Other names published for RAS2: CTN5, CYR3, GLC5, TSL7, YNL098C
RAS2 LITERATURE TOPICS
- Curated Literature
- Genetics/Cell Biology
- Nucleic Acid Information
- Gene Product Information
- Related Genes/Proteins
- Research Aids
- Genome-wide Analysis
- Proteome-wide Analysis
- Other Topics
- Additional Information
RAS2 - Protein-protein Interactions (23)
| Reference | Other Genes Addressed |
|---|---|
| Bertazzi DT, et al. (2011) The cortical protein Lte1 promotes mitotic exit by inhibiting the spindle position checkpoint kinase Kin4. J Cell Biol 193(6):1033-48 | |
| Dong J and Bai X (2011) The membrane localization of Ras2p and the association between Cdc25p and Ras2-GTP are regulated by protein kinase A (PKA) in the yeast Saccharomyces cerevisiae. FEBS Lett 585(8):1127-34 | |
| Geymonat M, et al. (2010) Phosphorylation of Lte1 by Cdk prevents polarized growth during mitotic arrest in S. cerevisiae. J Cell Biol 191(6):1097-112 | |
| Jian D, et al. (2010) Feedback regulation of Ras2 guanine nucleotide exchange factor (Ras2-GEF) activity of Cdc25p by Cdc25p phosphorylation in the yeast Saccharomyces cerevisiae. FEBS Lett 584(23):4745-50 | |
| Geymonat M, et al. (2009) Lte1 contributes to Bfa1 localization rather than stimulating nucleotide exchange by Tem1. J Cell Biol 187(4):497-511 | |
| Shibasaki S, et al. (2006) Detection of protein-protein interactions by a combination of a novel cytoplasmic membrane targeting system of recombinant proteins and fluorescence resonance energy transfer. Appl Microbiol Biotechnol 70(4):451-7 | |
| Truckses DM, et al. (2006) The RA domain of Ste50 adaptor protein is required for delivery of Ste11 to the plasma membrane in the filamentous growth signaling pathway of the yeast Saccharomyces cerevisiae. Mol Cell Biol 26(3):912-28 | |
| Seshan A and Amon A (2005) Ras and the Rho effector Cla4 collaborate to target and anchor Lte1 at the bud cortex. Cell Cycle 4(7):940-6 | |
| Yoshida S, et al. (2003) Ras recruits mitotic exit regulator Lte1 to the bud cortex in budding yeast. J Cell Biol 161(5):889-97 | |
| Aloy P and Russell RB (2002) Interrogating protein interaction networks through structural biology. Proc Natl Acad Sci U S A 99(9):5896-901 | |
| Hubsman M, et al. (2001) A novel approach for the identification of protein-protein interaction with integral membrane proteins. Nucleic Acids Res 29(4):E18 | |
| Crechet JB, et al. (2000) Analysis of the role of the hypervariable region of yeast Ras2p and its farnesylation in the interaction with exchange factors and adenylyl cyclase. J Biol Chem 275(23):17754-61 | |
| Trueblood CE, et al. (1997) Substrate specificity determinants in the farnesyltransferase beta-subunit. Proc Natl Acad Sci U S A 94(20):10774-9 | |
| Dalley BK and Cannon JF (1996) Novel, activated RAS mutations alter protein-protein interactions. Oncogene 13(6):1209-20 | |
| Parrini MC, et al. (1996) Determinants of Ras proteins specifying the sensitivity to yeast Ira2p and human p120-GAP. EMBO J 15(5):1107-11 | |
| Parrini MC, et al. (1995) Properties and regulation of the catalytic domain of Ira2p, a Saccharomyces cerevisiae GTPase-activating protein of Ras2p. Biochemistry 34(42):13776-83 | |
| Poullet P, et al. (1995) Properties of the catalytic domain of sdc25p, a yeast GDP/GTP exchange factor of Ras proteins. Complexation with wild-type Ras2p, [S24N]Ras2p and [R80D, N81D]Ras2p. Eur J Biochem 227(1-2):537-44 | |
| Minato T, et al. (1994) Quantitative analysis of mutually competitive binding of human Raf-1 and yeast adenylyl cyclase to Ras proteins. J Biol Chem 269(33):20845-51 | |
| Lai CC, et al. (1993) Influence of guanine nucleotides on complex formation between Ras and CDC25 proteins. Mol Cell Biol 13(3):1345-52 | |
| Baroni MD, et al. (1992) In vitro interaction between Saccharomyces cerevisiae CDC25 and RAS2 proteins. Biochem Biophys Res Commun 186(1):467-74 | |
| Gross E, et al. (1992) Anti-Cdc25 antibodies inhibit guanyl nucleotide-dependent adenylyl cyclase of Saccharomyces cerevisiae and cross-react with a 150-kilodalton mammalian protein. Mol Cell Biol 12(6):2653-61 | |
| Munder T and Furst P (1992) The Saccharomyces cerevisiae CDC25 gene product binds specifically to catalytically inactive ras proteins in vivo. Mol Cell Biol 12(5):2091-9 | |
| Powers S, et al. (1991) Functional cloning of BUD5, a CDC25-related gene from S. cerevisiae that can suppress a dominant-negative RAS2 mutant. Cell 65(7):1225-31 |



