FGF-1 Antibody

SKU:BHA17105716
Overview
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Anti-FGF-1 antibody (Rabbit; polyclonal; Rabbit IgG; antigen affinity–purified) for WB, IHC, ELISA in Human, Mouse, Rat samples in research assays (RUO).
Target FGF-1
Host Rabbit
Reactivity Human, Mouse, Rat
Isotype Rabbit IgG
Application(s) WB, IHC-P, ELISA
Conjugate(s) Unconjugated
Available Options

Select the variant that best fits your experiment. Availability and lead time may vary by option.

  • Options: Formulation: 0.5mg/ml if reconstituted with 0.2ml sterile DI water
    Size: 100 ug
  • Lead time: usually 2-3 business days, ; please contact us for current fulfillment timing.
  • Storage: After reconstitution, the FGF-1 antibody can be stored for up to one month at 4oC. For long-term, aliquot and store at -20oC. Avoid repeated freezing and thawing.
  • Shipping: cold-chain shipment (typically with ice packs).
  • Upon receipt: store at the recommended temperature as soon as possible.
  • Sales terms and conditions: Please review prior to ordering.
Options selector
Catalog no. Formulation Size
R32394 0.5mg/ml if reconstituted with 0.2ml sterile DI water
Field Specification
Clonality
  • Polyclonal (rabbit origin)
Conjugate
  • Unconjugated
Gene ID 2246
Host Rabbit
Immunogen Amino acids F16-D155 from the human protein were used as the immunogen for the FGF-1 antibody.
Isotype
  • Rabbit IgG
Product Type
  • Antibodies
  • Primary Antibodies
Purity Antigen affinity
Reactivity
  • Human
  • Mouse
  • Rat
Storage After reconstitution, the FGF-1 antibody can be stored for up to one month at 4oC. For long-term, aliquot and store at -20oC. Avoid repeated freezing and thawing.
Target FGF-1
UniProt # P05230

Overview

FGF-1 Antibody is a research-use-only Rabbit polyclonal (rabbit origin) Rabbit IgG directed against FGF-1. It is supplied for interpretation-focused detection and comparative profiling in WB, IHC, ELISA. Reported localization context: Cytoplasmic.

Key elements and design rationale

  • Target context: This antibody is raised against Amino acids F16-D155 from the human protein were used as the immunogen for the FGF-1 antibody.. Epitope context matters because isoforms, processing, and post-translational modifications can change what is accessible in a given assay.
  • Format: Antigen affinity purified. Format influences background and compatibility with different detection chemistries; conjugated formats (when present) can simplify multiplexing and reduce reliance on secondary reagents.
  • Species reactivity: Human, Mouse, Rat. Cross-species performance can vary with sequence divergence and epitope conservation, so interpretation should be anchored with appropriate biological controls.
  • Localization: Cytoplasmic. Subcellular compartment context can help guide expectations in imaging assays and informs fractionation-based comparisons in lysate workflows.
  • Applications: WB, IHC, ELISA. These indicate assay contexts where the antibody is commonly applied; actual performance depends on sample type and processing.

Polyclonal reagents can differ in how they recognize epitope features. Monoclonal antibodies often provide more consistent epitope targeting across lots, while polyclonal preparations may broaden recognition across related epitope variants.

Biological background

FGF-1 refers to the gene/protein target stated in the product record. Protein targets can exhibit context-dependent expression, regulated turnover, isoform diversity, and post-translational modifications that affect apparent molecular weight and epitope accessibility. For curated functional annotation, sequence features, and expression context, consult UniProtKB P05230, NCBI Gene 2246.0, Ensembl, and Human Protein Atlas.

Research relevance and current trends

  • Integrating antibody-based detection with single-cell and spatial atlasing efforts to connect RNA programs with protein-level abundance and localization in defined cell states.
  • Expanding multiplexed imaging and high-content screening, where reagent specificity, cross-reactivity risk, and channel design (including direct conjugates) become central to interpretation.
  • Growing emphasis on reproducibility and application-specific validation frameworks (e.g., genetic perturbation controls, orthogonal measurements, and independent antibody strategies) when drawing mechanistic conclusions.

Common research applications

  • Western blot (WB): commonly used to compare relative abundance/size (e.g., band intensity or mobility shifts) between conditions.
  • Immunohistochemistry (IHC): commonly used to compare tissue- and cell-type–specific expression patterns in situ.
  • ELISA: commonly used to compare quantitative comparison of target levels across samples (matrix-dependent).

Interpretation typically focuses on relative differences (presence/absence, fold-changes, compartment shifts, or population-level shifts) rather than absolute quantitation. When signal changes are observed, they may reflect altered expression, altered localization/trafficking, changes in modification state, or differences in sample composition; orthogonal readouts and appropriate controls help distinguish these possibilities.

Application details (record-specific): Western blot: 0.1-0.5ug/ml,IHC (FFPE): 0.5-1ug/ml,ELISA: 0.1-0.5ug/ml (human protein tested); request BSA-free format for coating

Application notes (record-specific): Optimal dilution of the FGF-1 antibody should be determined by the researcher.

Notes for experimental interpretation

  • Product description (record-specific): Fibroblast growth factor 1 (acidic) plays an important role in the regulation of cell survival, cell division, angiogenesis, cell differentiation and cell migration. Functions as potent mitogen in vitro. Acts as a ligand for FGFR1 and integrins. Binds to FGFR1 in the presence of heparin leading to FGFR1 dimerization and activation via sequential autophosphorylation on tyrosine residues which act as docking sites for interacting proteins, leading to the activation of several signaling cascades. Binds to integrin ITGAV:ITGB3. Its binding to integrin, subsequent ternary complex formation with integrin and FGFR1, and the recruitment of PTPN11 to the complex are essential for FGF1 signaling. Induces the phosphorylation and activation of FGFR1, FRS2, MAPK3/ERK1, MAPK1/ERK2 and AKT1. [UniProt]
  • Potential confounders: isoforms, proteolytic processing, and PTMs can change epitope presentation and apparent size; fixation/denaturation state can also expose or mask epitopes. Species differences near the epitope may affect cross-reactivity.
  • Control concepts: include genetic perturbation (KO/KD) or overexpression comparisons, orthogonal measurement (e.g., transcript or proteomics), and independent antibody/epitope strategies. For conjugated reagents, include staining-only/background controls appropriate to the detection chemistry.

Immunogen/epitope context is described as: Amino acids F16-D155 from the human protein were used as the immunogen for the FGF-1 antibody.. Monoclonal and polyclonal formats differ in epitope breadth; this can influence sensitivity to sequence variants, isoforms, or PTM-dependent recognition.

Customization & Add-ons: Can’t find the antibody you need—or require a custom format for your assay? We can help you source the best match or support custom antibody solutions for diverse research needs, including species and isotype selection, conjugations and labeling (e.g., HRP/AP, biotin, fluorophores), purification grade options (Protein A/G, affinity purified), formulation preferences (buffer selection, carrier-free, glycerol-free), custom concentrations and aliquoting, low-endotoxin options for cell-based work, and application-focused QC/validation support (project dependent). Click Talk to a Scientist to submit a request, email us at support@biohippo.com, or explore our Research Services for additional support—our team will follow up with feasibility details and next steps.

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