Purpose | C-Series Human Growth Factor Antibody Array 1 Kit. Detects 41 Human Growth Factors. Suitable for all liquid sample types. |
Brand | RayBio? |
Sample Type | Serum, Plasma, Cell Culture Supernatant, Cell Lysate, Tissue Lysate |
Analytical Method | Semi-Quantitative |
Detection Method | Chemiluminescent |
Specificity | Amphiregulin, bFGF, beta-NGF, EGF, EGFR, FGF-4, FGF-6, FGF-7 (KGF), GCSF, GDNF, GM-CSF, HB-EGF, HGF, IGFBP-1, IGFBP-2, IGFBP-3, IGFBP-4, IGFBP-6, IGF-1, IGF-1 R, IGF-2, M-CSF, M-CSF R, NT-3, NT-4, PDGF R alpha, PDGF R beta, PDGF-AA, PDGF-AB, PDGF-BB, PLGF, SCF, SCF R (CD117/c-kit), TGF alpha, TGF beta 1, TGF beta 2, TGF beta 3, VEGF-A, VEGFR2, VEGFR3, VEGF-D |
Characteristics |
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Components |
Antibody Array Membranes Biotinylated Detection Antibody Cocktail Blocking Buffer Wash Buffers 1 and 2 Cell & Tissue Lysis Buffer Detection Buffers C and D Plastic Incubation Tray Protease Inhibitor Cocktail (in select kits) |
Material not included |
Pipettors, pipet tips and other common lab consumables Orbital shaker or oscillating rocker Tissue Paper, blotting paper or chromatography paper Adhesive tape or Saran Wrap Distilled or de-ionized water A chemiluminescent blot documentation system (such as UVP's ChemiDoc-It? or EpiChem II Benchtop Darkroom), X-ray Film and a suitable film processor, or another chemiluminescent detection system. |
Application Notes |
Perform ALL incubation and wash steps under gentle rotation or rocking motion (~0.5 to 1 cycle/sec) using an orbital shaker or oscillating rocker to ensure complete and even reagent/sample coverage. Rocking/rotating too vigorously may cause foaming or bubbles to appear on the membrane surface which, should be avoided. All washes and incubations should be performed in the Incubation Tray (ITEM 10) provided in the kit. Cover the Incubation Tray with the lid provided during all incubation steps to avoid evaporation and outside debris contamination. Ensure the membranes are completely covered with sufficient sample or reagent volume during each incubation. Avoid forceful pipetting directly onto the membrane, instead, gently pipette samples and reagents into a corner of each well. Aspirate samples and reagents completely after each step by suctioning off excess liquid with a pipette. Tilting the tray so the liquid moves to a corner and then pipetting is an effective method. Optional overnight incubations may be performed for the following step to increase overall spot signal intensities: - Sample Incubation - Biotinylated Antibody Cocktail Incubation - HRP-Streptavidin Incubation |
Comment |
The C-Series arrays feature chemiluminescent signal detection. The antibodies are spotted on nitrocellulose membrane solid supports and are handled in a very similar manner to Western blots. |
Sample Volume | 1 mL |
Plate | Membrane |
Protocol |
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Sample Preparation |
Use serum-free conditioned media if possible. If serum-containing conditioned media is required, it is highly recommended that complete medium be used as a control since many types of sera contains cytokines. We recommend the following parameters for your samples: 50 to 100 μl of original or diluted serum, plasma, cell culture media, or other body fluid, or 50-500 μg/ml of protein for cell and tissue lysates. If you experience high background or if the fluorescent signal intensities exceed the detection range, further dilution of your sample is recommended. |
Assay Procedure |
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Calculation of Results |
Visual comparison of array images may be sufficient to see differences in relative protein expression. However, most researchers will want to perform numerical comparisons of the signal intensities (or more precisely, signal densities), using 2-D densitometry. Gel/Blot documentation systems and other chemiluminescent or phosphorescent detection systems are usually sold as a package with compatible densitometry software. Any densitometry software should be sufficient to obtain spot signal densities from your scanned images. One such software program, ImageJ, is available for free from the NIH website along with an array plug-in. |
Assay Precision | Inter-array Coefficient of Variation (CV) of spot signal intensities as low as 5% when run under optimal conditions. |
Restrictions | For Research Use only |
Handling Advice | The antibody printed side of each membrane is marked by a dash (-) or number (#) in the upper left corner. Do not allow membranes to dry out during the experiment or they may become fragile and break OR high and/or uneven background may occur. Grasp membranes by the corners or edges only using forceps. DO NOT touch printed antibody spots. |
Storage | -20 °C |
Storage Comment | For best results, store the entire kit frozen at -20°C upon arrival. Stored frozen, the kit will be stable for at least 6 months which is the duration of the product warranty period. Once thawed, store array membranes and 1X Blocking Buffer at -20°C and all other reagents undiluted at 4°C for no more than 3 months. |
Expiry Date | 6 months |
Supplier Images |
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Product cited in: |
Chou, Lin, Young, Lou: "Effects of fibroblasts on the function of acinar cells from the same human parotid gland." in: Head & neck, 2015 (PubMed).
Trian, Allard, Dupin, Carvalho, Ousova, Maurat, Bataille, Thumerel, Begueret, Girodet, Marthan, Berger: "House dust mites induce proliferation of severe asthmatic smooth muscle cells via an epithelium-dependent pathway." in: American journal of respiratory and critical care medicine, Vol. 191, Issue 5, pp. 538-46, 2015 (PubMed). Pickard, McDade, McFarland, McCluggage, Wheeler, McCance: "HPV16 Down-Regulates the Insulin-Like Growth Factor Binding Protein 2 to Promote Epithelial Invasion in Organotypic Cultures." in: PLoS pathogens, Vol. 11, Issue 6, pp. e1004988, 2015 (PubMed). Dilwali, Patel, Roberts, Basinsky, Harris, Emerick, Stankovic: "Primary culture of human Schwann and schwannoma cells: improved and simplified protocol." in: Hearing research, Vol. 315, pp. 25-33, 2014 (PubMed). Hernández-Bedolla, Carretero-Ortega, Valadez-Sánchez, Vázquez-Prado, Reyes-Cruz: "Chemotactic and proangiogenic role of calcium sensing receptor is linked to secretion of multiple cytokines and growth factors in breast cancer MDA-MB-231 cells." in: Biochimica et biophysica acta, Vol. 1853, Issue 1, pp. 166-82, 2014 (PubMed). Tanaka, Shibano, Monji, Kuwayama, Iwata: "Liver condition affects bovine oocyte qualities by changing the characteristics of follicular fluid and plasma." in: Reproduction in domestic animals = Zuchthygiene, Vol. 48, Issue 4, pp. 619-26, 2013 (PubMed). De Boeck, Hendrix, Maynard, Van Bockstal, Dani?ls, Pauwels, Gespach, Bracke, De Wever: "Differential secretome analysis of cancer-associated fibroblasts and bone marrow-derived precursors to identify microenvironmental regulators of colon cancer progression." in: Proteomics, Vol. 13, Issue 2, pp. 379-88, 2013 (PubMed). Al-Aidaroos, Yuen, Guo, Zhang, Chung, Chng, Zeng: "Metastasis-associated PRL-3 induces EGFR activation and addiction in cancer cells." in: The Journal of clinical investigation, Vol. 123, Issue 8, pp. 3459-71, 2013 (PubMed). Glinskii, Huxley, Glinskii, Rubin, Glinsky: "Pulsed estrogen therapy prevents post-OVX porcine dura mater microvascular network weakening via a PDGF-BB-dependent mechanism." in: PLoS ONE, Vol. 8, Issue 12, pp. e82900, 2013 (PubMed). Ho, Tseng, Ma, Ong, Chen, Chen, Lin, Hong, Lee et al.: "Multiple intravenous transplantations of mesenchymal stem cells effectively restore long-term blood glucose homeostasis by hepatic engraftment and ?-cell differentiation in streptozocin-induced ..." in: Cell transplantation, Vol. 21, Issue 5, pp. 997-1009, 2012 (PubMed). Giménez-Bastida, González-Sarrías, Larrosa, Tomás-Barberán, Espín, García-Conesa: "Ellagitannin metabolites, urolithin A glucuronide and its aglycone urolithin A, ameliorate TNF-?-induced inflammation and associated molecular markers in human aortic endothelial cells." in: Molecular nutrition & food research, Vol. 56, Issue 5, pp. 784-96, 2012 (PubMed). Lee, Xu, Kim, Kang, Lee, Park, Kim, Choi, Kim: "Regeneration of peripheral nerves by transplanted sphere of human mesenchymal stem cells derived from embryonic stem cells." in: Biomaterials, Vol. 33, Issue 29, pp. 7039-46, 2012 (PubMed). Okuda, Kobayashi, Xia, Watabe, Pai, Hirota, Xing, Liu, Pandey, Fukuda, Modur, Ghosh, Wilber, Watabe: "Hyaluronan synthase HAS2 promotes tumor progression in bone by stimulating the interaction of breast cancer stem-like cells with macrophages and stromal cells." in: Cancer research, Vol. 72, Issue 2, pp. 537-47, 2012 (PubMed). Yang, Morrison, Liu, Miecznikowski, Bshara, Han, Zhu, Omilian, Li, Zhang: "TAZ induces growth factor-independent proliferation through activation of EGFR ligand amphiregulin." in: Cell cycle (Georgetown, Tex.), Vol. 11, Issue 15, pp. 2922-30, 2012 (PubMed). Liu, Liu, Zhou, Xiao, Cao: "Conditioned medium from chondrocyte/scaffold constructs induced chondrogenic differentiation of bone marrow stromal cells." in: Anatomical record (Hoboken, N.J. : 2007), Vol. 295, Issue 7, pp. 1109-16, 2012 (PubMed). Willenberg, Saalbach, Simon, Anderegg: "Melanoma Cells Control HA Synthesis in Peritumoral Fibroblasts via PDGF-AA and PDGF-CC: Impact on Melanoma Cell Proliferation." in: The Journal of investigative dermatology, 2011 (PubMed). Traktuev, Merfeld-Clauss, Li, Kolonin, Arap, Pasqualini, Johnstone, March: "A population of multipotent CD34-positive adipose stromal cells share pericyte and mesenchymal surface markers, reside in a periendothelial location, and stabilize endothelial networks." in: Circulation research, Vol. 102, Issue 1, pp. 77-85, 2008 (PubMed). Steed, Trumpower, Duffy, Smith, Marshall, Rupp, Robson: "Amnion-derived cellular cytokine solution: a physiological combination of cytokines for wound healing." in: Eplasty, Vol. 8, pp. e18, 2008 (PubMed). Christov, Chrétien, Abou-Khalil, Bassez, Vallet, Authier, Bassaglia, Shinin, Tajbakhsh, Chazaud, Gherardi: "Muscle satellite cells and endothelial cells: close neighbors and privileged partners." in: Molecular biology of the cell, Vol. 18, Issue 4, pp. 1397-409, 2007 (PubMed). De, Razorenova, McCabe, OToole, Qin, Byzova: "VEGF-integrin interplay controls tumor growth and vascularization." in: Proceedings of the National Academy of Sciences of the United States of America, Vol. 102, Issue 21, pp. 7589-94, 2005 (PubMed). |