Type |
Details |
Score |
Gene |
Type: |
gene |
Organism: |
human |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
frog, western clawed |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
sheep |
|
•
•
•
•
•
|
Gene |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
chimpanzee |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
dog, domestic |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
cattle |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
chicken |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
zebrafish |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
macaque, rhesus |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
35
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
Fibroblast growth factors (FGFs) [, ]are a family of multifunctional proteins, often referred to as 'promiscuousgrowth factors' due to their diverse actions on multiple cell types [, ]. FGFs are mitogens, which stimulate growth or differentiation of cells of mesodermal or neuroectodermal origin. The function of FGFs in developmental processes include mesoderm induction, anterior-posterior patterning, limb development, and neural induction and development. In mature tissues, they are involved in diverse processes including keratinocyte organisation and wound healing [, , , , , ]. FGF involvement is critical during normal development of both vertebrates and invertebrates, and irregularities in their function leads to a range of developmental defects [, , , ]. Fibroblast growth factors are heparin-binding proteins and interactions with cell-surface-associated heparan sulfate proteoglycans have been shown to be essential for FGF signal transduction. FGFs have internal pseudo-threefold symmetry (β-trefoil topology) []. There are currently over 20 different FGF family members that have been identified in mammals, all of which are structurally related signaling molecules [, ]. They exert their effects through four distinct membrane fibroblast growth factor receptors (FGFRs), FGFR1 to FGFR4 [], which belong to the tyrosine kinase superfamily. Upon binding to FGF, the receptors dimerize and their intracellular tyrosine kinase domains become active [].This entry represents fibroblast growth factor 2 (FGF2), also known as heparin-binding growth factor 2 and basic fibroblast growth factor. The protein plays an important role in the regulation of cell survival, cell division, angiogenesis, cell differentiation and cell migration and is a potent mitogen in vitro [, ]. FGF2 has a high affinity for FGFR1, FGFR2 and FGFR4, but a very low affinity with FGFR3 [, , , ]. FGF2 has also been shown to interact with casein kinase II subunit alpha []and some ribosomal proteins [, ]. |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Gene |
Type: |
gene |
Organism: |
human |
|
•
•
•
•
•
|
Publication |
First Author: |
Ornitz DM |
Year: |
2001 |
Journal: |
Genome Biol |
Title: |
Fibroblast growth factors. |
Volume: |
2 |
Issue: |
3 |
Pages: |
REVIEWS3005 |
|
•
•
•
•
•
|
Publication |
First Author: |
Liu X |
Year: |
2015 |
Journal: |
J Immunol |
Title: |
Cytosolic Low Molecular Weight FGF2 Orchestrates RIG-I-Mediated Innate Immune Response. |
Volume: |
195 |
Issue: |
10 |
Pages: |
4943-52 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nusayr E |
Year: |
2013 |
Journal: |
Physiol Rep |
Title: |
FGF2 modulates cardiac remodeling in an isoform- and sex-specific manner. |
Volume: |
1 |
Issue: |
4 |
|
|
•
•
•
•
•
|
Publication |
First Author: |
Burt PM |
Year: |
2019 |
Journal: |
J Cell Physiol |
Title: |
Ablation of low-molecular-weight FGF2 isoform accelerates murine osteoarthritis while loss of high-molecular-weight FGF2 isoforms offers protection. |
Volume: |
234 |
Issue: |
4 |
Pages: |
4418-4431 |
|
•
•
•
•
•
|
Publication |
First Author: |
Song X |
Year: |
2015 |
Journal: |
Immunity |
Title: |
Growth Factor FGF2 Cooperates with Interleukin-17 to Repair Intestinal Epithelial Damage. |
Volume: |
43 |
Issue: |
3 |
Pages: |
488-501 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nusayr E |
Year: |
2013 |
Journal: |
Physiol Rep |
Title: |
Cardiac development and physiology are modulated by FGF2 in an isoform- and sex-specific manner. |
Volume: |
1 |
Issue: |
4 |
|
|
•
•
•
•
•
|
Publication |
First Author: |
Liang W |
Year: |
2018 |
Journal: |
Cell Physiol Biochem |
Title: |
Knockout of Low Molecular Weight FGF2 Attenuates Atherosclerosis by Reducing Macrophage Infiltration and Oxidative Stress in Mice. |
Volume: |
45 |
Issue: |
4 |
Pages: |
1434-1443 |
|
•
•
•
•
•
|
Publication |
First Author: |
Foletti A |
Year: |
2003 |
Journal: |
Cell Mol Life Sci |
Title: |
Nuclear localization of mouse fibroblast growth factor 2 requires N-terminal and C-terminal sequences. |
Volume: |
60 |
Issue: |
10 |
Pages: |
2254-65 |
|
•
•
•
•
•
|
Publication |
First Author: |
Koleini N |
Year: |
2019 |
Journal: |
Am J Physiol Heart Circ Physiol |
Title: |
Elimination or neutralization of endogenous high-molecular-weight FGF2 mitigates doxorubicin-induced cardiotoxicity. |
Volume: |
316 |
Issue: |
2 |
Pages: |
H279-H288 |
|
•
•
•
•
•
|
Publication |
First Author: |
Shao X |
Year: |
2017 |
Journal: |
Sci Rep |
Title: |
FGF2 cooperates with IL-17 to promote autoimmune inflammation. |
Volume: |
7 |
Issue: |
1 |
Pages: |
7024 |
|
•
•
•
•
•
|
Publication |
First Author: |
Byun MR |
Year: |
2014 |
Journal: |
Bone |
Title: |
FGF2 stimulates osteogenic differentiation through ERK induced TAZ expression. |
Volume: |
58 |
|
Pages: |
72-80 |
|
•
•
•
•
•
|
Publication |
First Author: |
Dong L |
Year: |
2012 |
Journal: |
Cell Death Differ |
Title: |
FGF2 regulates melanocytes viability through the STAT3-transactivated PAX3 transcription. |
Volume: |
19 |
Issue: |
4 |
Pages: |
616-22 |
|
•
•
•
•
•
|
Publication |
First Author: |
Mierzwa AJ |
Year: |
2013 |
Journal: |
Neurosci Lett |
Title: |
FGF2 and FGFR1 signaling regulate functional recovery following cuprizone demyelination. |
Volume: |
548 |
|
Pages: |
280-5 |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
154
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Publication |
First Author: |
Mattei MG |
Year: |
1992 |
Journal: |
Mamm Genome |
Title: |
Chromosomal localizations of mouse Fgf2 and Fgf5 genes. |
Volume: |
2 |
Issue: |
2 |
Pages: |
135-7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Homer-Bouthiette C |
Year: |
2014 |
Journal: |
J Biol Chem |
Title: |
Knockout of nuclear high molecular weight FGF2 isoforms in mice modulates bone and phosphate homeostasis. |
Volume: |
289 |
Issue: |
52 |
Pages: |
36303-14 |
|
•
•
•
•
•
|
Publication |
First Author: |
Murtie JC |
Year: |
2005 |
Journal: |
Glia |
Title: |
In vivo analysis of oligodendrocyte lineage development in postnatal FGF2 null mice. |
Volume: |
49 |
Issue: |
4 |
Pages: |
542-54 |
|
•
•
•
•
•
|
Publication |
First Author: |
Niger C |
Year: |
2010 |
Journal: |
BMC Biochem |
Title: |
Interaction of connexin43 and protein kinase C-delta during FGF2 signaling. |
Volume: |
11 |
|
Pages: |
14 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nadanaka S |
Year: |
2018 |
Journal: |
Biochim Biophys Acta |
Title: |
Exostosin-like 2 regulates FGF2 signaling by controlling the endocytosis of FGF2. |
Volume: |
1862 |
Issue: |
4 |
Pages: |
791-799 |
|
•
•
•
•
•
|
Publication |
First Author: |
Masaki K |
Year: |
2018 |
Journal: |
Stem Cell Reports |
Title: |
FGF2 Has Distinct Molecular Functions from GDNF in the Mouse Germline Niche. |
Volume: |
10 |
Issue: |
6 |
Pages: |
1782-1792 |
|
•
•
•
•
•
|
Publication |
First Author: |
Okada Y |
Year: |
2003 |
Journal: |
J Biol Chem |
Title: |
Impaired osteoclast formation in bone marrow cultures of Fgf2 null mice in response to parathyroid hormone. |
Volume: |
278 |
Issue: |
23 |
Pages: |
21258-66 |
|
•
•
•
•
•
|
Publication |
First Author: |
Dono R |
Year: |
2002 |
Journal: |
Circ Res |
Title: |
FGF2 signaling is required for the development of neuronal circuits regulating blood pressure. |
Volume: |
90 |
Issue: |
1 |
Pages: |
E5-E10 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nissen LJ |
Year: |
2007 |
Journal: |
J Clin Invest |
Title: |
Angiogenic factors FGF2 and PDGF-BB synergistically promote murine tumor neovascularization and metastasis. |
Volume: |
117 |
Issue: |
10 |
Pages: |
2766-77 |
|
•
•
•
•
•
|
Publication |
First Author: |
Shimoyama Y |
Year: |
1991 |
Journal: |
Jpn J Cancer Res |
Title: |
Characterization of high-molecular-mass forms of basic fibroblast growth factor produced by hepatocellular carcinoma cells: possible involvement of basic fibroblast growth factor in hepatocarcinogenesis. |
Volume: |
82 |
Issue: |
11 |
Pages: |
1263-70 |
|
•
•
•
•
•
|
Publication |
First Author: |
Reich-Slotky R |
Year: |
1995 |
Journal: |
J Biol Chem |
Title: |
Chimeric molecules between keratinocyte growth factor and basic fibroblast growth factor define domains that confer receptor binding specificities. |
Volume: |
270 |
Issue: |
50 |
Pages: |
29813-8 |
|
•
•
•
•
•
|
Publication |
First Author: |
Shen B |
Year: |
1998 |
Journal: |
Biochem Biophys Res Commun |
Title: |
Intracellular association of FGF-2 with the ribosomal protein L6/TAXREB107. |
Volume: |
252 |
Issue: |
2 |
Pages: |
524-8 |
|
•
•
•
•
•
|
Publication |
First Author: |
Soulet F |
Year: |
2001 |
Journal: |
Biochem Biophys Res Commun |
Title: |
Fibroblast growth factor-2 interacts with free ribosomal protein S19. |
Volume: |
289 |
Issue: |
2 |
Pages: |
591-6 |
|
•
•
•
•
•
|
Publication |
First Author: |
Meo Burt P |
Year: |
2016 |
Journal: |
Endocrinology |
Title: |
FGF2 High Molecular Weight Isoforms Contribute to Osteoarthropathy in Male Mice. |
Volume: |
157 |
Issue: |
12 |
Pages: |
4602-4614 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Not Specified |
Emaps: |
EMAPS:1689419 |
|
Stage: |
TS19 |
Assay Id: |
MGI:6190267 |
Age: |
embryonic day 11.5 |
|
|
Specimen Label: |
Table S2 - E11.5 - Fgf2 |
Detected: |
false |
Specimen Num: |
1 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Not Specified |
Emaps: |
EMAPS:1689421 |
|
Stage: |
TS21 |
Assay Id: |
MGI:6190267 |
Age: |
embryonic day 13.5 |
|
|
Specimen Label: |
Table S2 - E13.5 - Fgf2 |
Detected: |
false |
Specimen Num: |
2 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Male |
Emaps: |
EMAPS:1689424 |
|
Stage: |
TS24 |
Assay Id: |
MGI:6190267 |
Age: |
embryonic day 15.5 |
|
|
Specimen Label: |
Table S2 - E15.5 - Fgf2 |
Detected: |
false |
Specimen Num: |
3 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Male |
Emaps: |
EMAPS:1689426 |
|
Stage: |
TS26 |
Assay Id: |
MGI:6190267 |
Age: |
embryonic day 18.5 |
|
|
Specimen Label: |
Table S2 - E18.5 - Fgf2 |
Detected: |
false |
Specimen Num: |
4 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Male |
Emaps: |
EMAPS:1689428 |
|
Stage: |
TS28 |
Assay Id: |
MGI:6190267 |
Age: |
postnatal day 4 |
|
|
Specimen Label: |
Table S2 - P4 - Fgf2 |
Detected: |
false |
Specimen Num: |
5 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Male |
Emaps: |
EMAPS:1689428 |
|
Stage: |
TS28 |
Assay Id: |
MGI:6190267 |
Age: |
postnatal day 14 |
|
|
Specimen Label: |
Table S2 - P14 - Fgf2 |
Detected: |
false |
Specimen Num: |
6 |
|
•
•
•
•
•
|
GXD Expression |
Probe: |
MGI:6172869 |
Assay Type: |
RNA in situ |
Annotation Date: |
2018-07-25 |
Strength: |
Absent |
Sex: |
Male |
Emaps: |
EMAPS:1689428 |
|
Stage: |
TS28 |
Assay Id: |
MGI:6190267 |
Age: |
postnatal day 28 |
|
|
Specimen Label: |
Table S2 - P28 - Fgf2 |
Detected: |
false |
Specimen Num: |
7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Murtie JC |
Year: |
2005 |
Journal: |
Neurobiol Dis |
Title: |
PDGF and FGF2 pathways regulate distinct oligodendrocyte lineage responses in experimental demyelination with spontaneous remyelination. |
Volume: |
19 |
Issue: |
1-2 |
Pages: |
171-82 |
|
•
•
•
•
•
|
Publication |
First Author: |
Du E |
Year: |
2016 |
Journal: |
J Cell Biochem |
Title: |
FGFR Inhibitor Ameliorates Hypophosphatemia and Impaired Engrailed-1/Wnt Signaling in FGF2 High Molecular Weight Isoform Transgenic Mice. |
Volume: |
117 |
Issue: |
9 |
Pages: |
1991-2000 |
|
•
•
•
•
•
|
Publication |
First Author: |
Vorgia E |
Year: |
2017 |
Journal: |
Mol Reprod Dev |
Title: |
Suppression of Fgf2 by ETS2 repressor factor (ERF) is required for chorionic trophoblast differentiation. |
Volume: |
84 |
Issue: |
4 |
Pages: |
286-295 |
|
•
•
•
•
•
|
Publication |
First Author: |
Ishii K |
Year: |
2012 |
Journal: |
Development |
Title: |
FGF2 mediates mouse spermatogonial stem cell self-renewal via upregulation of Etv5 and Bcl6b through MAP2K1 activation. |
Volume: |
139 |
Issue: |
10 |
Pages: |
1734-43 |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
109
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
154
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
112
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
105
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
153
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Publication |
First Author: |
Skjerpen CS |
Year: |
2002 |
Journal: |
EMBO J |
Title: |
Binding of FGF-1 variants to protein kinase CK2 correlates with mitogenicity. |
Volume: |
21 |
Issue: |
15 |
Pages: |
4058-69 |
|
•
•
•
•
•
|
Publication |
First Author: |
Chellaiah A |
Year: |
1999 |
Journal: |
J Biol Chem |
Title: |
Mapping ligand binding domains in chimeric fibroblast growth factor receptor molecules. Multiple regions determine ligand binding specificity. |
Volume: |
274 |
Issue: |
49 |
Pages: |
34785-94 |
|
•
•
•
•
•
|
Publication |
First Author: |
Xiao L |
Year: |
2010 |
Journal: |
Bone |
Title: |
Disruption of the Fgf2 gene activates the adipogenic and suppresses the osteogenic program in mesenchymal marrow stromal stem cells. |
Volume: |
47 |
Issue: |
2 |
Pages: |
360-70 |
|
•
•
•
•
•
|
Publication |
First Author: |
Yamada H |
Year: |
2000 |
Journal: |
J Cell Physiol |
Title: |
Cell injury unmasks a latent proangiogenic phenotype in mice with increased expression of FGF2 in the retina. |
Volume: |
185 |
Issue: |
1 |
Pages: |
135-42 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sullivan CJ |
Year: |
2002 |
Journal: |
J Appl Physiol (1985) |
Title: |
Targeted disruption of the Fgf2 gene does not affect vascular growth in the mouse ischemic hindlimb. |
Volume: |
93 |
Issue: |
6 |
Pages: |
2009-17 |
|
•
•
•
•
•
|
Publication |
First Author: |
Zhang Y |
Year: |
2012 |
Journal: |
Cell Res |
Title: |
Endogenously produced FGF2 is essential for the survival and proliferation of cultured mouse spermatogonial stem cells. |
Volume: |
22 |
Issue: |
4 |
Pages: |
773-6 |
|
•
•
•
•
•
|
Publication |
First Author: |
Thiemann RF |
Year: |
2019 |
Journal: |
Sci Rep |
Title: |
Establishment of a Murine Pro-acinar Cell Line to Characterize Roles for FGF2 and α3β1 Integrins in Regulating Pro-acinar Characteristics. |
Volume: |
9 |
Issue: |
1 |
Pages: |
10984 |
|
•
•
•
•
•
|
Publication |
First Author: |
Ornitz DM |
Year: |
1996 |
Journal: |
J Biol Chem |
Title: |
Receptor specificity of the fibroblast growth factor family. |
Volume: |
271 |
Issue: |
25 |
Pages: |
15292-7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sudheer S |
Year: |
2016 |
Journal: |
Stem Cells |
Title: |
Different Concentrations of FGF Ligands, FGF2 or FGF8 Determine Distinct States of WNT-Induced Presomitic Mesoderm. |
Volume: |
34 |
Issue: |
7 |
Pages: |
1790-800 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kiyota T |
Year: |
2011 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
FGF2 gene transfer restores hippocampal functions in mouse models of Alzheimer's disease and has therapeutic implications for neurocognitive disorders. |
Volume: |
108 |
Issue: |
49 |
Pages: |
E1339-48 |
|
•
•
•
•
•
|
Publication |
First Author: |
Burgess WH |
Year: |
1989 |
Journal: |
Annu Rev Biochem |
Title: |
The heparin-binding (fibroblast) growth factor family of proteins. |
Volume: |
58 |
|
Pages: |
575-606 |
|
•
•
•
•
•
|
Publication |
First Author: |
Wilkie AO |
Year: |
1995 |
Journal: |
Curr Biol |
Title: |
Functions of fibroblast growth factors and their receptors. |
Volume: |
5 |
Issue: |
5 |
Pages: |
500-7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Thomas KA |
Year: |
1988 |
Journal: |
Trends Biochem Sci |
Title: |
Transforming potential of fibroblast growth factor genes. |
Volume: |
13 |
Issue: |
9 |
Pages: |
327-8 |
|
•
•
•
•
•
|
Publication |
First Author: |
Plotnikov AN |
Year: |
2000 |
Journal: |
Cell |
Title: |
Crystal structures of two FGF-FGFR complexes reveal the determinants of ligand-receptor specificity. |
Volume: |
101 |
Issue: |
4 |
Pages: |
413-24 |
|
•
•
•
•
•
|
Publication |
First Author: |
Blaber M |
Year: |
1996 |
Journal: |
Biochemistry |
Title: |
X-ray crystal structure of human acidic fibroblast growth factor. |
Volume: |
35 |
Issue: |
7 |
Pages: |
2086-94 |
|
•
•
•
•
•
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Publication |
First Author: |
Vlodavsky I |
Year: |
1990 |
Journal: |
Cancer Metastasis Rev |
Title: |
Extracellular matrix-resident growth factors and enzymes: possible involvement in tumor metastasis and angiogenesis. |
Volume: |
9 |
Issue: |
3 |
Pages: |
203-26 |
|
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Publication |
First Author: |
Green PJ |
Year: |
1996 |
Journal: |
Bioessays |
Title: |
Promiscuity of fibroblast growth factor receptors. |
Volume: |
18 |
Issue: |
8 |
Pages: |
639-46 |
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Publication |
First Author: |
Yardley N |
Year: |
2012 |
Journal: |
Dev Biol |
Title: |
FGF signaling transforms non-neural ectoderm into neural crest. |
Volume: |
372 |
Issue: |
2 |
Pages: |
166-77 |
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Publication |
First Author: |
Böttcher RT |
Year: |
2005 |
Journal: |
Endocr Rev |
Title: |
Fibroblast growth factor signaling during early vertebrate development. |
Volume: |
26 |
Issue: |
1 |
Pages: |
63-77 |
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Publication |
First Author: |
Koga C |
Year: |
1999 |
Journal: |
Biochem Biophys Res Commun |
Title: |
Characterization of a novel member of the FGF family, XFGF-20, in Xenopus laevis. |
Volume: |
261 |
Issue: |
3 |
Pages: |
756-65 |
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Publication |
First Author: |
Nakamizo S |
Year: |
2013 |
Journal: |
Skin Pharmacol Physiol |
Title: |
Topical treatment with basic fibroblast growth factor promotes wound healing and barrier recovery induced by skin abrasion. |
Volume: |
26 |
Issue: |
1 |
Pages: |
22-9 |
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Publication |
First Author: |
Kumar SB |
Year: |
2013 |
Journal: |
Curr Pharm Des |
Title: |
Fibroblast growth factor receptor inhibitors. |
Volume: |
19 |
Issue: |
4 |
Pages: |
687-701 |
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Publication |
First Author: |
Amaya E |
Year: |
1991 |
Journal: |
Cell |
Title: |
Expression of a dominant negative mutant of the FGF receptor disrupts mesoderm formation in Xenopus embryos. |
Volume: |
66 |
Issue: |
2 |
Pages: |
257-70 |
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Publication |
First Author: |
Borland CZ |
Year: |
2001 |
Journal: |
Bioessays |
Title: |
Fibroblast growth factor signaling in Caenorhabditis elegans. |
Volume: |
23 |
Issue: |
12 |
Pages: |
1120-30 |
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Publication |
First Author: |
Coumoul X |
Year: |
2003 |
Journal: |
Birth Defects Res C Embryo Today |
Title: |
Roles of FGF receptors in mammalian development and congenital diseases. |
Volume: |
69 |
Issue: |
4 |
Pages: |
286-304 |
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Publication |
First Author: |
Sutherland D |
Year: |
1996 |
Journal: |
Cell |
Title: |
branchless encodes a Drosophila FGF homolog that controls tracheal cell migration and the pattern of branching. |
Volume: |
87 |
Issue: |
6 |
Pages: |
1091-101 |
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Publication |
First Author: |
Fei Y |
Year: |
2011 |
Journal: |
Biochem Biophys Res Commun |
Title: |
The impaired bone anabolic effect of PTH in the absence of endogenous FGF2 is partially due to reduced ATF4 expression. |
Volume: |
412 |
Issue: |
1 |
Pages: |
160-4 |
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Publication |
First Author: |
Qian X |
Year: |
1997 |
Journal: |
Neuron |
Title: |
FGF2 concentration regulates the generation of neurons and glia from multipotent cortical stem cells. |
Volume: |
18 |
Issue: |
1 |
Pages: |
81-93 |
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Publication |
First Author: |
Miller DL |
Year: |
2000 |
Journal: |
Mol Cell Biol |
Title: |
Compensation by fibroblast growth factor 1 (FGF1) does not account for the mild phenotypic defects observed in FGF2 null mice. |
Volume: |
20 |
Issue: |
6 |
Pages: |
2260-8 |
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Publication |
First Author: |
Liao S |
Year: |
2007 |
Journal: |
J Mol Cell Cardiol |
Title: |
The cardioprotective effect of the low molecular weight isoform of fibroblast growth factor-2: the role of JNK signaling. |
Volume: |
42 |
Issue: |
1 |
Pages: |
106-20 |
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Publication |
First Author: |
Yang J |
Year: |
2015 |
Journal: |
Cell Cycle |
Title: |
Binding of FGF2 to FGFR2 in an autocrine mode in trophectoderm cells is indispensable for mouse blastocyst formation through PKC-p38 pathway. |
Volume: |
14 |
Issue: |
20 |
Pages: |
3318-30 |
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Publication |
First Author: |
Xiao L |
Year: |
2009 |
Journal: |
J Biol Chem |
Title: |
Exported 18-kDa isoform of fibroblast growth factor-2 is a critical determinant of bone mass in mice. |
Volume: |
284 |
Issue: |
5 |
Pages: |
3170-82 |
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Publication |
First Author: |
Garmy-Susini B |
Year: |
2004 |
Journal: |
Circ Res |
Title: |
Role of fibroblast growth factor-2 isoforms in the effect of estradiol on endothelial cell migration and proliferation. |
Volume: |
94 |
Issue: |
10 |
Pages: |
1301-9 |
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Publication |
First Author: |
Murcia-Belmonte V |
Year: |
2014 |
Journal: |
Glia |
Title: |
ERK1/2 signaling is essential for the chemoattraction exerted by human FGF2 and human anosmin-1 on newborn rat and mouse OPCs via FGFR1. |
Volume: |
62 |
Issue: |
3 |
Pages: |
374-86 |
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Allele |
Name: |
fibroblast growth factor 2; targeted mutation 2, Thomas Doetschman |
Allele Type: |
Targeted |
Attribute String: |
Null/knockout |
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
•
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
•
|
QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
•
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
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•
•
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
•
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QTL |
Type: |
QTL |
Organism: |
mouse, laboratory |
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•
•
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