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Posttranslational Modifications of RAS Proteins
Ahearn, Ian; Zhou, Mo; Philips, Mark R
The three human RAS genes encode four proteins that play central roles in oncogenesis by acting as binary molecular switches that regulate signaling pathways for growth and differentiation. Each is subject to a set of posttranslational modifications (PTMs) that modify their activity or are required for membrane targeting. The enzymes that catalyze the various PTMs are potential targets for anti-RAS drug discovery. The PTMs of RAS proteins are the focus of this review.
PMCID:6035883
PMID: 29311131
ISSN: 2157-1422
CID: 2906532
Targeting RAS - will GPR31 deliver us a new path forward?
Fehrenbacher, Nicole; Philips, Mark R
Effective anti-rat sarcoma viral oncogene (RAS) therapies have remained the holy grail of cancer treatment. Mutant Kirsten rat sarcoma viral oncogene homolog (KRAS) sustains tumorigenesis when linked to the plasma membrane (PM). The G protein-coupled receptor 31 (GPR31) is now identified to mediate KRAS membrane association and is crucial for proliferation, survival and macropinocytosis of KRAS-dependent cancer cells, suggesting that GPR31 is a druggable target for anti-RAS therapy.
PMCID:5706936
PMID: 29209647
ISSN: 2372-3556
CID: 2838312
Regulation of NOTCH signaling by RAB7 and RAB8 requires carboxyl methylation by ICMT
Court, Helen; Ahearn, Ian M; Amoyel, Marc; Bach, Erika A; Philips, Mark R
Isoprenylcysteine carboxyl methyltransferase (ICMT) methylesterifies C-terminal prenylcysteine residues of CaaX proteins and some RAB GTPases. Deficiency of either ICMT or NOTCH1 accelerates pancreatic neoplasia in Pdx1-Cre;LSL-KrasG12D mice, suggesting that ICMT is required for NOTCH signaling. We used Drosophila melanogaster wing vein and scutellar bristle development to screen Rab proteins predicted to be substrates for ICMT (ste14 in flies). We identified Rab7 and Rab8 as ICMT substrates that when silenced phenocopy ste14 deficiency. ICMT, RAB7, and RAB8 were all required for efficient NOTCH1 signaling in mammalian cells. Overexpression of RAB8 rescued NOTCH activation after ICMT knockdown both in U2OS cells expressing NOTCH1 and in fly wing vein development. ICMT deficiency induced mislocalization of GFP-RAB7 and GFP-RAB8 from endomembrane to cytosol, enhanced binding to RABGDI, and decreased GTP loading of RAB7 and RAB8. Deficiency of ICMT, RAB7, or RAB8 led to mislocalization and diminished processing of NOTCH1-GFP. Thus, NOTCH signaling requires ICMT in part because it requires methylated RAB7 and RAB8.
PMCID:5716267
PMID: 29051265
ISSN: 1540-8140
CID: 2743032
Evaluation of the selectivity and sensitivity of isoform- and mutation-specific RAS antibodies
Waters, Andrew M; Ozkan-Dagliyan, Irem; Vaseva, Angelina V; Fer, Nicole; Strathern, Leslie A; Hobbs, G Aaron; Tessier-Cloutier, Basile; Gillette, William K; Bagni, Rachel; Whiteley, Gordon R; Hartley, James L; McCormick, Frank; Cox, Adrienne D; Houghton, Peter J; Huntsman, David G; Philips, Mark R; Der, Channing J
There is intense interest in developing therapeutic strategies for RAS proteins, the most frequently mutated oncoprotein family in cancer. Development of effective anti-RAS therapies will be aided by the greater appreciation of RAS isoform-specific differences in signaling events that support neoplastic cell growth. However, critical issues that require resolution to facilitate the success of these efforts remain. In particular, the use of well-validated anti-RAS antibodies is essential for accurate interpretation of experimental data. We evaluated 22 commercially available anti-RAS antibodies with a set of distinct reagents and cell lines for their specificity and selectivity in recognizing the intended RAS isoforms and mutants. Reliability varied substantially. For example, we found that some pan- or isoform-selective anti-RAS antibodies did not adequately recognize their intended target or showed greater selectivity for another; some were valid for detecting G12D and G12V mutant RAS proteins in Western blotting, but none were valid for immunofluorescence or immunohistochemical analyses; and some antibodies recognized nonspecific bands in lysates from "Rasless" cells expressing the oncoprotein BRAFV600E Using our validated antibodies, we identified RAS isoform-specific siRNAs and shRNAs. Our results may help to ensure the accurate interpretation of future RAS studies.
PMCID:5812265
PMID: 28951536
ISSN: 1937-9145
CID: 2717622
Nitrogen Cavitation and Differential Centrifugation Allows for Monitoring the Distribution of Peripheral Membrane Proteins in Cultured Cells
Zhou, Mo; Philips, Mark R
Cultured cells are useful for studying the subcellular distribution of proteins, including peripheral membrane proteins. Genetically encoded fluorescently tagged proteins have revolutionized the study of subcellular protein distribution. However, it is difficult to quantify the distribution with fluorescent microscopy, especially when proteins are partially cytosolic. Moreover, it is often important to study endogenous proteins. Biochemical assays such as immunoblots remain the gold standard for quantification of protein distribution after subcellular fractionation. Although there are commercial kits that aim to isolate cytosolic or certain membrane fractions, most of these kits are based on extraction with detergents, which may be unsuitable for studying peripheral membrane proteins that are easily extracted from membranes. Here we present a detergent-free protocol for cellular homogenization by nitrogen cavitation and subsequent separation of cytosolic and membrane-bound proteins by ultracentrifugation. We confirm the separation of subcellular organelles in soluble and pellet fractions across different cell types, and compare protein extraction among several common non-detergent-based mechanical homogenization methods. Among several advantages of nitrogen cavitation is the superior efficiency of cellular disruption with minimal physical and chemical damage to delicate organelles. Combined with ultracentrifugation, nitrogen cavitation is an excellent method to examine the shift of peripheral membrane proteins between cytosolic and membrane fractions.
PMID: 28872138
ISSN: 1940-087x
CID: 2687722
TRPM8 Inhibits Endothelial Cell Migration Via A Non-Channel Function By Trapping Small Gtpase, Rap1 [Meeting Abstract]
Pla, AFiorio; Genova, T; Grolez, G; Camillo, C; Bernardini, M; Bokhobza, A; Richard, E; Scianna, M; Lemonnier, L; Valdembri, D; Munaron, L; Philips, MR; Mattot, V; Serini, G; Prevarskaya, N; Gkika, D
ISI:000402740200036
ISSN: 1423-0135
CID: 2611632
The G protein-coupled receptor GPR31 promotes membrane association of KRAS
Fehrenbacher, Nicole; Tojal da Silva, Israel; Ramirez, Craig; Zhou, Yong; Cho, Kwang-Jin; Kuchay, Shafi; Shi, Jie; Thomas, Susan; Pagano, Michele; Hancock, John F; Bar-Sagi, Dafna; Philips, Mark R
The product of the KRAS oncogene, KRAS4B, promotes tumor growth when associated with the plasma membrane (PM). PM association is mediated, in part, by farnesylation of KRAS4B, but trafficking of nascent KRAS4B to the PM is incompletely understood. We performed a genome-wide screen to identify genes required for KRAS4B membrane association and identified a G protein-coupled receptor, GPR31. GPR31 associated with KRAS4B on cellular membranes in a farnesylation-dependent fashion, and retention of GPR31 on the endoplasmic reticulum inhibited delivery of KRAS4B to the PM. Silencing of GPR31 expression partially mislocalized KRAS4B, slowed the growth of KRAS-dependent tumor cells, and blocked KRAS-stimulated macropinocytosis. Our data suggest that GPR31 acts as a secretory pathway chaperone for KRAS4B.
PMCID:5551702
PMID: 28619714
ISSN: 1540-8140
CID: 2594322
TRPM8 inhibits endothelial cell migration via a non-channel function by trapping the small GTPase Rap1
Genova, Tullio; Grolez, Guillaume P; Camillo, Chiara; Bernardini, Michela; Bokhobza, Alexandre; Richard, Elodie; Scianna, Marco; Lemonnier, Loic; Valdembri, Donatella; Munaron, Luca; Philips, Mark R; Mattot, Virginie; Serini, Guido; Prevarskaya, Natalia; Gkika, Dimitra; Pla, Alessandra Fiorio
Endothelial cell adhesion and migration are critical steps of the angiogenic process, whose dysfunction is associated with tumor growth and metastasis. The TRPM8 channel has recently been proposed to play a protective role in prostate cancer by impairing cell motility. However, the mechanisms by which it could influence vascular behavior are unknown. Here, we reveal a novel non-channel function for TRPM8 that unexpectedly acts as a Rap1 GTPase inhibitor, thereby inhibiting endothelial cell motility, independently of pore function. TRPM8 retains Rap1 intracellularly through direct protein-protein interaction, thus preventing its cytoplasm-plasma membrane trafficking. In turn, this mechanism impairs the activation of a major inside-out signaling pathway that triggers the conformational activation of integrin and, consequently, cell adhesion, migration, in vitro endothelial tube formation, and spheroid sprouting. Our results bring to light a novel, pore-independent molecular mechanism by which endogenous TRPM8 expression inhibits Rap1 GTPase and thus plays a critical role in the behavior of vascular endothelial cells by inhibiting migration.
PMCID:5496606
PMID: 28550110
ISSN: 1540-8140
CID: 2574532
ERK1/2-induced phosphorylation of R-Ras GTPases stimulates their oncogenic potential
Fremin, C; Guegan, J-P; Plutoni, C; Mahaffey, J; Philips, M R; Emery, G; Meloche, S
The Ras-related (R-Ras) isoforms TC21, R-Ras and M-Ras are members of the Ras superfamily of small GTPases. R-Ras family proteins are frequently overexpressed in human cancers, and expression of activated mutants of these GTPases is sufficient to induce cell transformation. Unlike Ras, few activating mutations of R-Ras proteins have been reported in human cancer, and very little is known about the regulation of their activity. In this study, we report that TC21 and R-Ras are phosphorylated on a conserved serine, Ser186 and Ser201, respectively, in intact cells. This residue is located in the C-terminal hypervariable region of the proteins and is not conserved in M-Ras. We show that the MAP kinases ERK1/2 phosphorylate TC21 and R-Ras on this C-terminal serine residue both in vitro and in vivo. Phosphorylation of R-Ras proteins does not affect their subcellular localization or stability but rather stimulates their activation. Phosphorylation-defective mutants of R-Ras and TC21 are compromised in their ability to promote cancer cell adhesion and migration/invasion, respectively. Importantly, we show that phosphorylation of TC21 and R-Ras potentiates their tumorigenic activity in immunodeficient mice. Our results identify a novel regulatory mechanism of the small GTPases TC21 and R-Ras that controls their oncogenic potential.
PMID: 27086924
ISSN: 1476-5594
CID: 2317622
VPS35 binds farnesylated N-Ras in the cytosol to regulate N-Ras trafficking
Zhou, Mo; Wiener, Heidi; Su, Wenjuan; Zhou, Yong; Liot, Caroline; Ahearn, Ian; Hancock, John F; Philips, Mark R
Ras guanosine triphosphatases (GTPases) regulate signaling pathways only when associated with cellular membranes through their C-terminal prenylated regions. Ras proteins move between membrane compartments in part via diffusion-limited, fluid phase transfer through the cytosol, suggesting that chaperones sequester the polyisoprene lipid from the aqueous environment. In this study, we analyze the nature of the pool of endogenous Ras proteins found in the cytosol. The majority of the pool consists of farnesylated, but not palmitoylated, N-Ras that is associated with a high molecular weight (HMW) complex. Affinity purification and mass spectrographic identification revealed that among the proteins found in the HMW fraction is VPS35, a latent cytosolic component of the retromer coat. VPS35 bound to N-Ras in a farnesyl-dependent, but neither palmitoyl- nor guanosine triphosphate (GTP)-dependent, fashion. Silencing VPS35 increased N-Ras's association with cytoplasmic vesicles, diminished GTP loading of Ras, and inhibited mitogen-activated protein kinase signaling and growth of N-Ras-dependent melanoma cells.
PMCID:4987297
PMID: 27502489
ISSN: 1540-8140
CID: 2213572