Overview
5-Bromouridine is a halogenated derivative of uridine where a bromine atom substitutes the fifth position of the uracil ring. This structural modification alters its base-pairing properties and makes it valuable for studying nucleic acid structure and function. First synthesized in the mid-20th century, it became an important tool for probing RNA metabolism and virus replication mechanisms. As a thymidine analog, 5-bromouridine gets incorporated into newly synthesized RNA, allowing researchers to track RNA synthesis through techniques like immunoprecipitation or fluorescence detection. Its distinct physicochemical properties also facilitate studies on nucleic acid-protein interactions and RNA folding dynamics.
Physical and Chemical Properties
The compound exhibits typical nucleoside characteristics with added reactivity from the bromine substituent. Its UV absorption spectrum shows a maximum around 280 nm, which differs from natural nucleosides, enabling specific detection. The bromine atom increases molecular weight by approximately 80 Da compared to uridine, a property utilized in mass spectrometry applications. 5-Bromouridine demonstrates moderate stability in aqueous solutions at neutral pH but may degrade under strong acidic or basic conditions. The glycosidic bond shows similar stability to natural nucleosides, though the bromine atom may render it slightly more susceptible to radical-induced degradation. The crystalline form is hygroscopic, requiring careful handling to prevent moisture absorption.
Main Applications
In molecular biology, 5-bromouridine serves as a metabolic label for newly transcribed RNA. Researchers incorporate it into cellular RNA pools, then detect its presence using anti-bromouridine antibodies or through its distinct spectroscopic properties. This application is particularly valuable for studying transcription dynamics in living cells. The compound also finds use in structural biology as a heavy atom derivative for phase determination in X-ray crystallography. Virologists employ it to investigate viral RNA synthesis mechanisms, while biochemists use it to probe RNA-protein interaction sites. Recent applications include single-molecule studies of RNA polymerase activity and high-throughput screening of transcription inhibitors.
Safety and Storage
As a brominated compound, 5-bromouridine requires careful handling to minimize exposure risks. Laboratory personnel should wear nitrile gloves and safety glasses when working with the powder form. Although not classified as highly toxic, prolonged skin contact or inhalation of dust should be avoided. Proper storage involves keeping the material in tightly sealed containers with desiccant packs, maintained at 2-8°C. Long-term stability is best preserved under inert atmosphere. Solutions should be prepared fresh when possible, as aqueous solutions may degrade over time, especially when exposed to light. Waste disposal should follow institutional guidelines for halogenated organic compounds.
B2B Procurement Guide
When sourcing 5-bromouridine for research or industrial applications, verify the supplier's certificate of analysis for purity (typically ≥98% by HPLC) and confirm the absence of nucleoside degradation products. Bulk purchasers should request stability data and consider split shipments for large orders to ensure product integrity. Technical specifications should include water content (Karl Fischer method), residual solvent levels, and endotoxin testing for cell culture applications. For specialized uses like radiolabeling or stable isotope labeling, confirm the specific position of isotopic incorporation. Lead times for custom synthesis can range from 4-8 weeks, so plan procurement accordingly. Consider supplier qualifications such as ISO certification and track record in nucleoside production.
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