2 DISTINCT RAF DOMAINS MEDIATE INTERACTION WITH RAS

被引:205
作者
BRTVA, TR
DRUGAN, JK
GHOSH, S
TERRELL, RS
CAMPBELLBURK, S
BELL, RM
DER, CJ
机构
[1] UNIV N CAROLINA,LINEBERGER CANC RES CTR,CURRICULUM GENET & MOLEC BIOL,CHAPEL HILL,NC 27599
[2] UNIV N CAROLINA,LINEBERGER CANC RES CTR,DEPT PHARMACOL,CHAPEL HILL,NC 27599
[3] UNIV N CAROLINA,LINEBERGER CANC RES CTR,DEPT BIOCHEM & BIOPHYS,CHAPEL HILL,NC 27599
[4] DUKE UNIV,CTR COMPREHENS CANC,DEPT MOLEC CANC BIOL,DURHAM,NC 27710
关键词
D O I
10.1074/jbc.270.17.9809
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A key event for Res transformation involves the direct physical association between Ras and the Raf-l kinase, This interaction promotes both Raf translocation to the plasma membrane and activation of Raf kinase activity, Although substantial experimental evidence has demonstrated that Raf residues 51-131 alone are sufficient for Ras binding, conflicting observations have suggested that the Raf cysteine-rich domain (residues 139-184) may also be important for interaction with Ras, To clarify the role of the Raf cysteine rich domain in Ras-Raf binding, we have compared the ability of two distinct Raf fragments to interact with Ras using both in vitro Ras binding and in vivo Ras inhibition assays, First, we determined that both Raf sequences 2-140 and 139-186 (designated Raf-Cys) showed preferential binding to active, GTP-bound Ras in vitro, Second, we observed that Raf-Cys antagonized oncogenic Ras(Q61L)-mediated transactivation of Ras-responsive elements and focus-forming activity in NIH 3T3 cells and insulin-induced germinal vesicle breakdown in Xenopus laevis oocytes in vivo. This inhibitory activity suggests that Raf Cys can interact with Ras in vivo, Taken together, these results suggest that Ras interaction with two distinct domains of Raf-l may be important in Ras-mediated activation of Raf kinase activity.
引用
收藏
页码:9809 / 9812
页数:4
相关论文
共 30 条
[1]  
Williams N.G., Roberts T.M., Cancer Metastasis Rev., 13, pp. 105-116, (1994)
[2]  
Davis R.J., J. Biol. Chem., 268, pp. 14553-14556, (1993)
[3]  
Moodie S.A., Willumsen B.M., Weber M.J., Wolfman A., Science, 260, pp. 1658-1661, (1993)
[4]  
Warne P.H., Viciana P.R., Downward J., Nature, 364, pp. 352-355, (1993)
[5]  
Zhang X., Settleman J., Kyriakis J.M., Takeuchi-Suzuki E., Elledge S.J., Marshall M.S., Bruder J.T., Rapp U.R., Avruch J., Nature, 364, pp. 308-313, (1993)
[6]  
Vojtek A.B., Hollenberg S.M., Cooper J.A., Cell, 74, pp. 205-214, (1993)
[7]  
Van Aelst L., Barr M., Marcus S., Polverino A., Wigler M., Proc. Natl. Acad. Sci. U. S. A., 90, pp. 6213-6217, (1993)
[8]  
Finney R.E., Robbins S.M., Bishop J.M., Curr. Biol., 3, pp. 805-812, (1993)
[9]  
Chuang E., Barnard D., Hettich L., Zhang X.-F., Avruch J., Marshall M.S., Mol. Cell. Biol., 14, pp. 5318-5325, (1994)
[10]  
Ghosh S., Bell R.M., J. Biol. Chem., 269, pp. 30785-30788, (1994)