Venom-Derived Toxins

Venom-Derived Toxins

Purified peptidic ion channel modulators for electrophysiology, imaging, and neuroscience research.

Biologically active venom-derived toxins to study ion channels, synaptic transmission, and neural connectivity. Our toxins are developed in-house using controlled synthesis, folding, and multistep purification workflows that eliminate non-specific components found in crude venom. Each peptide is validated by HPLC, mass spectrometry, and functional bioassays, for lot-to-lot consistency and reliable performance. Available in synthetic, recombinant, native, and optionally fluorophore-conjugated formats. These reagents enable precise functional electrophysiology, imaging, and live-cell studies across neuronal systems.

FAQs

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  • The expected molecular weight (MW) listed in the product datasheet is based solely on the size of the target protein’s amino acid sequence. It’s important to remember that many factors can affect the banding pattern of your western blot including: (1) the existence of a splice variant, (2) the quality of the loaded sample, (3) the protein extraction method, and (4) the protein transfer conditions. To achieve accurate results, you may need to systematically adjust the protein extraction method or the protein transfer conditions.

    • If the band’s MW is below the expected MW it could be due to a splice variant with a slightly different MW.
      • Heat the samples at 70°C for 10 min.
      • Increase the transfer time.
    • If the band’s MW is above the expected MW, it could be due to post-translational modifications.
    • In either event, you should use a blocking peptide as a negative control.
  • Some toxins and peptides are soluble in DMSO; you can find this information in the product specification section. For these products, prepare a concentrated stock solution first.

    1. Centrifuge vial (10,000 x g, 5 minutes) before adding solvent.
    2. Dissolve the lyophilized reagent in DMSO. We recommend keeping a concentrated stock solution at 1-10 mM (100-1000X higher than the final working concentration).
    3. Once the peptide is completely dissolved in DMSO, slowly dilute the peptide in pure water (or buffer) to the desired final working concentration.

    Note: We recommend that you maintain a DMSO concentration as low as possible. For cell assays, a final concentration of 0.1–0.5% DMSO (v/v) is considered acceptable. For other experiments, 5% DMSO (v/v) is recommended; adjust this according to your experimental requirements.

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248 Results
  • Agitoxin-2-Cys-TAMRA
    A fluorescent probe for imaging and sensitive detection of KV1.3, KV1.1, and KV1.6 voltage-gated potassium channels
    • Product Code: RTA-420-T
    • Short Description: A fluorescent probe for imaging and sensitive detection of KV1.3, KV1.1, and KV1.6 voltage-gated potassium channels
    • Label: TAMRA
    • Applications: Electrophysiology, Fluorescence staining
    • MW: 4673 Da
  • Agitoxin-3
    A potent blocker of KV1.3, KV1.1, and KV1.6 voltage-gated potassium channels
    • Product Code: STA-390
    • Short Description: A potent blocker of KV1.3, KV1.1, and KV1.6 voltage-gated potassium channels
    • Applications: Electrophysiology
    • CAS No.: 155646-23-4
    • MW: 4101 Da
  • AmmTx3 Toxin
    A specific blocker of KV channels (subtypes KV4.2 and KV4.3) that selectively targets native neuronal A-type K+ currents
    • Product Code: STA-305
    • Short Description: A specific blocker of KV channels (subtypes KV4.2 and KV4.3) that selectively targets native neuronal A-type K+ currents
    • Applications: Electrophysiology
    • MW: 3822 Da
  • Anthopleurin-C
    A potent cardiotoxin that delays the inactivation of NaV channels
    • Product Code: STA-400
    • Short Description: A potent cardiotoxin that delays the inactivation of NaV channels
    • Applications: Electrophysiology
    • MW: 4877.6 Da
  • Apamin
    A blocker of small conductance Ca2+-Activated K+ Channels (SK Type, KCa2)
    • Product Code: STA-200
    • Short Description: A blocker of small conductance Ca2+-Activated K+ Channels (SK Type, KCa2)
    • Applications: Electrophysiology
    • CAS No.: 24345-16-2
    • MW: 2027.3 Da
  • Apamin-ATTO Fluor-488
    A fluorescent probe for imaging and sensitive detection of KCa2 potassium channels (SK channels)
    • Product Code: STA-200-AG
    • Short Description: A fluorescent probe for imaging and sensitive detection of KCa2 potassium channels (SK channels)
    • Label: ATTO 488
    • Applications: Electrophysiology, Direct flow cytometry, Fluorescence staining, Live cell imaging, Immunofluorescence
    • MW: 2601 Da
  • Apamin-Biotin
    A biotinylated apamin for imaging and sensitive detection of KCa2 potassium channels (SK channels)
    • Product Code: STA-200-B
    • Short Description: A biotinylated apamin for imaging and sensitive detection of KCa2 potassium channels (SK channels)
    • Label: Biotin
    • Applications: Electrophysiology, Immunofluorescence
    • MW: 2367 Da
  • APETx2
    A potent blocker of ASIC3 and moderate blocker of NaV1.8 channels
    • Product Code: STA-160
    • Short Description: A potent blocker of ASIC3 and moderate blocker of NaV1.8 channels
    • Applications: Electrophysiology
    • CAS No.: 713544-47-9
    • MW: 4561 Da
  • ATX-II
    A potent activator of voltage-gated sodium NaV channels that primarily targets cardiac NaV1.5 channels by delaying their fast inactivation
    • Product Code: STA-700
    • Short Description: A potent activator of voltage-gated sodium NaV channels that primarily targets cardiac NaV1.5 channels by delaying their fast inactivation
    • Applications: Electrophysiology
    • CAS No.: 60748-45-0
    • MW: 4935 Da
  • ATX-II-ATTO Fluor-647N
    A fluorescent probe for imaging and sensitive detection of NaV sodium channels
    • Product Code: STA-700-FRN
    • Short Description: A fluorescent probe for imaging and sensitive detection of NaV sodium channels
    • Label: ATTO 647N
    • Applications: Electrophysiology, Direct flow cytometry, Fluorescence staining, Live cell imaging, Immunofluorescence
    • MW: 5561 Da
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