Growth differentiation factor-9 signaling is mediated by the type I receptor, activin receptor-like kinase 5

被引:198
|
作者
Mazerbourg, S
Klein, C
Roh, J
Kaivo-Oja, N
Mottershead, DG
Korchynskyi, O
Ritvos, O
Hsueh, AJW [1 ]
机构
[1] Stanford Univ, Sch Med, Dept Obstet & Gynecol, Div Reprod Biol, Stanford, CA 94305 USA
[2] Univ Helsinki, Biomed Helsinki, Dev & Reprod Biol Program, FIN-00014 Helsinki, Finland
[3] Univ Helsinki, Haartman Inst, Dept Bacteriol & Immunol, FIN-00014 Helsinki, Finland
[4] Netherlands Canc Inst, Dept Cellular Biochem, NL-1066 CX Amsterdam, Netherlands
关键词
D O I
10.1210/me.2003-0393
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Growth differentiation factor-9 (GDF-9) is an oocyte-derived growth factor and a member of the TGF-beta superfamily that includes TGF-beta, activin, and bone morphogenetic proteins (BMPs). GDF-9 is indispensable for the development of ovarian follicles from the primary stage, and treatment with GDF-9 enhances the progression of early follicles into small preantral follicles. Similar to other TGF-beta family ligands, GDF-9 likely initiates signaling mediated by type I and type II receptors with serine/threonine kinase activity, followed by the phosphorylation of intracellular transcription factors named Smads. We have shown previously that GDF-9 interacts with the BMP type II receptor (BM-PRII) in granulosa cells, but the type I receptor involved is unknown. Using P19 cells, we now report that GDF-9 treatment stimulated the CAGA-luciferase reporter known to be responsive to TGF-beta mediated by the type I receptor, activin receptor-like kinase (ALK)5. In contrast, GDF-9 did not stimulate BMP-responsive reporters. In addition, treatment with GDF-9 induced the phosphorylation of Smad2 and Smad3 in P19 cells, and the stimulatory effect of GDF-9 on the CAGA-luciferase reporter was blocked by the inhibitory Smad7, but not Smad6. We further reconstructed the GDF-9 signaling pathway using Cos7 cells that are not responsive to GDF-9. After overexpression of ALK5, with or without exogenous Smad3, the Cos7 cells gained GDF-9 responsiveness based on the CAGA-luciferase reporter assay. The roles of ALK5 and downstream pathway genes in mediating GDF-9 actions were further tested in ovarian cells. In cultured rat granulosa cells from early antral follicles, treatment with GDF-9 stimulated the CAGA-luciferase reporter activity and induced the phosphorylation of Smad3. Furthermore, transfection with small interfering RNA for ALK5 or overexpression of the inhibitory Smad7 resulted in dose-dependent suppression of GDF-9 actions. In conclusion, although GDF-9 binds to the BMP-activated type II receptor, its downstream actions are mediated by the type I receptor, ALK5, and the Smad2 and Smad3 proteins. Because ALK5 is a known receptor for TGF-beta, diverse members of the TGF-beta family of ligands appear to interact with a limited number of receptors in a combinatorial manner to activate two downstream Smad pathways.
引用
收藏
页码:653 / 665
页数:13
相关论文
共 50 条
  • [31] Cloning and partial sequencing of a novel human activin receptor-like kinase
    Ohno, T
    Imai, A
    Takagi, A
    Horibe, S
    Takagi, H
    Tamaya, T
    ONCOLOGY REPORTS, 1997, 4 (06) : 1349 - 1351
  • [32] Activin receptor-like kinase 1 is implicated in the maturation phase of angiogenesis
    Lamouille, S
    Mallet, C
    Feige, JJ
    Bailly, S
    BLOOD, 2002, 100 (13) : 4495 - 4501
  • [33] Human retroviral gag- and gag-pol-like proteins interact with the transforming growth factor-β receptor activin receptor-like kinase 1
    Lux, A
    Beil, C
    Majety, M
    Barron, S
    Gallione, CJ
    Kuhn, HM
    Berg, JN
    Kioschis, P
    Marchuk, DA
    Hafner, M
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (09) : 8482 - 8493
  • [34] Mutations in the activin receptor-like kinase 1 gene in hereditary haemorrhagic telangiectasia type 2
    Johnson, DW
    Berg, JN
    Baldwin, MA
    Gallione, CJ
    Marondel, I
    Yoon, SJ
    Stenzel, TT
    Speer, M
    PericakVance, MA
    Diamond, A
    Guttmacher, AE
    Jackson, CE
    Attisano, L
    Kucherlapati, R
    Porteous, MEM
    Marchuk, DA
    NATURE GENETICS, 1996, 13 (02) : 189 - 195
  • [35] Genetic and pharmacological targeting of activin receptor-like kinase 1 impairs tumor growth and angiogenesis
    Cunha, Sara I.
    Pardali, Evangelia
    Thorikay, Midory
    Anderberg, Charlotte
    Hawinkels, Lukas
    Goumans, Marie-Jose
    Seehra, Jasbir
    Heldin, Carl-Henrik
    ten Dijke, Peter
    Pietras, Kristian
    JOURNAL OF EXPERIMENTAL MEDICINE, 2010, 207 (01): : 85 - 100
  • [36] Combinatorial Activin Receptor-Like Kinase/Smad and Basic Fibroblast Growth Factor Signals Stimulate the Differentiation of Human Embryonic Stem Cells into the Cardiac Lineage
    Yook, Jin-Yong
    Kim, Min-Jeong
    Son, Myung Jin
    Lee, Seokyoung
    Nam, Yoonkey
    Han, Yong-Mahn
    Cho, Yee Sook
    STEM CELLS AND DEVELOPMENT, 2011, 20 (09) : 1479 - 1490
  • [37] Thermoreversible Gel for Delivery of Activin Receptor-Like Kinase 5 Inhibitor in Glaucoma Filtration Surgery
    Miladore, N.
    Nakamura, H.
    Geldenhuys, W.
    Bhatia, D.
    Sutariya, V.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2010, 51 (13)
  • [38] Inhibition of activin receptor-like kinase 5 attenuates Bleomycin-induced pulmonary fibrosis
    Higashiyama, Hiroyuki
    Yoshimoto, Daisuke
    Kaise, Toshihiko
    Matsubara, Shigeki
    Fujiwara, Masatoshi
    Kikkawa, Hideo
    Asano, Satoshi
    Kinoshita, Mine
    EXPERIMENTAL AND MOLECULAR PATHOLOGY, 2007, 83 (01) : 39 - 46
  • [39] The up-regulation of the activin receptor-like kinase5 in the subconjunctival wound healing
    Fu, Shuhao
    Xiao, Yiqin
    Ye, Wen
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2014, 55 (13)
  • [40] Suppression of transient receptor potential melastatin 4 expression promotes conversion of endothelial cells into fibroblasts via transforming growth factor/activin receptor-like kinase 5 pathway
    Echeverria, Cesar
    Montorfano, Ignacio
    Cabello-Verrugio, Claudio
    Armisen, Ricardo
    Varela, Diego
    Simon, Felipe
    JOURNAL OF HYPERTENSION, 2015, 33 (05) : 981 - 992