Canine Recombinant IGFBP5 protein, hFc Tag (V2LY-0526-LY1262)

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Basic Information

Expressed Host
HEK293 Cells
Protein Species
Canine
Tag
hFc Tag
Protein Construction
This product is Canine Recombinant IGFBP5 protein, hFc Tag consist of Amino Acid: 1-271 and predicts a molecular mass of 55.5 kDa.
Molecule Mass
55.5 kDa
Sequence
Amino Acid: 1-271
Species
Canine

Formulations & Storage [For reference only, actual COA shall prevail!]

Purity
>95% as determined by SDS-PAGE
Endotoxin
Please contact us for more information.
Format
Lyophilized
Reconstitution
Allow the vial and reconstitution buffer to equilibrate to room temperature. Briefly centrifuge or tap down the vial to ensure that all lyophilized powder is collected at the bottom of the vial. For the reconstitution of this product, we recommend adding PBS or sterile water to achieve a final antibody concentration of 1 mg/mL. Allow the vial to reconstitute for 10-15 minutes at room temperature with gentle agitation. Avoid vigorous shaking that can cause foaming and antibody denaturation. Aliquot into volumes based on your experiment and store liquid protein at -20°C or -80°C for long time.
Buffer
Lyophilized from sterile PBS
Preservative
None
Storage
Samples are stable for up to twelve months from date of receipt at -20°C to -80°C. Store it under sterile conditions at -20°C to -80°C. It is recommended that the protein be aliquoted for optimal storage. Avoid repeated freeze-thaw cycles.
More Infomation

Target

Full Name
Insulin Like Growth Factor Binding Protein 5
Function
IGF-binding proteins prolong the half-life of the IGFs and have been shown to either inhibit or stimulate the growth promoting effects of the IGFs on cell culture. They alter the interaction of IGFs with their cell surface receptors.
Biological Process
Aging Source: Ensembl
Cellular response to cAMP Source: UniProtKB
Cellular response to organic cyclic compound Source: UniProtKB
Female pregnancy Source: Ensembl
Glucose homeostasis Source: Ensembl
Hair follicle morphogenesis Source: Ensembl
Intracellular signal transduction Source: Ensembl
Lung alveolus development Source: Ensembl
Mammary gland involution Source: Ensembl
Negative regulation of cell migration Source: BHF-UCL
Negative regulation of growth Source: Ensembl
Negative regulation of insulin-like growth factor receptor signaling pathway Source: BHF-UCL
Negative regulation of muscle tissue development Source: Ensembl
Negative regulation of osteoblast differentiation Source: Ensembl
Negative regulation of skeletal muscle hypertrophy Source: Ensembl
Negative regulation of smooth muscle cell migration Source: BHF-UCL
Negative regulation of smooth muscle cell proliferation Source: BHF-UCL
Negative regulation of translation Source: BHF-UCL
Osteoblast differentiation Source: Ensembl
Positive regulation of insulin-like growth factor receptor signaling pathway Source: Ensembl
Positive regulation of protein kinase B signaling Source: Ensembl
Positive regulation of vascular associated smooth muscle cell migration Source: BHF-UCL
Positive regulation of vascular associated smooth muscle cell proliferation Source: BHF-UCL
Regulation of cell growth Source: Ensembl
Regulation of insulin-like growth factor receptor signaling pathway Source: GO_Central
Response to growth hormone Source: AgBase
Signal transduction Source: ProtInc
Striated muscle cell differentiation Source: Ensembl
Type B pancreatic cell proliferation Source: Ensembl
Cellular Location
Secreted

Uzuncakmak, S. K., Aksakal, A., Kerget, F., Aydın, P., & Halıcı, Z. (2023). Evaluation of IGFBP5 expression and plasma osteopontin level in COVID-19 patients. Advances in Medical Sciences, 68(1), 31-37.

Dittmer, J. (2022). Biological effects and regulation of IGFBP5 in breast cancer. Frontiers in Endocrinology, 13, 983793.

Song, C., Wang, S., Fu, Z., Chi, K., Geng, X., Liu, C., ... & Hong, Q. (2022). IGFBP5 promotes diabetic kidney disease progression by enhancing PFKFB3-mediated endothelial glycolysis. Cell Death & Disease, 13(4), 340.

Hao, J., Yang, H., Cao, Y., Zhang, C., & Fan, Z. (2020). IGFBP5 enhances the dentinogenesis potential of dental pulp stem cells via JNK and ErK signalling pathways. Journal of Oral Rehabilitation, 47(12), 1557-1565.

Ji, Y., Zhang, W., Yang, J., & Li, C. (2020). MiR-193b inhibits autophagy and apoptosis by targeting IGFBP5 in high glucose-induced trophoblasts. Placenta, 101, 185-193.

Dong, C., Zhang, J., Fang, S., & Liu, F. (2020). IGFBP5 increases cell invasion and inhibits cell proliferation by EMT and Akt signaling pathway in Glioblastoma multiforme cells. Cell division, 15(1), 1-9.

Xiao, Z., Chu, Y., & Qin, W. (2020). IGFBP5 modulates lipid metabolism and insulin sensitivity through activating AMPK pathway in non-alcoholic fatty liver disease. Life Sciences, 256, 117997.

Zhang, L., Li, W., Cao, L., Xu, J., Qian, Y., Chen, H., ... & Yu, J. (2019). PKNOX2 suppresses gastric cancer through the transcriptional activation of IGFBP5 and p53. Oncogene, 38(23), 4590-4604.

Aizawa, C., Saito, K., & Ohshima, H. (2019). Regulation of IGF-I by IGFBP3 and IGFBP5 during odontoblast differentiation in mice. Journal of Oral Biosciences, 61(3), 157-162.

Xu, S., Xu, Y., Yin, M., Zhang, S., Liu, P., Koroleva, M., ... & Jin, Z. G. (2018). Flow-dependent epigenetic regulation of IGFBP5 expression by H3K27me3 contributes to endothelial anti-inflammatory effects. Theranostics, 8(11), 3007.

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For research use only. Not intended for any clinical use.

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We also offer labeled antibodies developed using our catalog antibody products and nonfluorescent conjugates (HRP, AP, Biotin, etc.) or fluorescent conjugates (Alexa Fluor, FITC, TRITC, Rhodamine, Texas Red, R-PE, APC, Qdot Probes, Pacific Dyes, etc.).

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