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Recombinant Human VEGFR1/Flt-1 Fc Chimera Protein

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Summary
Reactivity HuSpecies Glossary
Applications Bioactivity

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Recombinant Human VEGFR1/Flt-1 Fc Chimera Protein Summary

Details of Functionality
Measured by its ability to inhibit the VEGF-dependent proliferation of HUVEC human umbilical vein endothelial cells. Conn, G. et al. (1990) Proc. Natl. Acad. Sci. USA 87:1323. The ED50 for this effect is 5-30 ng/mL.
Source
Spodoptera frugiperda, Sf 21 (baculovirus)-derived human VEGFR1/Flt-1 protein
Human VEGFR1
(Ser27-His687)
Accession # AAC50060
IEGRMD Human IgG1
(Pro100-Lys330)
6-His tag
N-terminus C-terminus
Accession #
N-terminal Sequence
Ser27
Structure / Form
Disulfide-linked homodimer
Protein/Peptide Type
Recombinant Proteins
Gene
FLT1
Purity
>90%, by SDS-PAGE under reducing conditions and visualized by silver stain.
Endotoxin Note
<0.10 EU per 1 μg of the protein by the LAL method.

Applications/Dilutions

Dilutions
  • Bioactivity
Theoretical MW
100 kDa (monomer).
Disclaimer note: The observed molecular weight of the protein may vary from the listed predicted molecular weight due to post translational modifications, post translation cleavages, relative charges, and other experimental factors.
SDS-PAGE
123 kDa, reducing conditions
Publications
Read Publications using
321-FL in the following applications:

Packaging, Storage & Formulations

Storage
Use a manual defrost freezer and avoid repeated freeze-thaw cycles.
  • 12 months from date of receipt, -20 to -70 °C as supplied.
  • 3 months, 2 to 8 °C under sterile conditions after reconstitution.
Buffer
Lyophilized from a 0.2 μm filtered solution in MOPS, NaCl and CHAPS with BSA as a carrier protein.
Purity
>90%, by SDS-PAGE under reducing conditions and visualized by silver stain.
Reconstitution Instructions
Reconstitute at 100 μg/mL in sterile PBS containing at least 0.1% human or bovine serum albumin.

Notes

This product is produced by and ships from R&D Systems, Inc., a Bio-Techne brand.

Alternate Names for Recombinant Human VEGFR1/Flt-1 Fc Chimera Protein

  • EC 2.7.10
  • EC 2.7.10.1
  • FLT
  • FLT1
  • Flt-1
  • Fms-like tyrosine kinase 1
  • fms-related tyrosine kinase 1 (vascular endothelial growth factor/vascularpermeability factor receptor)
  • FRT
  • Tyrosine-protein kinase FRT
  • Tyrosine-protein kinase receptor FLT
  • vascular endothelial growth factor receptor 1
  • Vascular permeability factor receptor
  • VEGF R1
  • VEGFR1
  • VEGFR-1

Background

VEGFR1 (vascular endothelial growth factor receptor 1), also called Flt-1 (Fms-like tyrosine kinase), is a 180 kDa type I transmembrane glycoprotein in the class III subfamily of receptor tyrosine kinases (RTKs) (1, 2). While family members VEGFR1, VEGFR2/KDR/Flk-1 and VEGFR3/Flt-4 are all mainly expressed on endothelial cells and play central roles in vasculogenesis, angiogenesis, and lymphangiogenesis, only VEGFR1 is expressed on macrophages, and mainly plays inhibitory roles (1-3). VEGFR1 expression is also reported on osteoblasts, placental trophoblasts, renal mesangial cells, and some hematopoietic stem cells (1, 2). Like other class III RTKs, human VEGFR1 contains a signal peptide (aa 1-22), an extracellular domain (ECD aa 27-758) with seven Ig-like repeats, a transmembrane domain (aa 759-780) and a cytoplasmic region (aa 781-1338) with a tyrosine kinase domain and several autocatalytic phosphotyrosine sites. Human VEGFR1 ECD shares 78%, 78%, 84%, 87%, and 90% aa sequence identity with mouse, rat, porcine, canine and equine VEGFR1, respectively. Soluble forms of the VEGFR1 ECD are produced by alternative splicing, and may also be shed during regulated intracellular proteolysis (4-10). Both soluble and transmembrane forms can inhibit angiogenesis by binding and sequestering its ligands, VEGF (VEGF-A), VEGF-B or PlGF (6‑11). VEGFR1 dimerizes upon ligand binding, which can include heterodimerization with VEGFR2 that modifies VEGFR2-mediated endothelial proliferation and vessel branching (8, 11, 12). VEGFR1 binds VEGF with higher affinity than does VEGFR2, but shows weaker kinase activity (9, 13). Both PlGF and VEGF induce autophosphorylation of transmembrane VEGFR1 (5, 9, 13). While deletion of mouse VEGFR1 is lethal due to overgrowth and disorganization of the vasculature, kinase-inactive mutants are viable (13, 14). VEGFR1 is up‑regulated during hypoxia, and participates in neovascularization and wound healing (1, 2, 15). VEGFR1 engagement on monocyte/macrophage lineage cells enhances their migration, and release of growth factors and cytokines (1, 3, 13, 16). Lymphangiogenesis, angiogenesis, and growth-promoting effects of VEGFR1 are thought to result from enhanced migration of macrophages from the bone marrow to tumors and tissues where they recruit endothelial progenitors (3, 16). Circulating levels of VEGFR1 increase during pregnancy and are further elevated in preeclampsia (4, 6, 17).

  1. Otrock, Z.K. et al. (2007) Blood Cells Mol. Dis. 38:258.
  2. Peters, K.G. et al. (1993) Proc. Natl. Acad. Sci. USA 90:8915.
  3. Murakami, M. et al. (2008) Arterioscler. Thromb. Vasc. Biol. 28:658.
  4. Al-Ani, B. et al. (2010) Hypertension 55:689.
  5. Rahimi, N. et al. (2009) Cancer Res. 69:2607.
  6. He, Y. et al. (1999) Molecular Endocrinology 13:537.
  7. Cai, J. et al. (2012) EMBO Mol. Med. 4:980.
  8. Kendall, R.L. and K.A. Thomas (1993) Proc. Natl. Acad. Sci. USA 90:10705.
  9. Sawano, A. et al. (1996) Cell Growth Differ. 7:213.
  10. Barleon, B. et al. (1997) J. Biol. Chem. 272:10382.
  11. Kappas, N.C. et al. (2008) J. Cell Biol. 181:847.
  12. Mac Gabhann, F. and A.S. Popel (2007) Biophys. Chem. 128:125.
  13. Hiratsuka, S. et al. (1998) Proc. Natl. Acad. Sci. USA 95:9349.
  14. Fong, G.H. et al. (1995) Nature 376:66.
  15. Nishi, J. et al. (2008) Circ. Res. 103:261.
  16. Muramatsu, M. et al. (2010) Cancer Res. 70:8211.
  17. Levine, R.J. et al. (2004) N. Engl. J. Med. 350:672.

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Publications for VEGFR1/Flt-1 (321-FL)(41)

We have publications tested in 7 confirmed species: Human, Mouse, Rat, Avian - Quail, N/A, Porcine, Primate - Macaca mulatta (Rhesus Macaque).

We have publications tested in 11 applications: Binding Assay, Bioassay, Cell Culture, ELISA, ELISA (Standard), ELISA Capture, Enzyme Assay, Hemofiltration Procedure, IHC, In Vivo, Surface Plasmon Resonance.


Filter By Application
Binding Assay
(2)
Bioassay
(25)
Cell Culture
(1)
ELISA
(1)
ELISA (Standard)
(2)
ELISA Capture
(2)
Enzyme Assay
(1)
Hemofiltration Procedure
(1)
IHC
(1)
In Vivo
(5)
Surface Plasmon Resonance
(3)
All Applications
Filter By Species
Human
(28)
Mouse
(6)
Rat
(2)
Avian - Quail
(1)
N/A
(1)
Porcine
(2)
Primate - Macaca mulatta (Rhesus Macaque)
(1)
All Species
Showing Publications 1 - 10 of 41. Show All 41 Publications.
Publications using 321-FL Applications Species
A Schulz, CC Drost, B Hesse, K Beul, M Brand, GS Di Marco The Soluble Fms-like Tyrosine Kinase-1 Contributes to Structural and Functional Changes in Endothelial Cells in Chronic Kidney Disease International Journal of Molecular Sciences, 2022-12-16;23(24):. 2022-12-16 [PMID: 36555698] (Cell Culture, Human) Cell Culture Human
AV Yagolovich, AA Artykov, AA Isakova, YV Vorontsova, DA Dolgikh, MP Kirpichnik, ME Gasparian Optimized Heterologous Expression and Efficient Purification of a New TRAIL-Based Antitumor Fusion Protein SRH-DR5-B with Dual VEGFR2 and DR5 Receptor Specificity International Journal of Molecular Sciences, 2022-05-24;23(11):. 2022-05-24 [PMID: 35682540] (ELISA Capture, Human) ELISA Capture Human
R Beckmann, K Jensen, S Fenn, J Speck, K Krause, A Meier, M Röth, S Fauser, R Kimbung, DT Logan, M Steegmaier, H Kettenberg DutaFabs are engineered therapeutic Fab fragments that can bind two targets simultaneously Nature Communications, 2021-01-29;12(1):708. 2021-01-29 [PMID: 33514724] (ELISA Capture, Human) ELISA Capture Human
SB Mamer, A Wittenkell, PI Imoukhuede VEGF-A splice variants bind VEGFRs with differential affinities Sci Rep, 2020-09-02;10(1):14413. 2020-09-02 [PMID: 32879419] (Bioassay, Surface Plasmon Resonance, Human, N/A) Bioassay, Surface Plasmon Resonance Human, N/A
F Njau, N Shushakova, H Schenk, VC Wulfmeyer, R Bollin, J Menne, H Haller Calcium dobesilate reduces VEGF signaling by interfering with heparan sulfate binding site and protects from vascular complications in diabetic mice PLoS ONE, 2020-01-14;15(1):e0218494. 2020-01-14 [PMID: 31935212] (Bioassay, Human) Bioassay Human
M Verma, Y Shimizu-Mo, Y Asakura, JP Ennen, J Bosco, Z Zhou, GH Fong, S Josiah, D Keefe, A Asakura Inhibition of FLT1 ameliorates muscular dystrophy phenotype by increased vasculature in a mouse model of Duchenne muscular dystrophy PLoS Genet., 2019-12-26;15(12):e1008468. 2019-12-26 [PMID: 31877123] (Surface Plasmon Resonance, Mouse) Surface Plasmon Resonance Mouse
JA Buczek-Tho, CB Rich, MA Nugent Hypoxia Induced Heparan Sulfate Primes the Extracellular Matrix for Endothelial Cell Recruitment by Facilitating VEGF-Fibronectin Interactions Int J Mol Sci, 2019-10-12;20(20):. 2019-10-12 [PMID: 31614727] (Bioassay, Human) Bioassay Human
M Verma, Y Asakura, BSR Murakonda, T Pengo, C Latroche, B Chazaud, LK McLoon, A Asakura Muscle Satellite Cell Cross-Talk with a Vascular Niche Maintains Quiescence via VEGF and Notch Signaling Cell Stem Cell, 2018-10-04;23(4):530-543.e9. 2018-10-04 [PMID: 30290177] (Bioassay, In Vivo, Mouse) Bioassay, In Vivo Mouse
KC Wheeler, MK Jena, BS Pradhan, N Nayak, S Das, CD Hsu, DS Wheeler, K Chen, NR Nayak VEGF may contribute to macrophage recruitment and M2 polarization in the decidua PLoS ONE, 2018-01-11;13(1):e0191040. 2018-01-11 [PMID: 29324807] (Bioassay, Human) Bioassay Human
SB Mamer, S Chen, JC Weddell, A Palasz, A Wittenkell, M Kumar, PI Imoukhuede Discovery of High-Affinity PDGF-VEGFR Interactions: Redefining RTK Dynamics Sci Rep, 2017-11-27;7(1):16439. 2017-11-27 [PMID: 29180757] (Surface Plasmon Resonance, Human) Surface Plasmon Resonance Human
Show All 41 Publications.

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Bioinformatics

Gene Symbol FLT1
Uniprot