Tartrazine(TAR) antibody/antigen (BSA/OVA/KLH conjugated hapten)

anti-Tartrazine(TAR) antibody and Carrier-coupled antigen/immunogen (hapten-carrier conjugates)

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Product information

Catalog No.DescriptionUS $ Price (per mg)
GMP-SMT-87-11. BSA-Tartrazine(TAR)
2. Anti-Tartrazine(TAR) mouse monoclonal antibody
$2709.00
GMP-SMT-87-21. OVA-Tartrazine(TAR)
2. Anti-Tartrazine(TAR) mouse monoclonal antibody
$2709.00
GMP-SMT-87-31. BSA-Tartrazine(TAR)
2. Anti-Tartrazine(TAR) human monoclonal antibody
$2709.00
GMP-SMT-87-41. OVA-Tartrazine(TAR)
2. Anti-Tartrazine(TAR) human monoclonal antibody
$2709.00
GMP-SMT-87-Ag-1BSA-Tartrazine(TAR)$756.00
GMP-SMT-87-Ag-2OVA-Tartrazine(TAR)$756.00
GMP-SMT-87-Ab-1Anti-Tartrazine(TAR) mouse monoclonal antibody$1953.00
GMP-SMT-87-Ab-2Anti-Tartrazine(TAR) human monoclonal antibody$1953.00

Size: 1mg | 10mg | 100mg



Product Description


BSA-Tartrazine(TAR)

Cat No.GMP-SMT-87-Ag-1
Bioactivity validationCompetitive immunoassay validation (Competitive ELISA) with hapten-carrier conjugates and anti-Hapten antibody;
Products descriptionCompetitive immunoassay-validated hapten-carrier conjugates BSA-Tartrazine(TAR) with anti-Hapten antibody. The hapten hapten-carrier conjugates BSA-Tartrazine(TAR) had been validated with our anti-Hapten antibody Anti-Tartrazine(TAR) mouse monoclonal antibody via competitive ELISA test.
ApplicationELISA tests and other immunoassays;
Lateral flow immunoassay (LFIA);
LTIA
Immunonephelometry
Time-resolved Fluorescence Immunoassay (TRFIA)
FormulationLyophilized from sterile PBS, PH 7.4
StorageStore at -20℃ to -80℃ under sterile conditions. Avoid repeated freeze-thaw cycles.


OVA-Tartrazine(TAR)

Cat No.GMP-SMT-87-Ag-2
Bioactivity validationCompetitive immunoassay validation (Competitive ELISA) with hapten-carrier conjugates and anti-Hapten antibody;
Products descriptionCompetitive immunoassay-validated hapten-carrier conjugates OVA-Tartrazine(TAR) with anti-Hapten antibody. The hapten hapten-carrier conjugates OVA-Tartrazine(TAR) had been validated with our anti-Hapten antibody Anti-Tartrazine(TAR) mouse monoclonal antibody via competitive ELISA test.
ApplicationELISA tests and other immunoassays;
Lateral flow immunoassay (LFIA);
LTIA
Immunonephelometry
Time-resolved Fluorescence Immunoassay (TRFIA)
FormulationLyophilized from sterile PBS, PH 7.4
StorageStore at -20℃ to -80℃ under sterile conditions. Avoid repeated freeze-thaw cycles.


Anti-Tartrazine(TAR) mouse monoclonal antibody

Cat No.GMP-SMT-87-Ab-1
Host of AntibodyMouse IgG
Bioactivity validationCompetitive immunoassay validation (Competitive ELISA) with hapten-carrier conjugates and anti-Hapten antibody;
Lateral flow immunoassay (LFIA);
ELISA IC50 (ppb)0.10
Products descriptionThe anti-Hapten antibody against hapten Tartrazine(TAR) had been validated with our hapten hapten-carrier conjugates BSA-Tartrazine(TAR) via competitive ELISA test.
ApplicationELISA tests and other immunoassays;
Lateral flow immunoassay (LFIA);
LTIA
Immunonephelometry
Time-resolved Fluorescence Immunoassay (TRFIA)
FormulationLyophilized from sterile PBS, PH 7.4
StorageStore at -20℃ to -80℃ under sterile conditions. Avoid repeated freeze-thaw cycles.


Anti-Tartrazine(TAR) human monoclonal antibody

Cat No.GMP-SMT-87-Ab-2
Host of AntibodyHuman IgG1
Bioactivity validationCompetitive immunoassay validation (Competitive ELISA) with hapten-carrier conjugates and anti-Hapten antibody;
Lateral flow immunoassay (LFIA);
ELISA IC50 (ppb)0.10
Products descriptionThe anti-Hapten antibody against hapten Tartrazine(TAR) had been validated with our hapten hapten-carrier conjugates BSA-Tartrazine(TAR) via competitive ELISA test.
ApplicationELISA tests and other immunoassays;
Lateral flow immunoassay (LFIA);
LTIA
Immunonephelometry
Time-resolved Fluorescence Immunoassay (TRFIA)
FormulationLyophilized from sterile PBS, PH 7.4
StorageStore at -20℃ to -80℃ under sterile conditions. Avoid repeated freeze-thaw cycles.


Reference




    Validation Data


    Click to get more Data / Case study about the product.



    Biomarker Information


    Basic Orange (BO/CSD) is a type of basic dye from the xanthene family. It is widely used in various industrial sectors, including textiles, paper manufacturing, and plastic production, as a coloring agent. BO/CSD has a pyridine ring structure with different substituents attached to it, which can vary depending on the application and desired properties.

    The use of BO/CSD in industrial processes raises concerns about its potential impact on both the environment and human health. BO/CSD can enter water bodies through wastewater discharges, leaching from landfills, or accidental spills, leading to contamination of aquatic ecosystems, soil, and potentially even groundwater sources.

    The environmental persistence and resistance to degradation of BO/CSD is a significant concern. Due to these characteristics, BO/CSD can persist in the environment for extended periods, accumulating in various compartments and potentially causing adverse effects on ecosystems. Additionally, its resistance to degradation means that it may not easily break down into less harmful substances over time.

    Studies indicate that BO/CSD can have toxic effects on aquatic organisms, such as fish and algae. Exposure to BO/CSD can result in behavioral changes, reduced growth rates, and reproductive impairments. Furthermore, the presence of BO/CSD in surface water can disrupt the balance of the ecosystem, leading to adverse effects on other species within the food chain.

    BO/CSD also raises concerns about human health. Prolonged exposure to BO/CSD has been linked to skin irritation, respiratory problems, and other health issues. Some studies suggest that the breakdown products of BO/CSD in the environment may be more toxic than the original dye itself, causing additional risks to human health.

    To mitigate the potential risks associated with BO/CSD, regular monitoring of its levels in environmental samples is necessary. Monitoring BO/CSD concentrations in surface water, sediment, and biota helps to identify pollution sources and evaluate the effectiveness of pollution control measures. It also aids in the development of appropriate management strategies to minimize inputs of BO/CSD into the environment and mitigate its potential impacts.

    Various analytical techniques can detect and quantify BO/CSD concentrations in environmental samples. These techniques include fluorescence spectroscopy, spectrophotometry, and high-performance liquid chromatography (HPLC). These methods provide accurate and precise measurements of BO/CSD levels in different environmental matrices, enabling the evaluation of potential risks associated with BO/CSD contamination.

    Furthermore, it is necessary to improve wastewater treatment technologies to remove BO/CSD from wastewater effluents. This can help reduce the amount of BO/CSD released into the environment and minimize its potential impacts on ecosystems and human health.

    Implementing sustainable practices and exploring safer alternatives can help reduce the potential risks associated with BO/CSD and other hazardous dyes in industrial processes. It is crucial to establish strict regulations on the production, use, and disposal of BO/CSD-containing products to minimize its dispersal into the environment.

    In conclusion, Basic Orange (BO/CSD) is a commonly used basic dye in various industries, raising concerns about its potential impact on both the environment and human health. Regular monitoring of BO/CSD levels in environmental samples, along with the application of analytical techniques, can aid in identifying pollution sources and developing effective management strategies. Improving wastewater treatment technologies, promoting sustainable practices, exploring safer alternatives, and implementing stringent regulations are essential to minimize the environmental and health risks posed by BO/CSD contamination and ensure the long-term well-being of ecosystems and human populations.



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