Your Trusted Microsphere Manufacturer for Diagnostic Innovation

Products

SHBC provides colored microspheres, fluorescent microspheres, magnetic beads, silica microspheres, chromatography packing microspheres and biological reagents for diagnostic assay development, nucleic acid extraction, protein purification and separation applications.

Home Magnetic Beads 5um Amino Magnetic Beads MNH5UM-10 5%
5um Amino Magnetic Beads MNH5UM-10 5%
5um Amino Magnetic Beads MNH5UM-10 5%
MNH5UM-10 5µm amino magnetic beads with 5% solids for antibody and protein coupling in electrochemiluminescence immunoassay reagent development.
  • MNH5UM-10

  • SHBC

  • 5%

  • 5µm

  • 10ml,20ml,50ml ,500ml,1000ml

Inquire

5µm Amino Magnetic Beads MNH5UM-10

MNH5UM-10 is a 3µm amino-functional magnetic bead suspension supplied at a solids content of 5% w/v, equivalent to 50mg/mL.

The product is developed for covalent immobilization of antibodies, antigens, proteins, peptides, enzymes and other affinity ligands in magnetic immunoassay research, reagent development, pilot-scale validation and batch production.

Primary amino groups on the bead surface provide reactive sites for biomolecule immobilization through a suitable crosslinking or activation system. After coupling, the functionalized beads can serve as a magnetic solid phase for target capture, magnetic separation, washing and signal detection.

MNH5UM-10 is intended for biotechnology companies, diagnostic reagent developers, research institutions and immunoassay manufacturers requiring a concentrated 3µm magnetic bead raw material for research-to-production projects.

Product Overview

MNH5UM-10 combines a nominal particle size of 3µm with an amino-functional surface and a concentrated 5% solids formulation.

The 5µm particle format can be evaluated for assays that require practical magnetic collection, repeated washing and stable biomolecule immobilization. Commercial products close to this size include exact 3.0µm NH₂ particles and 2.8µm amine-functional Dynabeads, demonstrating that this particle-size range is actively used for biomolecule immobilization and magnetic separation workflows.

The surface amino groups can be reacted with suitable bifunctional crosslinkers or compatible activated ligands. The most appropriate coupling method depends on the available functional groups of the target biomolecule, the desired ligand orientation and the stability required for the finished reagent.

After ligand immobilization, MNH5UM-10 may be evaluated for:

  • Magnetic immunoassays;

  • Chemiluminescence immunoassay development;

  • Electrochemiluminescence immunoassay research;

  • Sandwich and competitive assay formats;

  • Immunomagnetic separation;

  • Antibody and antigen immobilization;

  • Protein and peptide affinity capture;

  • Particle-based biosensor development.

The final assay performance should be validated using the intended ligand, sample matrix, magnetic separator, instrument and detection chemistry.

MNH5UM-10 Product Specifications

Item

Specification

Product Name

5µm Amino Magnetic Beads

Catalog Number

MNH5UM-10

Nominal Particle Size

5µm

Surface Functional Group

Amino / NH₂

Solids Content

5% w/v

Equivalent Bead Concentration

50mg/mL

Product Form

Magnetic bead suspension

Suitable Coupling Targets

Antibodies, antigens, proteins, peptides and enzymes

Primary Application

Immunoassay reagent research and production

Development Stage

Research, process development, pilot production and batch manufacturing

Supply Options

Evaluation samples, pilot quantities and bulk supply

Customization

Subject to technical evaluation

Intended Use

Research and reagent-development raw material

Final acceptance specifications should be confirmed using the applicable technical data sheet, certificate of analysis and lot-specific quality documentation.

Key Features of 5µm Amino Magnetic Beads

Defined 5µm Particle Size

The 5µm format provides a micrometer-scale magnetic carrier that can be evaluated for efficient magnetic collection and repeated washing.

Particle size can influence:

  • Number of particles per unit mass;

  • Available geometric surface;

  • Suspension behavior;

  • Reaction kinetics;

  • Magnetic collection;

  • Pellet formation;

  • Resuspension;

  • Automated analyzer compatibility.

The actual performance depends on more than particle diameter. Magnetic content, surface coating, particle-size distribution, buffer viscosity, bead concentration, magnet design and reaction-vessel geometry must also be considered.

Amino-Functional Surface

Primary amino groups provide reactive sites for chemical modification.

Amino surfaces can interact with crosslinkers containing NHS ester, aldehyde, maleimide or other compatible functional groups. Dynabeads M-270 Amine, for example, supports reductive amination of aldehyde-containing molecules and can also be modified through alternative crosslinking reagents.

5% Solids Content

MNH5UM-10 is supplied at 5% w/v, equivalent to 50mg/mL.

This concentrated format gives developers flexibility when preparing different bead concentrations for coupling studies, assay optimization and production.

Approximate bead-mass calculations include:

  • 20µL suspension contains 1mg of beads;

  • 100µL suspension contains 5mg of beads;

  • 1mL suspension contains 50mg of beads.

The suspension should be fully homogenized before dispensing because settling can cause inconsistent bead concentration between samples.

Flexible Biomolecule Immobilization

Potential coupling targets include:

  • Monoclonal antibodies;

  • Polyclonal antibodies;

  • Recombinant antigens;

  • Natural proteins;

  • Peptides;

  • Enzymes;

  • Streptavidin;

  • Glycoproteins;

  • Thiol-modified biomolecules;

  • Modified oligonucleotides;

  • Other affinity ligands.

Magnetic Solid-Phase Handling

After coupling, the beads can be magnetically collected without relying solely on centrifugation or filtration.

A typical magnetic assay workflow includes:

  1. Incubation with the sample;

  2. Capture of the target;

  3. Magnetic collection;

  4. Removal of unbound components;

  5. Washing;

  6. Addition of detection reagents;

  7. Signal measurement.

Research-to-Production Supply

MNH5UM-10 can support:

  • Feasibility testing;

  • Coupling-method screening;

  • Immunoassay formulation;

  • Automated-platform evaluation;

  • Stability studies;

  • Pilot manufacturing;

  • Batch-consistency assessment;

  • Bulk raw-material procurement.

Why Choose 5µm Magnetic Beads for Immunoassays?

Selecting magnetic bead size is an assay-development decision rather than a simple “larger is better” or “smaller is better” comparison.

Practical Magnetic Collection

Micrometer-scale beads may be easier to collect with common magnetic racks than very small nanoparticles, although actual collection time depends on magnetic properties and assay conditions.

Thermo Scientific’s MagnaBind amine beads use a 1–10µm particle range and approximately50mg/mL concentration, demonstrating the use of micrometer-scale amine particles in protein coupling and magnetic affinity separation.

Defined Pellet Formation

A clear bead pellet or collection zone can simplify aspiration and washing.

However, assay developers must ensure that:

  • The beads are collected completely;

  • Beads are not removed during aspiration;

  • Residual wash liquid is controlled;

  • The pellet can be fully redispersed;

  • Repeated collection does not increase aggregation.

Suitable for Repeated Washing

Chemiluminescence and electrochemiluminescence immunoassays commonly require multiple magnetic washing steps.

A 5µm bead format can be evaluated for workflows that need repeatable collection and resuspension, but the washing program must be validated with the specific instrument.

Potential Compatibility With Automated Platforms

MNH5UM-10 may be evaluated for automated magnetic immunoassay systems.

Critical parameters include:

  • Magnet position;

  • Magnetic field strength;

  • Collection time;

  • Reaction-cup geometry;

  • Mixing speed;

  • Mixing time;

  • Aspiration height;

  • Wash volume;

  • Residual liquid volume;

  • Bead recovery after washing.

Instrument compatibility cannot be determined by particle size alone.

Amino Surface Chemistry and Biomolecule Coupling

Amino magnetic beads generally require a compatible crosslinker or activated ligand to create a stable covalent bond with the target biomolecule.

The coupling route should be selected according to the ligand’s available functional groups and the required conjugate structure.

BS3 and Other Amine-Reactive Crosslinkers

BS3 is a water-soluble homobifunctional NHS-ester crosslinker that reacts with primary amino groups.

Thermo Scientific provides a reference procedure in which amine-functional magnetic beads, protein or peptide and BS3 are combined in a non-amine buffer, followed by magnetic washing and coupling-efficiency analysis.

This method can be considered for protein immobilization, but it generally produces random ligand orientation because several amino groups may participate in the reaction.

Parameters requiring optimization include:

  • Crosslinker concentration;

  • Protein concentration;

  • Reaction pH;

  • Bead concentration;

  • Reaction time;

  • Temperature;

  • Mixing;

  • Quenching conditions.

Sulfo-SMCC Amine-to-Thiol Coupling

Sulfo-SMCC contains an amine-reactive NHS ester and a sulfhydryl-reactive maleimide group.

The NHS-ester end can react with amino groups on the bead surface. The maleimide end can then react with a thiolated antibody, protein, peptide or oligonucleotide.

This approach may be considered when:

  • The ligand contains an accessible sulfhydryl group;

  • The ligand has been selectively thiolated;

  • Greater functional-group selectivity is required;

  • Random amine-to-amine crosslinking is undesirable.

Reductive Amination

Aldehyde-containing carbohydrates, glycoproteins, glycolipids or chemically modified ligands may be coupled to amino-functional surfaces through reductive amination.

Dynabeads M-270 Amine is specifically positioned for covalent binding of aldehyde-containing molecules through this mechanism.

The buffer, reductant, reaction time, pH and ligand stability must be optimized for the specific molecule.

Activated Carboxyl-to-Amino Coupling

Carboxyl groups on a ligand may be activated using a suitable carbodiimide system before reaction with amino groups on MNH3UM-10.

This route should be evaluated carefully because activating multiple carboxyl groups on an antibody or protein may affect ligand orientation or biological activity.

Choosing the Coupling Method

Ligand Characteristic

Potential Coupling Strategy

Protein with accessible primary amines

BS3 or another bifunctional amine-reactive crosslinker

Thiolated antibody, protein or peptide

Sulfo-SMCC or another amine-to-thiol crosslinker

Aldehyde-containing carbohydrate or glycoprotein

Reductive amination

Ligand with accessible carboxyl groups

Activated carboxyl-to-amino coupling

Specially modified oligonucleotide

Functional-group-specific crosslinker

The coupling method should be selected based on functional assay performance rather than chemical coupling yield alone.

Applications in Immunoassay Reagent Development

Magnetic Sandwich Immunoassays

A capture antibody can be immobilized on MNH5UM-10 and used to capture a target antigen.

After target capture, a labelled detection antibody can form a bead–target–detection antibody complex.

The magnetic beads are collected and washed before signal measurement.

Important development variables include:

  • Capture-antibody density;

  • Bead dosage;

  • Sample volume;

  • Incubation time;

  • Detection-antibody concentration;

  • Washing efficiency;

  • Signal label;

  • Sample matrix.

Chemiluminescence Immunoassay Development

MNH3UM-10 can be evaluated as a magnetic solid-phase carrier in chemiluminescence immunoassays.

Developers should optimize:

  • Magnetic bead concentration;

  • Antibody-loading level;

  • Blocking formulation;

  • Capture reaction time;

  • Magnetic washing;

  • Enzyme-labelled conjugate;

  • Chemiluminescent substrate;

  • Signal-to-background ratio;

  • Automated analyzer parameters.

The finished reagent should be tested for sensitivity, specificity, precision and stability.

Electrochemiluminescence Immunoassay Research

MNH3UM-10 may also be evaluated in electrochemiluminescence immunoassay development.

Compatibility should be confirmed with:

  • The magnetic collection module;

  • Electrode configuration;

  • Electrochemiluminescent label;

  • Reaction buffer;

  • Assay consumables;

  • Washing sequence;

  • Signal-read timing.

The suitability of the beads for a specific ECL platform must be established experimentally.

Competitive Immunoassays

Antigens, antibodies, haptens or small-molecule conjugates may be immobilized on the beads for competitive assay formats.

This approach may be useful for small analytes that cannot support a conventional two-antibody sandwich structure.

Antibody Detection

An antigen can be immobilized on MNH3UM-10 to capture target antibodies in research samples.

Immunomagnetic Separation

Ligand-coupled beads may be evaluated for enrichment or separation of:

  • Proteins;

  • Cells;

  • Microorganisms;

  • Extracellular particles;

  • Other affinity-recognized targets.

Immunoprecipitation and Affinity Capture

Antibody- or protein-coupled beads can be evaluated for immunoprecipitation, protein isolation and affinity purification.

Micrometer-scale amine magnetic particles are commercially used for covalent coupling and magnetic separation of antibodies, antigens, enzymes, proteins, nucleic acids and cells.

Particle-Based Biosensors

MNH3UM-10 can be evaluated as a magnetic carrier in:

  • Electrochemical biosensors;

  • Optical biosensors;

  • Microfluidic systems;

  • Magnetic enrichment devices;

  • Multiplex detection research;

  • Automated bioanalytical platforms.

Each application requires system-specific validation.

The following workflow is a general development framework and is not a validated product-specific protocol.

Step 1: Characterize the Ligand

Record:

  • Ligand type;

  • Molecular weight;

  • Concentration;

  • Purity;

  • Original buffer;

  • Stabilizing additives;

  • Available amino groups;

  • Available sulfhydryl groups;

  • Available carboxyl groups;

  • Biological activity.

Buffers containing Tris, glycine, ethanolamine or other reactive amines may interfere with NHS-ester chemistry and may require buffer exchange.

Step 2: Select the Coupling Chemistry

Choose the reaction according to the ligand and desired conjugate:

  • BS3-type chemistry for selected protein coupling;

  • Sulfo-SMCC for amine-to-thiol coupling;

  • Reductive amination for aldehyde-containing ligands;

  • Activated carboxyl chemistry for suitable carboxyl-containing ligands;

  • Another heterobifunctional crosslinker for specialized applications.

Step 3: Fully Resuspend MNH5UM-10

Mix the original bead suspension until homogeneous before removing an aliquot.

Suitable methods may include:

  • Gentle inversion;

  • Controlled vortexing;

  • End-over-end rotation;

  • Roller mixing;

  • Validated low-energy sonication.

Avoid excessive foaming and prolonged uncontrolled sonication.

Step 4: Calculate the Required Bead Mass

MNH3UM-10 contains approximately50mg of beads per milliliter.

Use the relationship:

Bead mass = suspension volume × 50mg/mL

Maintain continuous or frequent mixing when dispensing several samples from the same container.

Step 5: Wash and Exchange the Buffer

Collect the beads using a compatible magnetic separator.

Remove the original suspension medium and wash the beads with a buffer suitable for the selected reaction.

Do not allow the bead pellet to dry.

Thermo Scientific warns that drying or freezing amine magnetic beads can cause aggregation and loss of performance in its MagnaBind system.

Step 6: Activate the Beads or Ligand

Control:

  • Crosslinker concentration;

  • Bead concentration;

  • Activation pH;

  • Reaction time;

  • Temperature;

  • Mixing rate;

  • Reagent-addition order.

Step 7: Add the Antibody or Protein

Evaluate multiple ligand-to-bead ratios.

Excessive ligand input can increase cost and surface crowding without improving assay performance.

Step 8: Maintain Consistent Mixing

Keep the beads suspended during activation and coupling.

Uneven mixing may cause inconsistent surface exposure and variable coupling results.

Step 9: Quench or Block Residual Reactive Sites

Introduce an appropriate quenching or blocking reagent after coupling.

The blocker should reduce non-specific interactions without interfering with ligand activity or signal detection.

Step 10: Wash the Coupled Beads

Remove:

  • Unbound ligand;

  • Residual crosslinker;

  • Reaction by-products;

  • Excess blocking reagent.

Use consistent magnet type, collection time and aspiration conditions.

Step 11: Resuspend in Storage Buffer

Potential formulation variables include:

  • Buffer type;

  • pH;

  • Ionic strength;

  • Protein stabilizer;

  • Synthetic polymer stabilizer;

  • Surfactant;

  • Preservative;

  • Sugar or polyol;

  • Final bead concentration.

Step 12: Evaluate Coupling Efficiency

Coupling efficiency can be estimated by comparing the starting ligand amount with the unbound ligand remaining in the supernatant.

Coupling efficiency (%) =
[(initial ligand − unbound ligand) ÷ initial ligand] × 100

Thermo Scientific’s MagnaBind instructions recommend comparing the protein concentration in the post-coupling supernatant with the starting sample.

Coupling efficiency should always be interpreted together with functional target-binding activity.

How to Optimize MNH3UM-10 in an Immunoassay

Optimize Bead Dosage

Evaluate several bead concentrations in the finished assay.

Too few beads may limit target capture. Excessive beads may increase reagent consumption, background or washing requirements.

Optimize Ligand Density

Prepare low-, medium- and high-loading bead conjugates.

Compare:

  • Protein loading;

  • Functional binding;

  • Blank signal;

  • Positive signal;

  • Signal-to-background ratio;

  • Analytical sensitivity;

  • Precision;

  • Storage stability.

The highest protein-loading condition is not necessarily the best immunoassay condition.

Optimize Blocking Conditions

Potential blocking systems may contain:

  • Bovine serum albumin;

  • Casein-derived blockers;

  • Gelatin;

  • Synthetic polymers;

  • Nonionic surfactants;

  • Salts;

  • Combined protein and polymer blockers.

Blocking performance should be evaluated with negative samples and the intended biological matrix.

Optimize Magnetic Separation

Evaluate:

  • Magnet strength;

  • Collection time;

  • Vessel geometry;

  • Sample volume;

  • Bead concentration;

  • Wash-buffer viscosity;

  • Pellet position;

  • Residual liquid;

  • Bead loss during aspiration.

Optimize Redispersion

Confirm that the beads can be completely redispersed after each magnetic collection step.

For automated instruments, evaluate:

  • Mixing speed;

  • Mixing duration;

  • Pipetting cycles;

  • Shaking amplitude;

  • Reaction-well geometry;

  • Residual wash volume.

Evaluate Sedimentation During Processing

Micrometer-scale beads may require controlled mixing during incubation and dispensing.

Evaluate whether the beads remain sufficiently homogeneous during:

  • Sample loading;

  • Reagent dispensing;

  • Coupling;

  • Blocking;

  • Instrument incubation;

  • Production filling.

Evaluate Sample Interference

Depending on the assay, interference studies may include:

  • Hemoglobin;

  • Bilirubin;

  • Lipids;

  • Rheumatoid factor;

  • Heterophilic antibodies;

  • Biotin;

  • Anticoagulants;

  • High concentrations of non-target proteins;

  • Sample preservatives.

Evaluate Reagent Stability

Stability studies should cover:

  • Uncoupled magnetic bead raw material;

  • Activated intermediates;

  • Ligand-coupled beads;

  • Complete finished reagent.

Recommended studies include accelerated, real-time, transport and in-use stability.

Quality Control for Research and Batch Production

MNH3UM-10 should be evaluated using both physicochemical tests and application-specific functional tests.

Appearance and Dispersion

Inspect:

  • Suspension appearance;

  • Visible aggregation;

  • Sedimentation behavior;

  • Homogeneity after mixing;

  • Ease of redispersion;

  • Stability during processing holds.

Particle Size

Confirm the nominal particle size and monitor particle-size distribution using an appropriate validated method.

Solids Content

Verify solids concentration because it directly affects:

  • Bead-mass calculations;

  • Ligand consumption;

  • Coupling yield;

  • Final assay dosage;

  • Manufacturing output.

Amino Surface Reactivity

Use a standardized crosslinking reaction or model ligand to evaluate the functional reactivity of the amino surface.

Magnetic Collection Performance

Define:

  • Magnet type;

  • Container;

  • Sample volume;

  • Bead concentration;

  • Buffer;

  • Collection time;

  • Temperature.

Using standardized conditions enables meaningful lot-to-lot comparison.

Coupling Performance

Conduct a standardized coupling test with a representative antibody or protein.

Potential analytical methods include:

  • Protein depletion from the supernatant;

  • Colorimetric protein assays;

  • Fluorescent ligand measurement;

  • Functional target-binding assays;

  • Immunoassay signal testing.

Non-Specific Binding

Compare:

  • Unmodified beads;

  • Activated beads;

  • Blocked beads;

  • Ligand-coupled beads;

  • Negative sample matrices;

  • Potential interfering materials.

Functional Immunoassay Performance

Recommended tests include:

  • Blank signal;

  • Negative-sample signal;

  • Positive-sample signal;

  • Signal-to-background ratio;

  • Analytical sensitivity;

  • Precision;

  • Recovery;

  • Linearity;

  • Specificity;

  • Hook effect;

  • Stability.

Lot-to-Lot Consistency

For routine manufacturing, establish acceptance ranges for critical physical and functional parameters.

Final raw-material approval should be based on the performance of the complete immunoassay system rather than particle characterization alone.

Scale-Up and Bulk Supply for Immunoassay Manufacturers

MNH3UM-10 is suitable for projects progressing from laboratory research to batch production.

Evaluation Stage

Evaluation samples can support screening of:

  • Coupling chemistry;

  • Crosslinker concentration;

  • Ligand-to-bead ratio;

  • Blocking formulation;

  • Magnetic separation;

  • Assay sensitivity;

  • Background signal.

Pilot-Scale Stage

Pilot quantities can support:

  • Process confirmation;

  • Coupling scale-up;

  • Reagent formulation;

  • Automated-platform evaluation;

  • Stability studies;

  • Initial lot-consistency testing.

Batch-Production Stage

Bulk supply planning may include:

  • Annual demand;

  • Forecasted purchase schedule;

  • Packaging volume;

  • Quality specifications;

  • Documentation requirements;

  • Reserved-lot requirements;

  • Change-control expectations;

  • Safety-stock planning.

Scale-Up Parameters

A laboratory coupling procedure should not be enlarged only by multiplying reagent volumes.

The following factors must also be revalidated:

  • Reaction-vessel geometry;

  • Mixing efficiency;

  • Mass transfer;

  • Addition sequence;

  • Temperature uniformity;

  • pH control;

  • Magnetic collection;

  • Washing efficiency;

  • Process hold time;

  • Final resuspension.

Custom Amino Magnetic Bead Services

SHBC can evaluate customized amino magnetic bead requirements for research institutions, biotechnology companies and immunoassay reagent manufacturers.

Potential customization options include:

  • Alternative particle sizes;

  • Customized solids content;

  • Adjusted amino-group density;

  • Customized suspension buffer;

  • Alternative preservative systems;

  • Customer-specified pH;

  • Special packaging volumes;

  • Pilot-scale manufacturing;

  • Bulk manufacturing;

  • OEM packaging;

  • Private-label services;

  • Customer-specific quality testing.

Customization feasibility depends on the target specification, intended application, validation requirements and order volume.

Storage and Handling Recommendations

Store MNH5UM-10 according to the product label, technical data sheet and lot-specific certificate of analysis.

General recommendations include:

  • Mix thoroughly before sampling;

  • Keep the suspension homogeneous during dispensing;

  • Use clean and calibrated pipetting equipment;

  • Avoid allowing the beads to dry;

  • Prevent microbial and chemical contamination;

  • Confirm buffer compatibility before buffer exchange;

  • Avoid freezing unless specifically validated;

  • Avoid unnecessary exposure to extreme temperatures;

  • Record the product lot number;

  • Evaluate finished-conjugate stability separately.

After storage, inspect the suspension and confirm complete redispersion before use.

Frequently Asked Questions

What is MNH5UM-10?

MNH3UM-10 is a 3µm amino-functional magnetic bead suspension supplied at5% w/v solids for biomolecule coupling, immunoassay development, process scale-up and batch production.

What is the concentration of MNH3UM-10?

The product is supplied at5% w/v, equivalent to50mg/mL.

What functional group is present on the bead surface?

The particle surface contains primary amino groups, commonly written as NH₂ groups.

What biomolecules can be coupled to MNH5UM-10?

Potential coupling targets include antibodies, antigens, proteins, peptides, enzymes, glycoproteins, streptavidin and suitably modified oligonucleotides.

Can antibodies be coupled directly to amino magnetic beads?

A suitable crosslinker or activation system is normally required. The optimal chemistry depends on the antibody’s available functional groups and the desired conjugate structure.

Which coupling methods can be evaluated?

Potential routes include BS3-type crosslinking, Sulfo-SMCC amine-to-thiol coupling, reductive amination and activated carboxyl-to-amino coupling.

Why choose a 5µm particle size?

The3µm format can be evaluated when an assay requires micrometer-scale particles with practical magnetic collection, repeatable washing and sufficient surface for ligand immobilization.

What is the difference between 2µm and 3µm magnetic beads?

The larger particle may provide different magnetic collection, sedimentation and resuspension behavior. The best size should be selected through side-by-side testing in the intended assay.

Can MNH5UM-10 be used for chemiluminescence immunoassays?

MNH3UM-10 can be evaluated as a magnetic solid-phase carrier in chemiluminescence immunoassay development. Compatibility with the complete reagent and instrument system must be validated.

Can it be used for electrochemiluminescence immunoassays?

The beads may be evaluated in electrochemiluminescence immunoassay research. Compatibility with the electrode, magnetic module, label chemistry and assay formulation should be confirmed experimentally.

Does 5% solids mean that the product is ready to use without dilution?

No. The5% suspension is a concentrated raw material. The appropriate working concentration should be determined during coupling and assay optimization.

Does higher antibody loading always improve sensitivity?

No. Excessive ligand density may cause steric hindrance, reduced target accessibility or increased non-specific binding.

How can coupling efficiency be measured?

One method is to compare the starting ligand concentration with the concentration remaining in the supernatant after coupling. Functional binding activity should also be tested.

How should MNH5UM-10 be mixed before use?

Mix until homogeneous using a validated method such as controlled inversion, vortexing, roller mixing or gentle sonication.

What should be done if the beads settle during incubation?

Use gentle continuous or intermittent mixing and confirm that the selected method does not damage the ligand or produce excessive foam.

What should be checked if magnetic collection is incomplete?

Check magnet strength, collection time, bead concentration, solution viscosity, particle aggregation and vessel geometry.

Can MNH5UM-10 be used with automated immunoassay analyzers?

It can be evaluated for automated systems. Magnetic collection, aspiration, washing, mixing and resuspension must be validated on the specific analyzer.

Is MNH5UM-10 a finished diagnostic reagent?

No. MNH3UM-10 is supplied as a raw material for research and reagent development. The customer is responsible for validating the finished reagent and intended application.

Are evaluation samples available?

Evaluation samples can be discussed according to the intended application, coupling target and required test quantity.

Is bulk supply available?

Pilot-scale and bulk supply can be arranged for qualified research, development and manufacturing projects.

Can the solids content or packaging be customized?

Customized solids content, suspension buffer, particle parameters and packaging formats may be evaluated according to project requirements.

Request a Sample or Bulk Quotation

Contact SHBC to request an evaluation sample, technical information or bulk quotation for MNH3UM-10 3µm Amino Magnetic Beads.

Please provide:

  • Intended immunoassay application;

  • Target antibody, antigen or protein;

  • Preferred coupling method;

  • Required evaluation quantity;

  • Estimated pilot quantity;

  • Expected annual demand;

  • Preferred packaging volume;

  • Required technical documents;

  • Required quality documents;

  • Target development schedule;

  • Custom specification requirements.

SHBC supports amino magnetic bead projects from early coupling evaluation and immunoassay optimization to pilot production and bulk manufacturing.

Related Products

    No content

Related Blogs

    No content