Non-Smad TGF-β signals

被引:913
作者
Moustakas, A [1 ]
Heldin, CH [1 ]
机构
[1] Uppsala Univ, Ctr Biomed, Ludwig Inst Canc Res, SE-75124 Uppsala, Sweden
关键词
BMP; MAPK; PI3K; phosphatase; Ras; Rho; Smad; TGF-beta;
D O I
10.1242/jcs.02554
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
During the past 10 years, it has been firmly established that Smad pathways are central mediators of signals from the receptors for transforming growth factor beta (TGF-beta) superfamily members to the nucleus. However, growing biochemical and developmental evidence supports the notion that alternative, non-Smad pathways also participate in TGF-beta signalling. Non-Smad signalling proteins have three general mechanisms by which they contribute to physiological responses to TGF-beta: (1) non-Smad signalling pathways directly modify (e.g. phosphorylate) the Smads and thus modulate the activity of the central effectors; (2) Smads directly interact and modulate the activity of other signalling proteins (e.g. kinases), thus transmitting signals to other pathways; and (3) the TGF-beta receptors directly interact with or phosphorylate non-Smad proteins, thus initiating parallel signalling that cooperates with the Smad pathway in eliciting physiological responses. Thus, non-Smad signal transducers under the control of TGF-beta provide quantitative regulation of the signalling pathway, and serve as nodes for crosstalk with other major signalling pathways, such as tyrosine kinase, G-protein-coupled or cytokine receptors.
引用
收藏
页码:3573 / 3584
页数:12
相关论文
共 145 条
[1]   Evidence for a role of MSK1 in transforming growth factor-β-mediated responses through p38α and Smad signaling pathways [J].
Abécassis, L ;
Rogier, E ;
Vazquez, A ;
Atfi, A ;
Bourgeade, MF .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (29) :30474-30479
[2]  
ALEXANDROW MG, 1995, CANCER RES, V55, P1452
[3]   A critical role of tropomyosins in TGF-β regulation of the actin cytoskeleton and cell motility in epithelial cells [J].
Bakin, AV ;
Safina, A ;
Rinehart, C ;
Daroqui, C ;
Darbary, H ;
Helfman, DM .
MOLECULAR BIOLOGY OF THE CELL, 2004, 15 (10) :4682-4694
[4]   Three habits of highly effective signaling pathways: principles of transcriptional control by developmental cell signaling [J].
Barolo, S ;
Posakony, JW .
GENES & DEVELOPMENT, 2002, 16 (10) :1167-1181
[5]   High-throughput mapping of a dynamic signaling network in mammalian cells [J].
Barrios-Rodiles, M ;
Brown, KR ;
Ozdamar, B ;
Bose, R ;
Liu, Z ;
Donovan, RS ;
Shinjo, F ;
Liu, YM ;
Dembowy, J ;
Taylor, IW ;
Luga, V ;
Przulj, N ;
Robinson, M ;
Suzuki, H ;
Hayashizaki, Y ;
Jurisica, I ;
Wrana, JL .
SCIENCE, 2005, 307 (5715) :1621-1625
[6]   TGF-β-induced RhoA and p160ROCK activation is involved in the inhibition of Cdc25A with resultant cell-cycle arrest [J].
Bhowmick, NA ;
Ghiassi, M ;
Aakre, M ;
Brown, K ;
Singh, V ;
Moses, HL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (26) :15548-15553
[7]   Differential requirements for Smad4 in TGFβ-dependent patterning of the early mouse embryo [J].
Chu, GC ;
Dunn, NR ;
Anderson, DC ;
Oxburgh, L ;
Robertson, EJ .
DEVELOPMENT, 2004, 131 (15) :3501-3512
[8]   Intravital imaging of cell movement in tumours [J].
Condeelis, J ;
Segall, JE .
NATURE REVIEWS CANCER, 2003, 3 (12) :921-930
[9]   Akt interacts directly with Smad3 to regulate the sensitivity to TGF-β-induced apoptosis [J].
Conery, AR ;
Cao, YN ;
Thompson, EA ;
Townsend, CM ;
Ko, TC ;
Luo, KX .
NATURE CELL BIOLOGY, 2004, 6 (04) :366-372
[10]   Links between tumor suppressors:: p53 is required for TGF-β gene responses by cooperating with Smads [J].
Cordenonsi, M ;
Dupont, S ;
Maretto, S ;
Insinga, A ;
Imbriano, C ;
Piccolo, S .
CELL, 2003, 113 (03) :301-314