sites suppress its signaling output. Moreover, several B-Raf phosphorylation sites, including T401 and S419, are somatically mutated in tumors, further illustrating the importance of phosphorylation for the regulation of this kinase.