Identification of the Axin and Frat binding region of glycogen synthase kinase-3

被引:104
作者
Fraser, E
Young, N
Dajani, R
Franca-Koh, J
Ryves, J
Williams, RSB
Yeo, M
Webster, MT
Richardson, C
Smalley, MJ
Pearl, LH
Harwood, A
Dale, TC
机构
[1] Inst Canc Res, Canc Res Campaign Ctr Cell & Mol Biol, London SW3 6JB, England
[2] Inst Canc Res, Sect Struct Biol, London SW3 6JB, England
[3] UCL, MRC, Mol Cell Biol Lab, London WC1E 6BT, England
[4] UCL, Dept Biol, London WC1E 6BT, England
关键词
D O I
10.1074/jbc.M109462200
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
Glycogen synthase kinase-3 (GSK-3) is a key component of several signaling pathways including those regulated by Wnt and insulin ligands. Specificity in GSK-3 signaling is thought to involve interactions with scaffold proteins that localize GSK-3 regulators and substrates. This report shows that GSK-3 forms a low affinity homodimer that is disrupted by binding to Axin and Frat. Based on the crystal structure of GSK-3, we have used surface-scanning mutagenesis to identify residues that differentially affect GSK-3 interactions. Mutations that disrupt Frat and Axin cluster at the dimer interface explaining their effect on homodimer formation. Loss of the Axin binding site blocks the ability of dominant negative GSK-3 to cause axis duplication in Xenopus embryos. The Axin binding site is conserved within all GSK-3 proteins, and its loss affects both cell motility and gene expression in the nonmetazoan, Dictyostelium. Surprisingly, we find no genetic interaction between a non-Axin-binding GSK-3 mutant and T-cell factor activity, arguing that Axin interactions alone cannot explain the regulation of T-cell factor-mediated gene expression.
引用
收藏
页码:2176 / 2185
页数:10
相关论文
共 53 条
[21]   ESTABLISHMENT OF A TRANSIENT EXPRESSION SYSTEM FOR DICTYOSTELIUM-DISCOIDEUM [J].
HOWARD, PK ;
AHERN, KG ;
FIRTEL, RA .
NUCLEIC ACIDS RESEARCH, 1988, 16 (06) :2613-2623
[22]   MODULATION OF THE GLYCOGEN-SYNTHASE KINASE-3 FAMILY BY TYROSINE PHOSPHORYLATION [J].
HUGHES, K ;
NIKOLAKAKI, E ;
PLYTE, SE ;
TOTTY, NF ;
WOODGETT, JR .
EMBO JOURNAL, 1993, 12 (02) :803-808
[23]   Axin, a negative regulator of the Wnt signaling pathway, forms a complex with GSK-3β and β-catenin and promotes GSK-3β-dependent phosphorylation of β-catenin [J].
Ikeda, S ;
Kishida, S ;
Yamamoto, H ;
Murai, H ;
Koyama, S ;
Kikuchi, A .
EMBO JOURNAL, 1998, 17 (05) :1371-1384
[24]   GSK-3β-dependent phosphorylation of adenomatous polyposis coli gene product can be modulated by β-catenin and protein phosphatase 2A complexed with Axin [J].
Ikeda, S ;
Kishida, M ;
Matsuura, Y ;
Usui, H ;
Kikuchi, A .
ONCOGENE, 2000, 19 (04) :537-545
[25]  
Itoh K, 1995, DEVELOPMENT, V121, P3979
[26]   Axis determination by inhibition of Wnt signaling in Xenopus [J].
Itoh, K ;
Sokol, SY .
GENES & DEVELOPMENT, 1999, 13 (17) :2328-2336
[27]   Axis determination in Xenopus involves biochemical interactions of axin, glycogen synthase kinase 3 and β-catenin [J].
Itoh, K ;
Krupnik, VE ;
Sokol, SY .
CURRENT BIOLOGY, 1998, 8 (10) :591-594
[28]   The novel tyrosine kinase ZAK1 activates GSK3 to direct cell fate specification [J].
Kim, L ;
Liu, JC ;
Kimmel, AR .
CELL, 1999, 99 (04) :399-408
[29]   GSK3, a master switch regulating cell-fate specification and tumorigenesis [J].
Kim, L ;
Kimmel, AR .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 2000, 10 (05) :508-514
[30]   Axin and Frat1 interact with DvI and GSK, bridging Dvl to GSK in Wnt-mediated regulation of LEF-1 [J].
Li, L ;
Yuan, HD ;
Weaver, CD ;
Mao, JH ;
Farr, GH ;
Sussman, DJ ;
Jonkers, J ;
Kimelman, D ;
Wu, DQ .
EMBO JOURNAL, 1999, 18 (15) :4233-4240