Recombinant Mouse TGF-beta 1 Protein, CF

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Recombinant mouse TGF-beta 1 (7666-MB/CF) inhibits IL-4-dependent proliferation in the HT-2 mouse T cell line. The ED50 for this effect is 0.04-0.2 ng/mL.

Product Details

Summary
Reactivity MuSpecies Glossary
Applications Bioactivity
Format
Carrier-Free

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Recombinant Mouse TGF-beta 1 Protein, CF Summary

Details of Functionality
Measured by its ability to inhibit the IL-4-dependent proliferation of HT‑2 mouse T cells. Tsang, M. et al. (1995) Cytokine 7:389. The ED50 for this effect is 0.04-0.2 ng/mL.
Source
Chinese Hamster Ovary cell line, CHO-derived mouse TGF-beta 1 protein
Ala279-Ser390
Accession #
N-terminal Sequence
Ala279
Structure / Form
Disulfide-linked homodimer
Protein/Peptide Type
Recombinant Proteins
Gene
Tgfb1
Purity
>95%, by SDS-PAGE visualized with Silver Staining and quantitative densitometry by Coomassie® Blue Staining.
Endotoxin Note
<0.01 EU per 1 μg of the protein by the LAL method.

Applications/Dilutions

Dilutions
  • Bioactivity
Theoretical MW
12.8 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
10.5 kDa, reducing conditions
Publications
Read Publications using
7666-MB/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 HCl.
Purity
>95%, by SDS-PAGE visualized with Silver Staining and quantitative densitometry by Coomassie® Blue Staining.
Reconstitution Instructions
Reconstitute at 50 μg/mL in 4 mM HCl.

Notes

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

Alternate Names for Recombinant Mouse TGF-beta 1 Protein, CF

  • CEDLAP
  • DPD1
  • latency-associated peptide
  • TGF beta
  • TGF beta1
  • TGFB
  • TGFB1
  • TGF-beta 1 protein
  • TGFbeta 1
  • TGF-beta 1
  • TGFbeta
  • TGF-beta-1
  • transforming growth factor beta-1
  • transforming growth factor, beta 1

Background

TGF-beta 1 (transforming growth factor beta 1) is one of three closely related mammalian members of the large TGF‑ beta superfamily that share a characteristic cystine knot structure (1‑7). TGF‑ beta 1, -2 and -3 are highly pleiotropic cytokines that are proposed to act as cellular switches that regulate processes such as immune function, proliferation and epithelial‑mesenchymal transition (1‑4). Each TGF‑ beta isoform has some non‑redundant functions; for TGF‑ beta 1, mice with targeted deletion show defects in hematopoiesis and endothelial differentiation, and die of overwhelming inflammation (2). Human or mouse TGF‑ beta 1 cDNA encodes a 390 amino acid (aa) precursor that contains a 29 aa signal peptide and a 361 aa proprotein (8). A furin‑like convertase processes the proprotein to generate an N‑terminal 249 aa latency‑associated peptide (LAP) and a C‑terminal 112 aa mature TGF‑ beta 1 (8, 9). Disulfide‑linked homodimers of LAP and TGF‑ beta 1 remain non‑covalently associated after secretion, forming the small latent TGF‑ beta 1 complex (8‑10). Covalent linkage of LAP to one of three latent TGF‑ beta binding proteins (LTBPs) creates a large latent complex that may interact with the extracellular matrix (9, 10). TGF‑ beta is activated from latency by pathways that include actions of the protease plasmin, matrix metalloproteases, thrombospondin 1 and a subset of integrins (10). Mature mouse TGF‑ beta 1 shares 99‑100% aa sequence identity with human, rat, equine, porcine, canine and bovine TGF‑ beta 1. It demonstrates cross‑species activity (1). TGF‑ beta 1 signaling begins with high‑affinity binding to a type II ser/thr kinase receptor termed TGF‑ beta  RII. This receptor then phosphorylates and activates a second ser/thr kinase receptor, TGF‑ beta  RI (also called activin receptor‑like kinase (ALK) ‑5), or alternatively, ALK‑1. This complex phosphorylates and activates Smad proteins that regulate transcription (3, 11, 12). Contributions of the accessory receptors betaglycan (also known as TGF‑ beta  RIII) and endoglin, or use of Smad‑independent signaling pathways, allow for disparate actions observed in response to TGF‑ beta in different contexts (11).

  1. Derynck, R. and K. Miyazono (2008) Cold Spring Harbor Laboratory Press, 29.
  2. Dunker, N. and K. Krieglstein (2000) Eur. J. Biochem. 267:6982.
  3. Wahl, S.M. (2006) Immunol. Rev. 213:213.
  4. Chang, H. et al. (2002) Endocr. Rev. 23:787.
  5. Lin, J.S. et al. (2006) Reproduction 132:179.
  6. Hinck, A.P. et al. (1996) Biochemistry 35:8517.
  7. Mittl, P.R.E. et al. (1996) Protein Sci. 5:1261.
  8. Derynck, R. et al. (1985) Nature 316:701.
  9. Miyazono, K. et al. (1988) J. Biol. Chem. 263:6407.
  10. Oklu, R. and R. Hesketh (2000) Biochem. J. 352:601.
  11. de Caestecker, M. et al. (2004) Cytokine Growth Factor Rev. 15:1.
  12. Zuniga, J.E. et al. (2005) J. Mol. Biol. 354:1052.

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7666-MB/CF
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Publications for TGF-beta 1 (7666-MB/CF)(323)

We have publications tested in 6 confirmed species: Human, Mouse, Rat, Canine, N/A, Transgenic Mouse.

We have publications tested in 8 applications: Bioassay, Cell Culture, ELISA Developmet, ELISA Standard, In Vivo, Stimulation, Surface Plasmon Resonance, Tissue Culture.


Filter By Application
Bioassay
(283)
Cell Culture
(29)
ELISA Developmet
(1)
ELISA Standard
(1)
In Vivo
(8)
Stimulation
(1)
Surface Plasmon Resonance
(1)
Tissue Culture
(1)
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Filter By Species
Human
(3)
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(310)
Rat
(10)
Canine
(1)
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(1)
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(4)
All Species
Showing Publications 1 - 10 of 323. Show All 323 Publications.
Publications using 7666-MB/CF Applications Species
Cruz, LC;Habibovic, A;Dempsey, B;Massafera, MP;Janssen-Heininger, YMW;Lin, MJ;Hoffman, ET;Weiss, DJ;Huang, SK;van der Vliet, A;Meotti, FC; Identification of tyrosine brominated extracellular matrix proteins in normal and fibrotic lung tissues Redox biology 2024-05-01 [PMID: 38430684] (Bioassay, Mouse) Bioassay Mouse
L�tge, M;De Martin, A;Gil-Cruz, C;Perez-Shibayama, C;Stanossek, Y;Onder, L;Cheng, HW;Kurz, L;Cadosch, N;Soneson, C;Robinson, MD;Stoeckli, SJ;Ludewig, B;Pikor, NB; Conserved stromal-immune cell circuits secure B cell homeostasis and function Nature immunology 2023-05-18 [PMID: 37202489] (Bioassay, Mouse) Bioassay Mouse
D Irala, S Wang, K Sakers, L Nagendren, FP Ulloa-Seve, DS Bindu, C Eroglu Astrocyte-Secreted Neurocan Controls Inhibitory Synapse Formation and Function bioRxiv : the preprint server for biology, 2023-04-03;0(0):. 2023-04-03 [PMID: 37066164] (Bioassay, Mouse) Bioassay Mouse
Y Liao, L Sun, M Nie, J Li, X Huang, S Heng, W Zhang, T Xia, Z Guo, Q Zhao, LJ Zhang Modulation of Skin Inflammatory Responses by Aluminum Adjuvant Pharmaceutics, 2023-02-08;15(2):. 2023-02-08 [PMID: 36839900] (Bioassay, Mouse) Bioassay Mouse
C Yi, J Liu, W Deng, C Luo, J Qi, M Chen, H Xu Old age promotes retinal fibrosis in choroidal neovascularization through circulating fibrocytes and profibrotic macrophages Journal of Neuroinflammation, 2023-02-23;20(1):45. 2023-02-23 [PMID: 36823538] (Bioassay, Mouse) Bioassay Mouse
S De Scheppe, JZ Ge, G Crowley, LSS Ferreira, D Garceau, CE Toomey, D Sokolova, J Rueda-Carr, SH Shin, JS Kim, T Childs, T Lashley, JJ Burden, M Sasner, C Sala Frige, S Jung, S Hong Perivascular cells induce microglial phagocytic states and synaptic engulfment via SPP1 in mouse models of Alzheimer&#039;s disease Nature Neuroscience, 2023-02-06;0(0):. 2023-02-06 [PMID: 36747024] (Bioassay, Mouse) Bioassay Mouse
RK Gurram, D Wei, Q Yu, MJ Butcher, X Chen, K Cui, G Hu, M Zheng, X Zhu, J Oh, B Sun, JF Urban, K Zhao, WJ Leonard, J Zhu Crosstalk between ILC2s and Th2 cells varies among mouse models Cell Reports, 2023-02-02;42(2):112073. 2023-02-02 [PMID: 36735533] (Bioassay, Mouse) Bioassay Mouse
T Kasuya, S Tanaka, J Tamura, K Etori, J Shoda, K Hattori, Y Endo, M Kitajima, T Kageyama, T Iwamoto, M Yokota, A Iwata, A Suto, K Suzuki, H Suzuki, SF Ziegler, H Nakajima Epithelial cell-derived cytokine TSLP activates regulatory T cells by enhancing fatty acid uptake Scientific Reports, 2023-01-30;13(1):1653. 2023-01-30 [PMID: 36717741] (Cell Culture, Mouse) Cell Culture Mouse
TT Li, XW Su, LL Chen, WN Zhang, JP Zhang, Y Wang, WH Xu Roxarsone inhibits hepatic stellate cell activation and ameliorates liver fibrosis by blocking TGF-beta1/Smad signaling pathway International immunopharmacology, 2022-12-19;114(0):109527. 2022-12-19 [PMID: 36700762] (Cell Culture, Human) Cell Culture Human
L Tang, M Zhu, X Che, X Yang, Y Xu, Q Ma, M Zhang, Z Ni, X Shao, S Mou Astragaloside IV Targets Macrophages to Alleviate Renal Ischemia-Reperfusion Injury via the Crosstalk between Hif-1alpha and NF-kappaB (p65)/Smad7 Pathways Journal of personalized medicine, 2022-12-27;13(1):. 2022-12-27 [PMID: 36675720] (Bioassay, Mouse) Bioassay Mouse
Show All 323 Publications.

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Blogs on TGF-beta 1.

TGF-beta 1 - a versatile signaling molecule with roles in development and disease
The transforming growth factor-beta (TGF-beta) family consists of a wide variety of signaling proteins with roles in development. TGF-beta signaling controls growth, differentiation, and immune responses and is often misregulated in cancer. TGF-beta ...  Read full blog post.

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Bioinformatics

Gene Symbol Tgfb1
Uniprot