H-L-Orn(N3)-OH hydrochloride

H-L-Orn(N3)-OH hydrochloride Catalog number: BADC-01895

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H-L-Orn(N3)-OH (hydrochloride) is a click chemistry reagent containing an azide group.

Category
ADCs Linker
Product Name
H-L-Orn(N3)-OH hydrochloride
Catalog Number
BADC-01895
Molecular Formula
C5H11ClN4O2
Molecular Weight
194.62

Ordering Information

Catalog Number Size Price Quantity
BADC-01895 -- $-- Inquiry
Description
H-L-Orn(N3)-OH (hydrochloride) is a click chemistry reagent containing an azide group.

H-L-Orn(N3)-OH hydrochloride is a chemical compound used extensively in the bioscience industry, particularly in research and medical applications. Here are some key applications of H-L-Orn(N3)-OH hydrochloride:

1. Peptide Synthesis: H-L-Orn(N3)-OH hydrochloride is often used as a building block in the synthesis of peptides. Its unique structure allows for the incorporation of azido groups, which are essential for click chemistry reactions. This facilitates the creation of complex peptides with high precision and specificity.

2. Drug Design and Development: In pharmaceutical research, H-L-Orn(N3)-OH hydrochloride is employed to develop novel therapeutic compounds. Its azido group can be modified to produce a variety of derivatives, enabling the exploration of new drug candidates. This versatility makes it a valuable tool in the discovery of drugs targeting specific diseases.

3. Bioconjugation Studies: H-L-Orn(N3)-OH hydrochloride is utilized in bioconjugation techniques to attach biomolecules to various surfaces or other biomolecules. The azido group can participate in click chemistry reactions, making it ideal for labeling proteins, nucleic acids, or other cellular components. This aids in the visualization and study of biological processes at a molecular level.

4. Protein Engineering: Researchers use H-L-Orn(N3)-OH hydrochloride in the field of protein engineering to introduce azido groups into proteins. These modified proteins can then undergo further chemical modifications, enabling the study of protein function and interactions. This approach is crucial for understanding the structure-function relationships of proteins and for developing protein-based therapeutics.

The molarity calculator equation

Mass (g) = Concentration (mol/L) × Volume (L) × Molecular Weight (g/mol)

The dilution calculator equation

Concentration (start) × Volume (start) = Concentration (final) × Volume (final)

This equation is commonly abbreviated as: C1V1 = C2V2

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