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Recombinant Mouse sFRP-1 Protein, CF

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Recombinant Mouse sFRP‑1 Protein (Catalog # 9019-SF/CF) inhibits Wnt induced TCF reporter activity in HEK293 human embryonic kidney cells. The ED50 for this effect is 0.600-7.20 μg/mL.

Product Details

Summary
Reactivity MuSpecies Glossary
Applications Bioactivity
Format
Carrier-Free

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Recombinant Mouse sFRP-1 Protein, CF Summary

Details of Functionality
Measured by its ability to inhibit Wnt induced TCF reporter activity in HEK293 human embryonic kidney cells. The ED50 for this effect is 0.600-7.20 μg/mL.
Source
Human embryonic kidney cell, HEK293-derived mouse sFRP-1 protein
Ser32-Lys314
Accession #
N-terminal Sequence
Ser32
Protein/Peptide Type
Recombinant Proteins
Gene
Sfrp1
Purity
>95%, by SDS-PAGE visualized with Silver Staining and quantitative densitometry by Coomassie® Blue Staining.
Endotoxin Note
<0.10 EU per 1 μg of the protein by the LAL method.

Applications/Dilutions

Dilutions
  • Bioactivity
Theoretical MW
33 kDa.
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
37-43 kDa, reducing conditions
Publications
Read Publications using
9019-SF/CF 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.
  • 1 month, 2 to 8 °C under sterile conditions after reconstitution.
  • 3 months, -20 to -70 °C under sterile conditions after reconstitution.
Buffer
Lyophilized from a 0.2 μm filtered solution in NaH2PO4 and NaCl.
Purity
>95%, by SDS-PAGE visualized with Silver Staining and quantitative densitometry by Coomassie® Blue Staining.
Reconstitution Instructions
Reconstitute at 500 μg/mL in PBS.

Notes

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

Alternate Names for Recombinant Mouse sFRP-1 Protein, CF

  • FRP1
  • FRP-1FrzA
  • FRPSARP-2
  • FrzA
  • SARP-2
  • SARP2sFRP-1
  • Secreted apoptosis-related protein 2
  • secreted frizzled-related protein 1
  • sFRP1
  • sFRP-1

Background

Secreted Frizzled Related Protein-1 (sFRP-1), also known as SARP-2, FRP, and FrzA, belongs to a family of Wnt-binding proteins with homology to the ligand-binding domain of the Frizzled transmembrane Wnt receptors. The sFRP proteins are approximately 30-35 kDa in size and contain an N-terminal Frizzled-like domain with 10 conserved cysteines and a Netrin-like C-terminal domain (1-3). Mature mouse sFRP-1 shares 97% amino acid sequence identity with human and rat sFRP-1. It binds to Wnt-1, -2, -3a, and -4 and prevents their activation of canonical beta-catenin signaling (4-7). sFRP-1 is up-regulated in the ischemic heart where it limits inflammation and the severity of tissue damage following myocardial infarction (8-10). During angiogenesis it induces endothelial cell migration, tube formation, and vessel formation (11). sFRP-1 is expressed by bone marrow stromal cells and osteoclasts (12). It binds to TRANCE/RANK Ligand, inhibits osteoclast and osteoblast formation and survival, and inhibits the formation of trabecular bone (13, 14). sFRP-1 additionally restricts kidney tubule formation (7), the inflammatory activation of leukocytes (10), early B lymphoid progression (12), and vitreous fluid outflow in the eye (15).
  1. Cruciat, C.M. and C. Niehrs (2013) Cold Spring Harb. Perspect. Biol. 5:e015081.
  2. van Amerongen, R. and R. Nusse (2009) Development 136:3205.
  3. Rattner, A. et al. (1997) Proc. Natl. Acad. Sci. USA 94:2859.
  4. Bafico, A. et al. (1999) J. Biol. Chem. 274:16180.
  5. Dennis, S. et al. (1999) J. Cell Sci. 112:3815.
  6. Wawrzak, D. et al. (2007) Biochem. Biophys. Res. Commun. 357:1119.
  7. Yoshino, K. et al. (2001) Mech. Dev. 102:45.
  8. Barandon, L. et al. (2002) Circulation 108:2282.
  9. Sklepkiewicz, P. et al. (2015) Circ. Heart Fail. 8:362.
  10. Barandon, L. et al. (2011) Arterioscler. Thromb. Vasc. Biol. 31:e80.
  11. Dufourcq, P. et al. (2002) Circ. Res. 106:3097.
  12. Yokota, T. et al. (2008) J. Immunol. 181:6061.
  13. Hausler, K.D. et al. (2004) J. Bone Miner. Res. 19:1873.
  14. Bodine, P.V.N. et al. (2004) Mol. Endocrinol. 18:1222.
  15. Wang, W.-H. et al. (2008) J. Clin. Invest. 118:1056.

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Publications for sFRP-1 (9019-SF/CF)(10)

We have publications tested in 2 confirmed species: Human, Mouse.

We have publications tested in 2 applications: Bioassay, In Vivo.


Filter By Application
Bioassay
(9)
In Vivo
(1)
All Applications
Filter By Species
Human
(1)
Mouse
(9)
All Species
Showing Publications 1 - 10 of 10.
Publications using 9019-SF/CF Applications Species
A Huyghe, G Furlan, J Schroeder, E Cascales, A Trajkova, M Ruel, F Stüder, M Larcombe, YB Yang Sun, F Mugnier, L De Matteo, A Baygin, J Wang, Y Yu, N Rama, B Gibert, J Kielbassa, L Tonon, P Wajda, N Gadot, M Brevet, M Siouda, P Mulligan, R Dante, P Liu, H Gronemeyer, M Mendoza-Pa, JM Polo, F Lavial Comparative roadmaps of reprogramming and oncogenic transformation identify Bcl11b and Atoh8 as broad regulators of cellular plasticity Nature Cell Biology, 2022-09-08;24(9):1350-1363. 2022-09-08 [PMID: 36075976] (Bioassay, Mouse) Bioassay Mouse
ME Fane, Y Chhabra, GM Alicea, DA Maranto, SM Douglass, MR Webster, VW Rebecca, GE Marino, F Almeida, BL Ecker, DJ Zabransky, L Hüser, T Beer, HY Tang, A Kossenkov, M Herlyn, DW Speicher, W Xu, X Xu, EM Jaffee, JA Aguirre-Gh, AT Weeraratna Stromal changes in the aged lung induce an emergence from melanoma dormancy Nature, 2022-06-01;606(7913):396-405. 2022-06-01 [PMID: 35650435] (Bioassay, Mouse) Bioassay Mouse
Y Endo, D Asanuma, S Namiki, K Sugihara, K Hirose, A Uemura, Y Kubota, T Miura Quantitative modeling of regular retinal microglia distribution Scientific Reports, 2021-11-22;11(1):22671. 2021-11-22 [PMID: 34811401] (Bioassay, Mouse) Bioassay Mouse
P Limraksasi, Y Kosaka, M Zhang, N Horie, T Kondo, H Okawa, M Yamada, H Egusa Shaking culture enhances chondrogenic differentiation of mouse induced pluripotent stem cell constructs Sci Rep, 2020-09-14;10(1):14996. 2020-09-14 [PMID: 32929163] (Bioassay, Mouse) Bioassay Mouse
W Liang, P Han, EH Kim, J Mak, R Zhang, AG Torrente, JI Goldhaber, E Marbán, HC Cho Canonical Wnt signaling promotes pacemaker cell specification of cardiac mesodermal cells derived from mouse and human embryonic stem cells Stem Cells, 2019-12-30;0(0):. 2019-12-30 [PMID: 31648393] (Bioassay, Mouse) Bioassay Mouse
L Wang, Y Wang, Y Meng, C Zhang, L Di GSK3-activated STAT5 regulates expression of SFRPs to modulate adipogenesis FASEB J., 2018-03-26;0(0):fj201701314R. 2018-03-26 [PMID: 29579399] (Bioassay, Mouse) Bioassay Mouse
K Saito-Diaz, H Benchabane, A Tiwari, A Tian, B Li, JJ Thompson, AS Hyde, LM Sawyer, JN Jodoin, E Santos, LA Lee, RJ Coffey, RD Beauchamp, CS Williams, AK Kenworthy, DJ Robbins, Y Ahmed, E Lee APC Inhibits Ligand-Independent Wnt Signaling by the Clathrin Endocytic Pathway Dev. Cell, 2018-03-12;44(5):566-581.e8. 2018-03-12 [PMID: 29533772] (Bioassay, Human) Bioassay Human
R Ichijo, H Kobayashi, S Yoneda, Y Iizuka, H Kubo, S Matsumura, S Kitano, H Miyachi, T Honda, F Toyoshima Tbx3-dependent amplifying stem cell progeny drives interfollicular epidermal expansion during pregnancy and regeneration Nat Commun, 2017-09-11;8(1):508. 2017-09-11 [PMID: 28894084] (In Vivo, Mouse) In Vivo Mouse
Yu C, Nguyen T, Irvine K, Sweet M, Frazer I, Blumenthal A Recombinant Wnt3a and Wnt5a elicit macrophage cytokine production and tolerization to microbial stimulation via Toll-like receptor 4. Eur J Immunol, 2014-03-07;44(5):1480-90. 2014-03-07 [PMID: 24643512] (Bioassay, Mouse) Bioassay Mouse
Li S, Meyer N, Quarto N, Longaker M Integration of multiple signaling regulates through apoptosis the differential osteogenic potential of neural crest-derived and mesoderm-derived Osteoblasts. PLoS ONE, 2013-03-25;8(3):e58610. 2013-03-25 [PMID: 23536803] (Bioassay, Mouse) Bioassay Mouse

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Bioinformatics

Gene Symbol Sfrp1
Uniprot