| Type |
Details |
Score |
| Publication |
| First Author: |
Paek H |
| Year: |
2011 |
| Journal: |
Dev Cell |
| Title: |
β-Catenin-dependent FGF signaling sustains cell survival in the anterior embryonic head by countering Smad4. |
| Volume: |
20 |
| Issue: |
5 |
| Pages: |
689-99 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Zhao T |
| Year: |
2014 |
| Journal: |
Development |
| Title: |
β-catenin regulates Pax3 and Cdx2 for caudal neural tube closure and elongation. |
| Volume: |
141 |
| Issue: |
1 |
| Pages: |
148-57 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Leek CC |
| Year: |
2021 |
| Journal: |
Dev Dyn |
| Title: |
Deletion of Fibroblast growth factor 9 globally and in skeletal muscle results in enlarged tuberosities at sites of deltoid tendon attachments. |
| Volume: |
250 |
| Issue: |
12 |
| Pages: |
1778-1795 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Hörnblad A |
| Year: |
2021 |
| Journal: |
Nat Commun |
| Title: |
Dissection of the Fgf8 regulatory landscape by in vivo CRISPR-editing reveals extensive intra- and inter-enhancer redundancy. |
| Volume: |
12 |
| Issue: |
1 |
| Pages: |
439 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Hirata H |
| Year: |
2001 |
| Journal: |
EMBO J |
| Title: |
Hes1 and Hes3 regulate maintenance of the isthmic organizer and development of the mid/hindbrain. |
| Volume: |
20 |
| Issue: |
16 |
| Pages: |
4454-66 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Garcia CM |
| Year: |
2011 |
| Journal: |
Dev Biol |
| Title: |
The function of FGF signaling in the lens placode. |
| Volume: |
351 |
| Issue: |
1 |
| Pages: |
176-85 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Chan KM |
| Year: |
2012 |
| Journal: |
Dev Cell |
| Title: |
MT1-MMP inactivates ADAM9 to regulate FGFR2 signaling and calvarial osteogenesis. |
| Volume: |
22 |
| Issue: |
6 |
| Pages: |
1176-90 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Ratzka A |
| Year: |
2011 |
| Journal: |
PLoS One |
| Title: |
FGF-2 deficiency does not influence FGF ligand and receptor expression during development of the nigrostriatal system. |
| Volume: |
6 |
| Issue: |
8 |
| Pages: |
e23564 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Shang Y |
| Year: |
2013 |
| Journal: |
PLoS Biol |
| Title: |
Transcriptional corepressors HIPK1 and HIPK2 control angiogenesis via TGF-β-TAK1-dependent mechanism. |
| Volume: |
11 |
| Issue: |
4 |
| Pages: |
e1001527 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Nik AM |
| Year: |
2016 |
| Journal: |
Dev Biol |
| Title: |
Foxf2 is required for secondary palate development and Tgfβ signaling in palatal shelf mesenchyme. |
| Volume: |
415 |
| Issue: |
1 |
| Pages: |
14-23 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Song H |
| Year: |
2022 |
| Journal: |
Dev Biol |
| Title: |
Tbx2 and Tbx3 regulate cell fate progression of the otic vesicle for inner ear development. |
| Volume: |
494 |
|
| Pages: |
71-84 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Zhang S |
| Year: |
2014 |
| Journal: |
Cell Res |
| Title: |
Uterine Rbpj is required for embryonic-uterine orientation and decidual remodeling via Notch pathway-independent and -dependent mechanisms. |
| Volume: |
24 |
| Issue: |
8 |
| Pages: |
925-42 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Yaguchi Y |
| Year: |
2009 |
| Journal: |
Dev Dyn |
| Title: |
Fibroblast growth factor (FGF) gene expression in the developing cerebellum suggests multiple roles for FGF signaling during cerebellar morphogenesis and development. |
| Volume: |
238 |
| Issue: |
8 |
| Pages: |
2058-72 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
McCoy AM |
| Year: |
2017 |
| Journal: |
Am J Pathol |
| Title: |
IKKβ Activation in the Fetal Lung Mesenchyme Alters Lung Vascular Development but Not Airway Morphogenesis. |
| Volume: |
187 |
| Issue: |
12 |
| Pages: |
2635-2644 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Yaylaoglu MB |
| Year: |
2005 |
| Journal: |
Dev Dyn |
| Title: |
Comprehensive expression atlas of fibroblast growth factors and their receptors generated by a novel robotic in situ hybridization platform. |
| Volume: |
234 |
| Issue: |
2 |
| Pages: |
371-86 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Yang SL |
| Year: |
2015 |
| Journal: |
Dev Biol |
| Title: |
MiR-302/367 regulate neural progenitor proliferation, differentiation timing, and survival in neurulation. |
| Volume: |
408 |
| Issue: |
1 |
| Pages: |
140-50 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Bachler M |
| Year: |
2001 |
| Journal: |
Mech Dev |
| Title: |
Expression of members of the Fgf family and their receptors during midfacial development. |
| Volume: |
100 |
| Issue: |
2 |
| Pages: |
313-6 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Hajihosseini MK |
| Year: |
2002 |
| Journal: |
Mech Dev |
| Title: |
Expression patterns of fibroblast growth factors-18 and -20 in mouse embryos is suggestive of novel roles in calvarial and limb development. |
| Volume: |
113 |
| Issue: |
1 |
| Pages: |
79-83 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Cai S |
| Year: |
2022 |
| Journal: |
Front Genet |
| Title: |
Transcriptomic analysis of the upper lip and primary palate development in mice. |
| Volume: |
13 |
|
| Pages: |
1039850 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Später D |
| Year: |
2006 |
| Journal: |
Development |
| Title: |
Wnt9a signaling is required for joint integrity and regulation of Ihh during chondrogenesis. |
| Volume: |
133 |
| Issue: |
15 |
| Pages: |
3039-49 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Zhou C |
| Year: |
2021 |
| Journal: |
J Cell Mol Med |
| Title: |
FGF8 and BMP2 mediated dynamic regulation of dental mesenchyme proliferation and differentiation via Lhx8/Suv39h1 complex. |
| Volume: |
25 |
| Issue: |
6 |
| Pages: |
3051-3062 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Jukkola T |
| Year: |
2006 |
| Journal: |
Dev Biol |
| Title: |
FGF regulated gene-expression and neuronal differentiation in the developing midbrain-hindbrain region. |
| Volume: |
297 |
| Issue: |
1 |
| Pages: |
141-57 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Hadjab S |
| Year: |
2013 |
| Journal: |
J Neurosci |
| Title: |
A local source of FGF initiates development of the unmyelinated lineage of sensory neurons. |
| Volume: |
33 |
| Issue: |
45 |
| Pages: |
17656-66 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Jung EM |
| Year: |
2017 |
| Journal: |
Nat Neurosci |
| Title: |
Arid1b haploinsufficiency disrupts cortical interneuron development and mouse behavior. |
| Volume: |
20 |
| Issue: |
12 |
| Pages: |
1694-1707 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Meuser M |
| Year: |
2022 |
| Journal: |
Development |
| Title: |
FGFR2 signaling enhances the SHH-BMP4 signaling axis in early ureter development. |
| Volume: |
149 |
| Issue: |
1 |
|
|
•
•
•
•
•
|
| Publication |
| First Author: |
Minina E |
| Year: |
2005 |
| Journal: |
Gene Expr Patterns |
| Title: |
Expression of Fgf and Tgfbeta signaling related genes during embryonic endochondral ossification. |
| Volume: |
6 |
| Issue: |
1 |
| Pages: |
102-9 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Hu B |
| Year: |
2012 |
| Journal: |
Cell |
| Title: |
Multifocal epithelial tumors and field cancerization from loss of mesenchymal CSL signaling. |
| Volume: |
149 |
| Issue: |
6 |
| Pages: |
1207-20 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Thompson CL |
| Year: |
2014 |
| Journal: |
Neuron |
| Title: |
A high-resolution spatiotemporal atlas of gene expression of the developing mouse brain. |
| Volume: |
83 |
| Issue: |
2 |
| Pages: |
309-323 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Visel A |
| Year: |
2004 |
| Journal: |
Nucleic Acids Res |
| Title: |
GenePaint.org: an atlas of gene expression patterns in the mouse embryo. |
| Volume: |
32 |
| Issue: |
Database issue |
| Pages: |
D552-6 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Bedogni F |
| Year: |
2021 |
| Journal: |
Front Mol Neurosci |
| Title: |
Cell-Type-Specific Gene Expression in Developing Mouse Neocortex: Intermediate Progenitors Implicated in Axon Development. |
| Volume: |
14 |
|
| Pages: |
686034 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
The Gene Ontology Consortium |
| Year: |
2014 |
|
| Title: |
Automated transfer of experimentally-verified manual GO annotation data to mouse-rat orthologs |
|
|
|
|
•
•
•
•
•
|
| Publication |
| First Author: |
UniProt-GOA |
| Year: |
2012 |
|
| Title: |
Gene Ontology annotation based on UniProtKB/Swiss-Prot Subcellular Location vocabulary mapping, accompanied by conservative changes to GO terms applied by UniProt |
|
|
|
|
•
•
•
•
•
|
| Publication |
| First Author: |
Magdaleno S |
| Year: |
2006 |
| Journal: |
PLoS Biol |
| Title: |
BGEM: an in situ hybridization database of gene expression in the embryonic and adult mouse nervous system. |
| Volume: |
4 |
| Issue: |
4 |
| Pages: |
e86 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2003 |
|
| Title: |
MGI Sequence Curation Reference |
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|
|
•
•
•
•
•
|
| Publication |
| First Author: |
Zambrowicz BP |
| Year: |
2003 |
| Journal: |
Proc Natl Acad Sci U S A |
| Title: |
Wnk1 kinase deficiency lowers blood pressure in mice: a gene-trap screen to identify potential targets for therapeutic intervention. |
| Volume: |
100 |
| Issue: |
24 |
| Pages: |
14109-14 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Mouse Genome Informatics (MGI) and National Center for Biotechnology Information (NCBI) |
| Year: |
2008 |
| Journal: |
Database Download |
| Title: |
Mouse Gene Trap Data Load from dbGSS |
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•
•
•
•
•
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| Publication |
| First Author: |
Cyagen Biosciences Inc. |
| Year: |
2022 |
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| Title: |
Cyagen Biosciences Website. |
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•
•
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| Publication |
| First Author: |
UniProt-GOA |
| Year: |
2012 |
|
| Title: |
Gene Ontology annotation based on UniProtKB/Swiss-Prot keyword mapping |
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•
•
•
•
•
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| Publication |
| First Author: |
GOA curators |
| Year: |
2016 |
|
| Title: |
Automatic transfer of experimentally verified manual GO annotation data to orthologs using Ensembl Compara |
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•
•
•
•
•
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| Publication |
| First Author: |
The Jackson Laboratory Mouse Radiation Hybrid Database |
| Year: |
2004 |
| Journal: |
Database Release |
| Title: |
Mouse T31 Radiation Hybrid Data Load |
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•
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•
•
•
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| Publication |
| First Author: |
Okazaki Y |
| Year: |
2002 |
| Journal: |
Nature |
| Title: |
Analysis of the mouse transcriptome based on functional annotation of 60,770 full-length cDNAs. |
| Volume: |
420 |
| Issue: |
6915 |
| Pages: |
563-73 |
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| First Author: |
The Gene Ontology Consortium |
| Year: |
2010 |
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| Title: |
Automated transfer of experimentally-verified manual GO annotation data to mouse-human orthologs |
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| First Author: |
Diez-Roux G |
| Year: |
2011 |
| Journal: |
PLoS Biol |
| Title: |
A high-resolution anatomical atlas of the transcriptome in the mouse embryo. |
| Volume: |
9 |
| Issue: |
1 |
| Pages: |
e1000582 |
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•
•
•
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| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2010 |
| Journal: |
Database Download |
| Title: |
Mouse Microarray Data Integration in Mouse Genome Informatics, the Affymetrix GeneChip Mouse Genome U74 Array Platform (A, B, C v2). |
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•
•
•
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| Publication |
| First Author: |
MGI Genome Annotation Group and UniGene Staff |
| Year: |
2015 |
| Journal: |
Database Download |
| Title: |
MGI-UniGene Interconnection Effort |
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•
•
•
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| Publication |
| First Author: |
Marc Feuermann, Huaiyu Mi, Pascale Gaudet, Dustin Ebert, Anushya Muruganujan, Paul Thomas |
| Year: |
2010 |
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| Title: |
Annotation inferences using phylogenetic trees |
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•
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•
•
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| Publication |
| First Author: |
Mouse Genome Database and National Center for Biotechnology Information |
| Year: |
2000 |
| Journal: |
Database Release |
| Title: |
Entrez Gene Load |
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•
•
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| Publication |
| First Author: |
Allen Institute for Brain Science |
| Year: |
2004 |
| Journal: |
Allen Institute |
| Title: |
Allen Brain Atlas: mouse riboprobes |
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•
•
•
•
•
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| Publication |
| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2009 |
| Journal: |
Database Download |
| Title: |
Mouse Microarray Data Integration in Mouse Genome Informatics, the Affymetrix GeneChip Mouse Gene 1.0 ST Array Platform |
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•
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| Publication |
| First Author: |
Mouse Genome Informatics (MGI) and The National Center for Biotechnology Information (NCBI) |
| Year: |
2010 |
| Journal: |
Database Download |
| Title: |
Consensus CDS project |
|
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•
•
•
•
•
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| Publication |
| First Author: |
Mouse Genome Informatics Group |
| Year: |
2003 |
| Journal: |
Database Procedure |
| Title: |
Automatic Encodes (AutoE) Reference |
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•
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•
•
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| Publication |
| First Author: |
Bairoch A |
| Year: |
1999 |
| Journal: |
Database Release |
| Title: |
SWISS-PROT Annotated protein sequence database |
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•
•
•
•
•
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| Publication |
| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2005 |
|
| Title: |
Obtaining and Loading Genome Assembly Coordinates from Ensembl Annotations |
|
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•
•
•
•
•
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| Publication |
| First Author: |
Mouse Genome Informatics |
| Year: |
2010 |
| Journal: |
Database Release |
| Title: |
Protein Ontology Association Load. |
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•
•
•
•
•
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| Publication |
| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2005 |
|
| Title: |
Obtaining and loading genome assembly coordinates from NCBI annotations |
|
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•
•
•
•
•
|
| Publication |
| First Author: |
Mouse Genome Informatics Scientific Curators |
| Year: |
2009 |
| Journal: |
Database Download |
| Title: |
Mouse Microarray Data Integration in Mouse Genome Informatics, the Affymetrix GeneChip Mouse Genome 430 2.0 Array Platform |
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•
•
•
•
•
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| Publication |
| First Author: |
Flannery CA |
| Year: |
2016 |
| Journal: |
Endocrinology |
| Title: |
Endometrial Cancer-Associated FGF18 Expression Is Reduced by Bazedoxifene in Human Endometrial Stromal Cells In Vitro and in Murine Endometrium. |
| Volume: |
157 |
| Issue: |
10 |
| Pages: |
3699-3708 |
|
•
•
•
•
•
|
| QTL |
| Type: |
QTL |
| Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1901624 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2D |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2D |
| Detected: |
true |
| Specimen Num: |
1 |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1901624 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2E |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2E |
| Detected: |
true |
| Specimen Num: |
2 |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1901624 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2F |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2F |
| Detected: |
true |
| Specimen Num: |
3 |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1871524 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2D |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2D |
| Detected: |
true |
| Specimen Num: |
1 |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1871524 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2E |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2E |
| Detected: |
true |
| Specimen Num: |
2 |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:2665357 |
| Assay Type: |
RNA in situ |
| Annotation Date: |
2003-07-15 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1871524 |
| Pattern: |
Not Specified |
| Stage: |
TS24 |
| Assay Id: |
MGI:2665358 |
| Age: |
embryonic day 16.5 |
| Image: |
2F |
| Note: |
Expression directly abuts Fgf18 expression. |
| Specimen Label: |
2F |
| Detected: |
true |
| Specimen Num: |
3 |
|
•
•
•
•
•
|
| HT Experiment |
|
| Experiment Type: |
RNA-Seq |
| Study Type: |
WT vs. Mutant |
| Source: |
GEO |
|
•
•
•
•
•
|
| GXD Expression |
| Probe: |
MGI:4438726 |
| Assay Type: |
Immunohistochemistry |
| Annotation Date: |
2023-01-20 |
| Strength: |
Present |
| Sex: |
Not Specified |
| Emaps: |
EMAPS:1757728 |
| Pattern: |
Not Specified |
| Stage: |
TS28 |
| Assay Id: |
MGI:7427795 |
| Age: |
postnatal adult |
| Image: |
2A,C,D |
| Note: |
Expression co-localized with that of Fgf18 in spinal motor neurons. |
| Specimen Label: |
2A,C,D |
| Detected: |
true |
| Specimen Num: |
1 |
|
•
•
•
•
•
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| Allele |
| Name: |
fibroblast growth factor 18; targeted mutation 2.1, David M Ornitz |
| Allele Type: |
Targeted |
| Attribute String: |
Conditional ready |
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•
•
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| Allele |
| Name: |
fibroblast growth factor 18; targeted mutation 2.2, David M Ornitz |
| Allele Type: |
Targeted |
| Attribute String: |
Inducible, Null/knockout, Recombinase, Reporter |
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•
|
| Genotype |
| Symbol: |
Fgf18/Fgf18<+> |
| Background: |
Not Specified |
| Zygosity: |
ht |
| Has Mutant Allele: |
true |
|
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•
•
•
•
|
| Publication |
| First Author: |
Gong Z |
| Year: |
2023 |
| Journal: |
Nat Commun |
| Title: |
CircRREB1 mediates lipid metabolism related senescent phenotypes in chondrocytes through FASN post-translational modifications. |
| Volume: |
14 |
| Issue: |
1 |
| Pages: |
5242 |
|
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•
•
•
•
|
| Genotype |
| Symbol: |
Fgf18/Fgf18<+> Gt(ROSA)26Sor/Gt(ROSA)26Sor<+> |
| Background: |
involves: 129S6/SvEvTac * C57BL/6NCrl |
| Zygosity: |
cn |
| Has Mutant Allele: |
true |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Matsumoto Y |
| Year: |
2017 |
| Journal: |
J Clin Invest |
| Title: |
Ubiquitin ligase RNF146 coordinates bone dynamics and energy metabolism. |
| Volume: |
127 |
| Issue: |
7 |
| Pages: |
2612-2625 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Takeuchi K |
| Year: |
2008 |
| Journal: |
Exp Eye Res |
| Title: |
Systemic administration of nilvadipine delays photoreceptor degeneration of heterozygous retinal degeneration slow (rds) mouse. |
| Volume: |
86 |
| Issue: |
1 |
| Pages: |
60-9 |
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•
•
•
•
•
|
| Publication |
| First Author: |
Borello U |
| Year: |
2008 |
| Journal: |
Neural Dev |
| Title: |
FGF15 promotes neurogenesis and opposes FGF8 function during neocortical development. |
| Volume: |
3 |
|
| Pages: |
17 |
|
•
•
•
•
•
|
| Publication |
| First Author: |
Xiao L |
| Year: |
2004 |
| Journal: |
J Biol Chem |
| Title: |
Stat1 controls postnatal bone formation by regulating fibroblast growth factor signaling in osteoblasts. |
| Volume: |
279 |
| Issue: |
26 |
| Pages: |
27743-52 |
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•
•
•
•
|
| Publication |
| First Author: |
Karuppaiah K |
| Year: |
2016 |
| Journal: |
Development |
| Title: |
FGF signaling in the osteoprogenitor lineage non-autonomously regulates postnatal chondrocyte proliferation and skeletal growth. |
| Volume: |
143 |
| Issue: |
10 |
| Pages: |
1811-22 |
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•
•
•
•
|
| Publication |
| First Author: |
McGowan SE |
| Year: |
2015 |
| Journal: |
Am J Physiol Lung Cell Mol Physiol |
| Title: |
Fibroblast growth factor signaling in myofibroblasts differs from lipofibroblasts during alveolar septation in mice. |
| Volume: |
309 |
| Issue: |
5 |
| Pages: |
L463-74 |
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•
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•
•
|
| Publication |
| First Author: |
Bachvarova V |
| Year: |
2020 |
| Journal: |
Matrix Biol |
| Title: |
Chondrocytes respond to an altered heparan sulfate composition with distinct changes of heparan sulfate structure and increased levels of chondroitin sulfate. |
| Volume: |
93 |
|
| Pages: |
43-59 |
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•
•
•
•
|
| Publication |
| First Author: |
Sinha S |
| Year: |
2017 |
| Journal: |
PLoS Genet |
| Title: |
Unsuspected osteochondroma-like outgrowths in the cranial base of Hereditary Multiple Exostoses patients and modeling and treatment with a BMP antagonist in mice. |
| Volume: |
13 |
| Issue: |
4 |
| Pages: |
e1006742 |
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•
•
•
•
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| Publication |
| First Author: |
Barnard JC |
| Year: |
2005 |
| Journal: |
Endocrinology |
| Title: |
Thyroid hormones regulate fibroblast growth factor receptor signaling during chondrogenesis. |
| Volume: |
146 |
| Issue: |
12 |
| Pages: |
5568-80 |
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•
•
•
•
|
| Publication |
| First Author: |
Ono Y |
| Year: |
2020 |
| Journal: |
Front Immunol |
| Title: |
CD206+ M2-Like Macrophages Are Essential for Successful Implantation. |
| Volume: |
11 |
|
| Pages: |
557184 |
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•
•
•
•
|
| Publication |
| First Author: |
Lopes FM |
| Year: |
2019 |
| Journal: |
J Pathol |
| Title: |
Overactivity or blockade of transforming growth factor-β each generate a specific ureter malformation. |
| Volume: |
249 |
| Issue: |
4 |
| Pages: |
472-484 |
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•
•
•
•
|
| Publication |
| First Author: |
Reilly JF |
| Year: |
2000 |
| Journal: |
J Biol Chem |
| Title: |
Association of fibroblast growth factor receptor 1 with the adaptor protein Grb14. Characterization of a new receptor binding partner. |
| Volume: |
275 |
| Issue: |
11 |
| Pages: |
7771-8 |
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•
•
•
•
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| Publication |
| First Author: |
Ong SH |
| Year: |
2000 |
| Journal: |
Mol Cell Biol |
| Title: |
FRS2 proteins recruit intracellular signaling pathways by binding to diverse targets on fibroblast growth factor and nerve growth factor receptors. |
| Volume: |
20 |
| Issue: |
3 |
| Pages: |
979-89 |
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•
•
•
•
|
| Publication |
| First Author: |
Karlsson T |
| Year: |
1995 |
| Journal: |
Oncogene |
| Title: |
Molecular interactions of the Src homology 2 domain protein Shb with phosphotyrosine residues, tyrosine kinase receptors and Src homology 3 domain proteins. |
| Volume: |
10 |
| Issue: |
8 |
| Pages: |
1475-83 |
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•
•
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•
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| Publication |
| First Author: |
Schlessinger J |
| Year: |
2000 |
| Journal: |
Mol Cell |
| Title: |
Crystal structure of a ternary FGF-FGFR-heparin complex reveals a dual role for heparin in FGFR binding and dimerization. |
| Volume: |
6 |
| Issue: |
3 |
| Pages: |
743-50 |
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•
•
•
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| Publication |
| First Author: |
Li C |
| Year: |
2005 |
| Journal: |
Development |
| Title: |
FGFR1 function at the earliest stages of mouse limb development plays an indispensable role in subsequent autopod morphogenesis. |
| Volume: |
132 |
| Issue: |
21 |
| Pages: |
4755-64 |
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•
|
| Publication |
| First Author: |
Itoh N |
| Year: |
1990 |
| Journal: |
Biochem Biophys Res Commun |
| Title: |
The complete amino acid sequence of the shorter form of human basic fibroblast growth factor receptor deduced from its cDNA. |
| Volume: |
169 |
| Issue: |
2 |
| Pages: |
680-5 |
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•
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| Publication |
| First Author: |
Riley BM |
| Year: |
2007 |
| Journal: |
Proc Natl Acad Sci U S A |
| Title: |
Impaired FGF signaling contributes to cleft lip and palate. |
| Volume: |
104 |
| Issue: |
11 |
| Pages: |
4512-7 |
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•
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| Publication |
| First Author: |
Dixon MJ |
| Year: |
2011 |
| Journal: |
Nat Rev Genet |
| Title: |
Cleft lip and palate: understanding genetic and environmental influences. |
| Volume: |
12 |
| Issue: |
3 |
| Pages: |
167-78 |
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| Protein Domain |
| Type: |
Domain |
| Description: |
Fibroblast growth factors (FGFs) [, ]are a family of multifunctional proteins, often referred to as 'promiscuous growth 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 [].The FGFRs consist of an extracellular ligand-binding domain composed of three immunoglobulin-like domains (D1-D3), a single transmembrane helix domain, and an intracellular domain with tyrosine kinase activity []. The three immunoglobin(Ig)-like domains, D1, D2, and D3, present a stretch of acidic amino acids (known as the acid box) between D1 and D2. This acid box can participate in the regulation of FGF binding to the FGFR. Immunoglobulin-like domains D2 and D3 are sufficient for FGF binding. FGFR family members differ from one another in their ligandaffinities and tissue distribution [, ]. Most FGFs can bind to several different FGFR subtypes. Indeed, FGF1 is sometimes referred to as the universal ligand, as it is capable of activating all of the different FGFRs []. However, there are some exceptions. For example, FGF7 only interacts with FGFR2 []and FGF18 was recently shown to only activate FGFR3 []. Fibroblast growth factor receptor 1 (FGFR1) binds both acidic and basic fibroblast growth factors and is involved in limb induction []. FGFR1 has been shown to be associated with Pfeiffer syndrome [], and cleft lip and/or palate [, ]. Fibroblast growth factor receptor 1 has been shown to interact with growth factor receptor-bound protein 14 (GRB14) [], Src homology 2 domain containing adaptor protein B (SHB) [], fibroblast growth factor receptor substrate 2 (FRS2)[]and fibroblast growth factor 1 (FGF1) [, ].This entry represents the catalytic domain of FGFR1. |
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| Protein Domain |
| Type: |
Family |
| Description: |
Fibroblast growth factors (FGFs) [, ]are a family of multifunctional proteins, often referred to as 'promiscuous growth 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 [].The FGFRs consist of an extracellular ligand-binding domain composed of three immunoglobulin-like domains (D1-D3), a single transmembrane helix domain, and an intracellular domain with tyrosine kinase activity []. The three immunoglobin(Ig)-like domains, D1, D2, and D3, present a stretch of acidic amino acids (known as the acid box) between D1 and D2. This acid box can participate in the regulation of FGF binding to the FGFR. Immunoglobulin-like domains D2 and D3 are sufficient for FGF binding. FGFR family members differ from one another in their ligand affinities and tissue distribution [, ]. Most FGFs can bind to several different FGFR subtypes. Indeed, FGF1 is sometimes referred to as the universal ligand, as it is capable of activating all of the different FGFRs []. However, there are some exceptions. For example, FGF7 only interacts with FGFR2 []and FGF18 was recently shown to only activate FGFR3 []. This entry represents the fibroblast growth factor receptor family. |
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| Publication |
| First Author: |
Duchesne L |
| Year: |
2006 |
| Journal: |
J Biol Chem |
| Title: |
N-glycosylation of fibroblast growth factor receptor 1 regulates ligand and heparan sulfate co-receptor binding. |
| Volume: |
281 |
| Issue: |
37 |
| Pages: |
27178-89 |
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•
•
•
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| Publication |
| First Author: |
Hughes SE |
| Year: |
1997 |
| Journal: |
J Histochem Cytochem |
| Title: |
Differential expression of the fibroblast growth factor receptor (FGFR) multigene family in normal human adult tissues. |
| Volume: |
45 |
| Issue: |
7 |
| Pages: |
1005-19 |
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•
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•
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| Publication |
| First Author: |
Cotton LM |
| Year: |
2008 |
| Journal: |
Endocr Rev |
| Title: |
Cellular signaling by fibroblast growth factors (FGFs) and their receptors (FGFRs) in male reproduction. |
| Volume: |
29 |
| Issue: |
2 |
| Pages: |
193-216 |
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•
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•
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| Publication |
| First Author: |
Santos-Ocampo S |
| Year: |
1996 |
| Journal: |
J Biol Chem |
| Title: |
Expression and biological activity of mouse fibroblast growth factor-9. |
| Volume: |
271 |
| Issue: |
3 |
| Pages: |
1726-31 |
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| Protein |
| Organism: |
Mus musculus/domesticus |
| Length: |
386
 |
| Fragment?: |
false |
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| 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 |
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| Protein |
| Organism: |
Mus musculus/domesticus |
| Length: |
822
 |
| Fragment?: |
false |
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•
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| Protein |
| Organism: |
Mus musculus/domesticus |
| Length: |
833
 |
| Fragment?: |
false |
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