H2AFX Antibody / Histone H2AX

SKU:BHA17110122
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NSJ Bioreagents
NSJ Bioreagents
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Overview
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Anti-H2AFX antibody (Rabbit, clone BIA-8, Rabbit IgG) for IHC-P, WB in research assays (RUO).
Target H2AFX
Clone number BIA-8
Host Rabbit
Reactivity Human, Mouse, Rat
Isotype Rabbit IgG
Application IHC-P, WB
Conjugate(s) Unconjugated
Options selector
Catalog no. Formulation Size
RQ5464 Antibody in PBS with 0.02% sodium azide, 50% glycerol and 0.4-0.5mg/ml BSA
Available Options

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

  • Options: Formulation: Antibody in PBS with 0.02% sodium azide, 50% glycerol and 0.4-0.5mg/ml BSA; Size: 100 ul
  • Lead time: typically ships in ~2-3 business days; timing may vary by selected option.
  • Storage: Store the H2AFX antibody at -20oC.
  • 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.
Field Specification
Mfr No RQ5464
Clonality
  • Rabbit Monoclonal
Host Rabbit
Immunogen A synthetic peptide specific to human Histone H2A.X / H2AFX was used as the immunogen for the H2AFX antibody.
Isotype
  • Rabbit IgG
Product Type
  • Antibodies
  • Primary Antibodies
Purity Affinity purified
Reactivity
  • Human
  • Mouse
  • Rat
Storage Store the H2AFX antibody at -20oC.
Target H2AFX
UniProt # P16104

Overview

H2AFX Antibody / Histone H2AX is a research-use antibody directed against H2AFX. It is supplied for use in common immunoassay contexts such as IHC-P, WB (RUO).

Key elements and design rationale

  • Target: H2AFX.
  • Description (provided): Histones are basic nuclear proteins that are responsible for the nucleosome structure of the chromosomal fiber in eukaryotes.
  • Antibody type: Rabbit, clone BIA-8, Rabbit IgG.
  • Format: Purified; Affinity purified.
  • Reported/predicted localization: Nuclear.
  • Species reactivity: tested: Human, Mouse, Rat.
  • Immunogen (if provided): A synthetic peptide specific to human Histone H2A.X / H2AFX was used as the immunogen for the H2AFX antibody..

The information above helps you match the antibody format to your assay context, interpret species-dependent differences, and anticipate how epitope context (isoforms, PTMs, or conformational state) may influence signal.

Biological background

Histones are basic nuclear proteins that are responsible for the nucleosome structure of the chromosomal fiber in eukaryotes. Two molecules of each of the four core histones (H2A, H2B, H3, and H4) form an octamer, around which approximately 146 bp of DNA is wrapped in repeating units, called nucleosomes. The linker histone, H1, interacts with linker DNA between nucleosomes and functions in the compaction of chromatin into higher order structures. This gene encodes a replication-independent histone that is a member of the histone H2A family, and generates two transcripts through the use of the conserved stem-loop termination motif, and the polyA addition motif. [RefSeq]

For curated annotations (gene/protein naming, domains, isoforms, and pathway links) for H2AFX, consult primary databases such as UniProt, NCBI Gene, and Ensembl.

Research relevance and current trends

  • Context-dependent expression studies: researchers often examine H2AFX abundance and localization across perturbations (genetic, pharmacologic, or environmental) to connect phenotype to molecular changes.
  • Reagent reproducibility: there is growing emphasis on antibody specificity checks using orthogonal approaches (e.g., genetic perturbation or independent antibodies) and transparent reporting of clone/lot information.
  • Multi-modal datasets: antibody-based readouts are increasingly combined with transcriptomics and imaging to relate protein-level measurements to cell-state transitions.

Common research applications

  • Immunohistochemistry for spatial mapping of target expression across tissues and cell types.
  • Western blotting (immunoblot) for relative detection of target protein abundance and apparent molecular weight.

When comparing conditions, interpret changes in signal in the context of sample composition, expected localization, and any known isoform complexity for the target.

Notes for experimental interpretation

  • Isoforms and PTMs: alternative splicing or post-translational modifications can change epitope accessibility and apparent molecular weight; interpret bands/signals accordingly.
  • Cross-reactivity and matrix effects: background binding can vary by sample type, species, and blocking/detection chemistries; include appropriate negative controls.
  • Control concepts: where feasible, use genetic perturbation (KO/KD/overexpression), orthogonal assays, or independent antibodies to support specificity claims.

Antibody considerations: Polyclonal reagents may recognize multiple epitopes and can increase sensitivity but may show broader binding profiles, while monoclonal clones provide a single-epitope readout that can improve consistency across experiments. If a conjugate is listed, the antibody supports more direct detection workflows; otherwise, it is typically used with a compatible secondary antibody.

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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