FGFR-4 Protein, Human (Biotinylated, HEK293, His)
The FGFR-4 protein is a tyrosine protein kinase and cell surface receptor for fibroblast growth factor that regulates diverse cellular processes such as proliferation, differentiation, migration, lipid metabolism, and bile acid biosynthesis. Notably, it contributes to the downregulation of the bile acid synthase CYP7A1 in response to FGF19. FGFR-4 Protein, Human (Biotinylated, HEK293, His) is the recombinant human-derived FGFR-4 protein, expressed by HEK293 , with C-His labeled tag.
- Species: Human
- Source: HEK293
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Storage:Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Biological Activity
Description
The FGFR-4 protein is a tyrosine protein kinase and cell surface receptor for fibroblast growth factor that regulates diverse cellular processes such as proliferation, differentiation, migration, lipid metabolism, and bile acid biosynthesis. Notably, it contributes to the downregulation of the bile acid synthase CYP7A1 in response to FGF19. FGFR-4 Protein, Human (Biotinylated, HEK293, His) is the recombinant human-derived FGFR-4 protein, expressed by HEK293 , with C-His labeled tag.
Background
FGFR-4 protein is a tyrosine-protein kinase that functions as a cell-surface receptor for fibroblast growth factors. It plays a crucial role in regulating cell proliferation, differentiation, migration, lipid metabolism, bile acid biosynthesis, glucose uptake, vitamin D metabolism, and phosphate homeostasis. One of its important functions is to facilitate the down-regulation of CYP7A1, the key enzyme in bile acid synthesis, in response to FGF19. Upon ligand binding, FGFR-4 phosphorylates PLCG1 and FRS2, leading to the activation of various signaling cascades. This activation results in the production of diacylglycerol and inositol 1,4,5-trisphosphate, which are important cellular signaling molecules. Additionally, phosphorylation of FRS2 triggers the recruitment of GRB2, GAB1, PIK3R1, and SOS1, leading to the activation of RAS, MAPK1/ERK2, MAPK3/ERK1, and the AKT1 signaling pathway. FGFR-4 also promotes the SRC-dependent phosphorylation of MMP14, a matrix protease, and facilitates its lysosomal degradation. The signaling of FGFR-4 is tightly regulated through receptor internalization and degradation, and MMP14 aids in this process. However, mutations that result in constitutive kinase activation or impair normal FGFR-4 inactivation can lead to aberrant signaling.
Technical Parameters
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Species Human
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Source HEK293
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Tag C-His
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Accession
P22455-1 (L22-D369)
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Molecular Construction
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N-term
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FGFR-4 (L22-D369)
Accession # P22455-1 -
His
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C-term
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Protein Length
Extracellular Domain
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Conjugation
Biotin
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Synonyms
FGFR4; Receptor Protein-Tyrosine Kinase; Fibroblast Growth Factor Receptor 4; Hydroxyaryl-Protein Kinase; JTK2; Protein-Tyrosine Kinase; TKF; Soluble FGFR4 Variant 1; CD334; Tyrosylprotein Kinase; Tyrosine Kinase Related To Fibroblast Growth Factor Recept
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AA Sequence
LEASEEVELEPCLAPSLEQQEQELTVALGQPVRLCCGRAERGGHWYKEGSRLAPAGRVRGWRGRLEIASFLPEDAGRYLCLARGSMIVLQNLTLITGDSLTSSNDDEDPKSHRDPSNRHSYPQQAPYWTHPQRMEKKLHAVPAGNTVKFRCPAAGNPTPTIRWLKDGQAFHGENRIGGIRLRHQHWSLVMESVVPSDRGTYTCLVENAVGSIRYNYLLDVLERSPHRPILQAGLPANTTAVVGSDVELLCKVYSDAQPHIQWLKHIVINGSSFGADGFPYVQVLKTADINSSEVEVLYLRNVSAEDAGEYTCLAGNSIGLSYQSAWLTVLPEEDPTWTAAAPEARYTD
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Predicted Molecular Mass
40 kDa
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Molecular Weight
Approximately 61 kDa, based on SDS-PAGE under reducing conditions, due to the glycosylation.
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Glycosylation
Yes
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Purity
≥ 90%, as determined by reducing SDS-PAGE.
Product Properties
Solution.
<1 EU/μg, determined by LAL method.
Please use rapid thawing with running water to thaw the protein.
Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Shipping with dry ice.
Documentation
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)