A complex role for FGF-2 in self-renewal, survival, and adhesion of human embryonic stem cells
Jazyk angličtina Země Anglie, Velká Británie Médium print
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
19544431
PubMed Central
PMC2798073
DOI
10.1002/stem.128
Knihovny.cz E-zdroje
- MeSH
- aktivace enzymů MeSH
- buněčná adheze účinky léků fyziologie MeSH
- buněčná diferenciace účinky léků fyziologie MeSH
- buněčné linie MeSH
- buňky - růstové procesy účinky léků fyziologie MeSH
- down regulace MeSH
- embryonální kmenové buňky cytologie účinky léků metabolismus MeSH
- exprese genu MeSH
- fibroblastový růstový faktor 2 genetika metabolismus farmakologie MeSH
- fosforylace MeSH
- imunoblotting MeSH
- lidé MeSH
- mitogenem aktivované proteinkinasy metabolismus MeSH
- onkogenní protein v-akt metabolismus MeSH
- polymerázová řetězová reakce s reverzní transkripcí MeSH
- receptor fibroblastových růstových faktorů, typ 2 metabolismus MeSH
- signální transdukce MeSH
- viabilita buněk účinky léků fyziologie MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- fibroblastový růstový faktor 2 MeSH
- mitogenem aktivované proteinkinasy MeSH
- onkogenní protein v-akt MeSH
- receptor fibroblastových růstových faktorů, typ 2 MeSH
The transcription program that is responsible for the pluripotency of human ESCs (hESCs) is believed to be comaintained by exogenous fibroblast growth factor-2 (FGF-2), which activates FGF receptors (FGFRs) and stimulates the mitogen-activated protein kinase (MAPK) pathway. However, the same pathway is stimulated by insulin receptors, insulin-like growth factor 1 receptors, and epidermal growth factor receptors. This mechanism is further complicated by intracrine FGF signals. Thus, the molecular mechanisms by which FGF-2 promotes the undifferentiated growth of hESCs are unclear. Here we show that, in undifferentiated hESCs, exogenous FGF-2 stimulated the expression of stem cell genes while suppressing cell death and apoptosis genes. Inhibition of autocrine FGF signaling caused upregulation of differentiation-related genes and downregulation of stem cell genes. Thus, exogenous FGF-2 reinforced the pluripotency maintenance program of intracrine FGF-2 signaling. Consistent with this hypothesis, expression of endogenous FGF-2 decreased during hESC differentiation and FGF-2 knockdown-induced hESC differentiation. In addition, FGF-2 signaling via FGFR2 activated MAPK kinase/extracellular signal-regulated kinase and AKT kinases, protected hESC from stress-induced cell death, and increased hESC adhesion and cloning efficiency. This stimulation of self-renewal, cell survival, and adhesion by exogenous and endogenous FGF-2 may synergize to maintain the undifferentiated growth of hESCs.
Zobrazit více v PubMed
Dvorak P, Dvorakova D, Koskova S, et al. Expression and potential role of fibroblast growth factor 2 and its receptors in human embryonic stem cells. Stem Cells. 2005;23:1200–1211. PubMed
Levenstein ME, Ludwig TE, Xu RH, et al. Basic fibroblast growth factor support of human embryonic stem cell self-renewal. Stem Cells. 2006;24:568–574. PubMed PMC
Vallier L, Alexander M, Pedersen RA. Activin/nodal and FGF pathways cooperate to maintain pluripotency of human embryonic stem cells. J Cell Sci. 2005;118:4495–4509. PubMed
Beattie GM, Lopez AD, Bucay N, et al. Activin A maintains pluripotency of human embryonic stem cells in the absence of feeder layer. Stem Cells. 2005;23:489–495. PubMed
Xiao L, Yuan X, Sharkis SJ. Activin A maintains self-renewal and regulates fibroblast growth factor, Wnt, and bone morphogenic protein pathways in human embryonic stem cells. Stem Cells. 2006;24:1476–1486. PubMed
Amit M, Shariki C, Margulets V, et al. Feeder layer- and serum-free culture of human embryonic stem cells. Biol Reprod. 2004;70:837–845. PubMed
Dravid G, Ye ZH, Hammond H, et al. Defining the role of Wnt/β-catenin signaling in the survival, proliferation, and self-renewal of human embryonic stem cells. Stem Cells. 2005;23:1489–1501. PubMed
Lu J, Hou RH, Booth CJ, et al. Defined culture conditions of human embryonic stem cells. Proc Natl Acad Sci USA. 2006;103:5688–5693. PubMed PMC
Cai LH, Ye ZH, Zhou BY, et al. Promoting human embryonic stem cell renewal or differentiation by modulating Wnt signal and culture conditions. Cell Res. 2007;17:62–72. PubMed
Schenke-Layland K, Angelis E, Rhodes KE, et al. Collagen IV induces trophoectoderm differentiation of mouse embryonic stem cells. Stem Cells. 2007;25:1529–1538. PubMed
Funa NS, Saldeen J, Akerblom B, et al. Interdependent fibroblast growth factor and activin A signaling promotes the expression of endodermal genes in differentiating mouse embryonic stem cells expressing Src homology 2-domain inactive Shb. Differentiation. 2008;76:443–453. PubMed
Shiraki N, Yoshida T, Araki K, et al. Guided differentiation of embryonic stem cells into Pdx1-expressing regional-specific definitive endoderm. Stem Cells. 2008;26:874–885. PubMed
Yang S, Soonpaa MH, Adler ED, et al. Human cardiovascular progenitor cells develop from a KDR+ embryonic-stem-cell-derived population. Nature. 2008;453:524–528. PubMed
Li J, Wang G, Wang C, et al. MEK/ERK signaling contributes to the maintenance of human embryonic stem cell self-renewal. Differentiation. 2007;75:299–307. PubMed
Greber B, Lehrach H, Adjaye J. Fibroblast growth factor 2 modulates transforming growth factor β signaling in mouse embryonic fibroblasts and human ESCs (hESCs) to support hESC self-renewal. Stem Cells. 2007;25:455–464. PubMed
Eiselleova L, Peterkova I, Neradil J, et al. Comparative study of mouse and human feeder cells for human embryonic stem cells. Int J Dev Biol. 2008;52:353–363. PubMed
Bendall SC, Stewart MH, Menendez P, et al. IGF and FGF cooperatively establish the regulatory stem cell niche of pluripotent human cells in vitro. Nature. 2007;448:1015–1021. PubMed
Xu R, Sampsell-Barron TL, Gu F, et al. NANOG is a direct target of TGFβ/Activin-mediated SMAD signaling in human ESCs. Cell Stem Cell. 2008;3:196–206. PubMed PMC
Jirmanova L, Pacholikova J, Krejci P, et al. O-linked carbohydrates are required for FGF-2-mediated proliferation of mouse embryonic stem cells. Int J Dev Biol. 1999;43:555–562. PubMed
Wang L, Schulz TC, Sherrer ES, et al. Self-renewal of human embryonic stem cells requires insulin-like growth factor-1 receptor and ERBB2 receptor signaling. Blood. 2007;110:4111–4119. PubMed PMC
Ying QL, Wray J, Nichols J, et al. The ground state of embryonic stem cell self-renewal. Nature. 2008;453:519–523. PubMed PMC
Yu P-J, Ferrari G, Galloway AC, et al. Basic fibroblast growth factor (FGF-2): The high molecular weight forms come of age. J Cell Biochem. 2007;100:1100–1108. PubMed
Stachowiak MK, Maher P, Stachowiak EK. Integrative nuclear signaling in cell development: A role for FGF receptor-1. DNA Cell Biol. 2007;26:1–16. PubMed
Adewumi O, Aflatoonian B, Ahrlund-Richter L, et al. Characterization of human embryonic stem cell lines by the International Stem Cell Initiative. Nat Biotechnol. 2007;25:803–816. PubMed
Al-Shahrour F, Minguez P, Tárraga J, et al. BABELOMICS: A systems biology perspective in the functional annotation of genome-scale experiments. Nucleic Acids Res. 2006;34:W472–W476. PubMed PMC
Liu Y-P, Dambaeva SV, Dovzhenko V, et al. Stable plasmid-based siRNA silencing of gene expression in human embryonic stem cells. Stem Cells Dev. 2005;14:487–492. PubMed
Enver T, Soneji S, Joshi C, et al. Cellular differentiation hierarchies in normal and culture-adapted human embryonic stem cells. Hum Mol Genet. 2005;14:3129–3140. PubMed
Stewart MH, Bosse M, Chadwick K, et al. Clonal isolation of hESCs reveals heterogeneity within the pluripotent stem cell compartment. Nat Methods. 2006;3:807–815. PubMed
Hasegawa K, Fujioka T, Nakamura Y, et al. A method for the selection of human embryonic stem cell sublines with high replating efficiency after single-cell dissociation. Stem Cells. 2006;24:2649–2660. PubMed
Schamberger C, Gerner C, Cerni C. bFGF rescues 423-cells from serum starvation-induced apoptosis downstream of activated caspase-3. FEBS Lett. 2004;573:19–25. PubMed
Couderc B, Prats H, Bayard F, et al. Potential oncogenic effects of basic fibroblast growth factor requires cooperation between CUG abd AUG-initiated forms. Cell Regul. 1991;2:709–718. PubMed PMC
Quarto N, Fong KD, Longaker MT. Gene profiling of cells expressing different FGF-2 forms. Gene. 2005;356:49–68. PubMed
Søensen V, Nilsen T, Wiedlocha A. Functional diversity of FGF-2 isoforms by intracellular sorting. Bioessays. 2006;28:504–514. PubMed
Wang H, Dey SK. Roadmap to embryo implantation: Clues from mouse models. Nat Rev Genet. 2006;7:185–199. PubMed
Paria BC, Ma W, Tan J, et al. Cellular and molecular responses of the uterus to embryo implantation can be elicited by locally applied growth factors. Proc Natl Acad Sci USA. 2001;98:1047–1052. PubMed PMC
Taniguchi F, Harada T, Yoshida S, et al. Paracrine effects of bFGF and KGF on the process of mouse blastocyst implantation. Mol Reprod Dev. 1998;50:54–62. PubMed
Krejci P, Krakow D, Mekikian PB, et al. Fibroblast growth factors 1, 2, 17, and 19 are the predominant FGF ligands expressed in human fetal growth plate cartilage. Pediatr Res. 2007;61:267–272. PubMed
Giannouli CC, Kletsas D. TGFβ regulates differentially the proliferation of fetal and adult human skin fibroblasts via the activation of PKA and the autocrine action of FGF-2. Cell Signal. 2006;18:1417–1429. PubMed
Billottet C, Elkhatib N, Thiery JP, et al. Targets of fibroblast growth factor 1 (FGF-1) and FGF-2 signaling involved in the invasive and tumorigenic behavior of carcinoma cells. Mol Biol Cell. 2004;15:4725–4734. PubMed PMC
Mayshar Y, Rom E, Chumakov I, et al. Fibroblast growth factor 4 and its novel splice isoform have opposing effects on the maintenance of human embryonic stem cell self-renewal. Stem Cells. 2008;26:769–774. PubMed
Arman E, Haffner-Krausz R, Chen Y, et al. Targeted disruption of fibroblast growth factor (FGF) receptor 2 suggests a role for FGF signaling in pregastrulation mammalian development. Proc Natl Acad Sci USA. 1998;95:5082–5087. PubMed PMC
Chen Y, Li XF, Eswarakumar VP, et al. Fibroblast growth factor (FGF) signaling through PI3-kinase and Akt/PKB is required for embryoid body differentiation. Oncogene. 2000;19:3750–3756. PubMed
Li XF, Chen YL, Scheele S, et al. Fibroblast growth factor signaling and basement membrane assembly are connected during epithelial morphogenesis of the embryoid body. J Cell Biol. 2001;153:811–822. PubMed PMC
Meszaros R, Akerlund M, Hjalt T, et al. Gene expression profiling of differentiating embryonic stem cells expressing dominant negative fibroblast growth factor receptor 2. Matrix Biol. 2007;26:197–205. PubMed
Richard C, Roghani M, Moscatelli D. Fibroblast growth factor (FGF)-2 mediates cell attachment through interactions with two FGF receptor-1 isoforms and extracellular matrix or cell-associated heparan sulfate proteoglycans. Biochem Biophys Res Commun. 2000;276:399–405. PubMed
Sanchez-Heras E, Howell FV, Williams G, et al. The fibroblast growth factor receptor acid box is essential for interactions with N-cadherin and all of the major isoform of neural cell adhesion molecule. J Biol Chem. 2006;281:35208–35216. PubMed