
BF 350 Hydroxylamine
| Catalog Number | A16-0099 |
| Category | Cell Proliferation Tracer Fluorescent Probes |
| Molecular Formula | C19H28Cl2N4O8S |
| Molecular Weight | 543.42 |
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Product Introduction
BF 350 Hydroxylamine is a fluorescent dye characterized by its hydroxylamine functional group, which enables it to react with carbonyl groups on biomolecules, forming stable oxime linkages. This compound is part of the fluorophore class known for its bright blue fluorescence, with excitation and emission spectra suitable for various fluorescence-based imaging applications. BF 350 Hydroxylamine is commonly used in biochemical labeling and bioimaging, where it serves as a reporter molecule, facilitating the visualization and tracking of target molecules in complex biological systems.
Chemical Information
Product Specification
Application
Chemical Information
| Synonyms | Bella Fluor 350 Hydroxylamine |
| Appearance | Solid Powder |
Product Specification
| Excitation | 345-360 nm |
| Emission | 430-450 nm |
Application
BF 350 Hydroxylamine is a hydroxylamine-functionalized small molecule used as a reactive partner in fluorescent labeling workflows that rely on carbonyl-activated dye conjugation chemistry. In practice, it supports preparation of fluorescent conjugates and probe constructs where controlled coupling to dye-enabled intermediates is required for downstream fluorescence imaging and assay development. Researchers often choose hydroxylamine-based coupling partners to build labeling reagents for microscopy, molecular imaging reagent development, and fluorescence-based analytical assays.
1. Fluorescent Conjugate Synthesis
BF 350 Hydroxylamine is used in the preparation of dye conjugates for labeling proteins, peptides, and other biomolecular carriers in fluorescence workflows. Teams in chemical biology and fluorescence reagent development incorporate this hydroxylamine partner to generate fluorescent conjugates with defined attachment chemistry, enabling subsequent use in imaging experiments and fluorescence readouts. This is particularly relevant when the labeling strategy requires a hydroxylamine-compatible coupling step to produce stable fluorescent labeling reagents for assay development and molecular imaging studies.
2. Fluorescence Microscopy Labeling
BF 350 Hydroxylamine supports construction of fluorescent labeling tools used in fluorescence microscopy, including labeled biomolecules and imaging reagents for cellular sample characterization. Lab groups performing microscopy-based localization studies rely on dye conjugates prepared from hydroxylamine-enabled coupling to visualize targets with appropriate fluorescence signal for imaging sessions. By integrating this reagent into conjugate preparation, researchers can streamline the production of microscopy-ready fluorescent reagents used for routine imaging and method development.
3. Fluorescence-Based Bioassay Development
BF 350 Hydroxylamine is applied in the development of fluorescence assays where fluorescent conjugates serve as reporting components. Assay developers use dye conjugates prepared with hydroxylamine-enabled coupling as fluorescent reagents for binding studies, assay optimization, and fluorescence readout generation in plate-based formats. This workflow is common in screening and analytical method development environments that require reproducible fluorescent labeling of assay components while maintaining compatibility with standard fluorescence instrumentation.
4. Molecular Imaging Reagent Construction
BF 350 Hydroxylamine is incorporated into the build process for molecular imaging reagents used in fluorescence-based molecular imaging experiments. Researchers in biomaterials science and chemical biology prepare fluorescent constructs that can be integrated into larger imaging platforms, such as labeled affinity reagents and fluorescent probe assemblies for visualization of molecular interactions. The hydroxylamine functionality is leveraged to support reliable conjugate assembly, helping teams generate imaging reagents tailored for their specific fluorescence experimental design.
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