| Field | Specification |
|---|---|
| Mfr No | |
| Alternative Names | Magnetic particles, streptavidin functionalized |
| Concentration | |
| Form | liquid |
| Product Type | |
| Relative Density | |
| Shipping | |
| Storage |
Overview
HiSur Streptavidin Beads are hydrophilic, streptavidin conjugated magnetic. Streptavidin is covalently coupled to their surface and makes most of the biotin binding sites sterically available for binding of biotinylated nucleic acids, antibodies, or other biotinylated ligands and targets. Attribute to their very large surface area and unique surface coating, Protein G Hi-Sur Mag exhibit superior binding capacity and significantly low non-specific binding.
Key Features
- Superior binding capacity
- Significantly low non-specific binding
- Comparable with Sera Mag Speedbeads Streptavidin Coated Magnetic Particles and Sera Mag Speedbeads Streptavidin Blocked Magnetic Particles.
Applications
- Immunoprecipitation
- Nucleic acid isolation
- Assay development
Physical & Chemical Properties
- Surface Functional Group: Streptavidin
- pH: 6.0 - 8.0 at 25 °C (77 °F)
- Water Solubility: Completely miscible
- Magnetic Content: ~40 %
- Chemical Stability: Stable under recommended storage conditions.
- Appearance / Color: brown/black
HiSur Streptavidin Beads are 1 µm superparamagnetic beads with a high-surface-area polymer coating that provides approximately three times the surface area per bead compared to standard MonoMag beads. This results in superior streptavidin loading density and binding capacity per unit volume. They are comparable to Sera-Mag Speedbeads Streptavidin Coated Magnetic Particles.
Choose HiSur when your application requires maximum binding capacity per volume of beads — for example, capturing dilute biotinylated targets, building assays with very low analyte concentrations, or when you want to minimize total bead volume while maintaining high capacity.
Streptavidin is covalently coupled to the HiSur surface polymer via primary amine chemistry, forming stable amide bonds. This covalent attachment prevents streptavidin leaching under assay conditions, ensuring consistent biotin-binding activity across washes and incubation steps.
Store at 2–8°C. Do not freeze. Before use, ensure thorough resuspension by bath sonication — particles settle during storage. Equilibrate to working temperature per the product datasheet before beginning your protocol.
Yes. Their magnetic properties allow use with standard magnetic separation racks and automation-compatible magnetic plate handlers. The single size (1 µm) ensures predictable separation times across automated workflows.
The following customization and add-on services are available for this product through the supplier. For inquiries and pricing, contact support@biohippo.com.
Customization Options
- Custom Particle Sizes: Magnetic beads in sizes beyond the standard catalog range, with narrow size distribution from nanometers to micrometers, can be manufactured for specific assay geometries and separation requirements.
- Custom Surface Functionalization: Customized surface coatings and functional group densities are available to optimize binding capacity, non-specific binding profiles, and colloidal stability for specific applications.
- Custom Conjugation Service: Pre-conjugated magnetic bead–antibody, bead–protein, or bead–streptavidin conjugates prepared using your supplied biomolecule are available. The supplier specializes in bioconjugation chemistry across magnetic beads, iron oxide nanoparticles, quantum dots, and latex beads.
- Assay Development Services: Support for magnetic bead-based chemiluminescent assay, lateral flow immunoassay, and custom immunoassay platform development is available.
- Bulk & OEM Manufacturing: OEM magnetic beads for chemiluminescent assay, lateral flow immunoassay, CTC (circulating tumor cell) isolation for liquid biopsy, and T-cell isolation and activation for immunotherapy are available at production scale.
To inquire about customization options, request a quote, or discuss OEM manufacturing, contact support@biohippo.com.
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