| HS Code | 228517 |
| Productname | Brucine Hydrochloride |
| Casnumber | 5893-36-9 |
| Molecularformula | C23H27N2O4·HCl |
| Molecularweight | 430.94 g/mol |
| Appearance | White to off-white crystalline powder |
| Solubility | Soluble in water and alcohol |
| Meltingpoint | 270-271°C (decomposes) |
| Storageconditions | Store at 2-8°C, keep container tightly closed |
| Synonyms | Brucine monohydrochloride |
| Purity | Typically ≥98% |
| Usage | Analytical reagent, chiral resolution agent |
| Hazardclass | Toxic if swallowed, skin irritant |
As an accredited Brucine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Brucine Hydrochloride, 25g, packaged in an amber glass bottle with tamper-evident seal and detailed chemical hazard labeling. |
| Shipping | Brucine Hydrochloride is shipped in tightly sealed containers, compliant with regulations for hazardous materials. Packaging ensures protection from moisture, heat, and light. All shipments include appropriate labeling, safety documentation, and handling instructions. Transport typically follows ADR, IATA, or IMDG guidelines, ensuring secure and safe delivery to laboratories or authorized facilities. |
| Storage | Brucine Hydrochloride should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizers. Protect it from light and moisture. Ensure the storage area is secure and access is limited to trained personnel. Follow all relevant safety and regulatory guidelines for toxic chemicals. |
Brucine Hydrochloride, produced to strict industrial specifications, finds established downstream usage in fields where its alkaloid properties and bitterness profile meet targeted technical or regulatory needs. Below, we detail primary application areas served by our manufacturing partners, focusing on specific standards, dosage, processing steps, and end product types.
Pharmaceutical formulation scientists routinely employ Brucine Hydrochloride as a bitterness reference standard during preclinical and quality-control phases, especially in the calibration of taste panels assessing palatability-masked dosage forms such as oral liquids and soluble tablets. The use of this compound facilitates method development and calibration for both Quality Control instrumentation and human taste sensory teams, supporting repeatable product characterization and development of taste-masked APIs.
Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
Many commercial and government analytical laboratories require Brucine Hydrochloride as a primary reagent in colorimetric assays (notably for nitrate/nitrite analysis) in environmental, food, or pharmaceutical testing. It participates in diazotization reactions that achieve highly specific colorimetric readings when measuring trace nitrite in samples, serving a distinct function as a critical chromogenic reagent in validated protocols across water quality and food safety labs.
Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
Institutes specializing in sensory science and psychophysical studies of human taste perception use Brucine Hydrochloride as a reference compound for bitterness, especially in genetic and clinical research studying bitter taste receptor response variability among populations. Sophisticated academic and private research organizations depend on this alkaloid for generating reliable dose–response data and for quantifying subjects' taste sensitivity using validated, reproducible protocols.
Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
Commercial and contract analytical laboratories require reliable calibration standards to support precise quantitation using liquid chromatography (LC), mass spectrometry (MS), or spectrophotometry. Brucine Hydrochloride maintains a defined absorbance spectrum and chemical stability, making it suitable for validation of instrument performance in the context of bitter compound quantitation, detection-limit determination, and method performance verification, directly supporting analytical method accreditation and routine QA workflows in laboratory environments.
Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
Competitive Brucine Hydrochloride prices that fit your budget—flexible terms and customized quotes for every order.
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Brucine Hydrochloride finds its way into our daily operations as a crystalline solid, typically off-white, prized for its consistency and traceable performance qualities. Here in the plant, handling this compound is more than just a matter of following established processes. We constantly monitor its purity—since most end-users measure everything by reproducibility and analytical transparency, we’ve learned to keep a tight grip on upstream raw materials and the environment. Specifying our standard model, purity levels hover around >99% (HPLC), tailored for the exacting standards of researchers and formulation chemists, particularly in pharmaceutical and analytical work.
From my years on the production line, certain specifications have proven less negotiable than others. Moisture content often receives close attention, so our batches come with a moisture cutoff below 0.5%. Should a batch measure outside target limits, it doesn’t leave our facility—period. As for particle size, most customers favor a free-flowing powder; agglomeration or caking means we need to revisit our drying and grinding protocols. Every day, I observe how small changes in process parameters—room humidity, rate of acidification, even the type of stirring blade—can tip the product in or out of spec. We use laboratory validation before packaging, running another HPLC purity check, and confirming identity against certified reference standards.
Most of our Brucine Hydrochloride output lands in research, where it serves as a robust agent for chiral resolution and analytical detection. I’ve watched it prove itself time after time in separating or differentiating optical isomers. Synthetic chemists lean heavily on its selectivity when resolving racemic mixtures—brucine salts form with several organic acids, allowing precise separation by fractional crystallization. Routine requests come from groups studying alkaloid reactions, or from those developing new HPLC methods, who rely on its ability to interact with target enantiomers. I speak with researchers who say switching to our consistently pure model eliminates hours spent troubleshooting unexplained baseline noise or peak drift.
Diagnostics firms come to us for Brucine Hydrochloride’s use in colorimetric detection of nitrates or certain alkaloids. Here the compound acts as a robust analytical reagent—laboratories want to minimize uncertainty sources, so the purity and stability of the reagent matter. In smaller but consistent quantities, university labs, contract research organizations, and developers of specialized chemical sensors consider it essential in their workflows.
Regular and direct communication with those in application development has shaped how we approach stability. Shipping during the summer reinforces the need for the correct packaging and prompt transfer to controlled storage conditions. Our long-standing customers remind us that moisture and oxygen sensitivity (though not as pronounced as in some other alkaloids) will influence not just shelf-life but also baseline reproducibility in analytical runs.
Most generic suppliers treat Brucine Hydrochloride as just another SKU. Our hands-on experience tells a different story. We track each batch’s chemical fingerprint—UV-Vis spectrum, melting point, and residual solvent profile—against established references rather than allowing “good enough” margins. In practice, if a research lab receives a bottle with clouded crystals or signs of premature yellowing (oxidative discoloration), the entire batch can bring doubt. That’s why, instead of storing bulk product for months, we invest in smaller, more frequent batch synthesis, supporting shelf-life and minimizing the risk of time-drifted composition.
Customers sometimes ask why pricing fluctuates compared with certain overseas listings. Anyone at our production line can show how real costs differ if you’re using food-grade solvents or just running reaction vessels in poorly ventilated environments. We stick to low-residual, pharmaceutical-grade solvents. Each solvent batch gets logged, and cleaning protocols run double cycles between syntheses to minimize any risk of cross-contamination.
Some “industry standard” brucine salts arrive with detectable levels of denaturants or non-alkaloid impurities. The difference comes to light during storage or downstream reactions—mystery peaks on a chromatogram or inconsistent endpoint in colorimetric tests. Our continuous in-house testing guards against these pitfalls. I still recall a time when an incoming batch let through a mild contamination from container adhesives—one round of customer feedback prompted us to overhaul our packaging entirely. Since then, we have moved to high-barrier, inert packaging with desiccant sachets for every consignment above 1 kg.
Feedback cycles don’t stop at quality. Shipment tracking and real-world transport stability gain just as much attention. Shipments to humid climates include both humidity indicators and secondary liner bags; we advise end-users on best-practice storage and take returned product seriously, logging every complaint in our deviation analysis registry.
A lot of folks ask what makes Brucine Hydrochloride different from Strychnine Hydrochloride or other related alkaloids. Both share a similar structural backbone, and both have been used historically in medicine and research. Yet, differences run deep—the methyl ether group on brucine affects both solubility and biological activity. In our lab, the toxicity profile is notably milder for brucine than for strychnine, a fact that shapes handling, transportation rules, and permitted uses. This slight shift doesn’t just affect regulatory designations; it changes how you structure your extraction and purification. Our product specification reflects these real-world differences—solubility in water and alcohol, melting point, and spectral resonance all come into play. Never once have we seen a customer successfully substitute one for the other without method adaptation. Regulatory paperwork might treat these compounds as twins, but process chemists can pick the differences instantly by the way crystals behave or dissolve under heat.
Another frequent question touches on the relationship between brucine (base) and its hydrochloride salt. Users looking for the base often call after trying to substitute the salt, only to find it insoluble or unsuitable for their process. We explain that salt formation raises water solubility and softens the base’s otherwise strong alkalinity. Pharmaceutical developers benefit from this shift, gaining options for both synthesis and downstream delivery forms. During certain chiral resolutions in our own pilot plant, water solubility made the salt a better fit—something the literature often glosses over but real lab work proves out quickly.
Some still raise concerns about possible degradants during long-term storage. Unlike many high-reactivity compounds, Brucine Hydrochloride keeps well under the right conditions—tight sealing, avoidance of direct sunlight and atmosphere, storage in amber glass or high-barrier polyethylene. We sometimes get batches returned for analysis after long warehouse downtimes. Nine times out of ten, these still meet key purity metrics; the rare outlier reveals issues with external contamination or faulty sealing, not with the inherent stability of the product itself.
Over the years, raw material sourcing has shifted. Centuries-old supply chains for Strychnos nux-vomica, the natural feedstock, remain subject to political and seasonal variability. We’ve learned to anticipate disruptions—in one drought year, alkaloid content plummeted, pushing us to prequalify alternate sources and support them with in-house testing. From field collection through extraction to purification, supply chain transparency keeps our audit trail clean. Many clients now require proof of origin down to the country and botanical harvest, and we have built documentation protocols to support this.
Regulatory scrutiny has changed our workflow considerably. Brucine and its salts fall under controlled substances frameworks in many jurisdictions. Our compliance department deals directly with local and international authorities, logging all movement, storage, and transfers. Regular audits by health authorities, and by our own downstream partners, have sharpened our ability to demonstrate both physical and digital traceability. The difference between a compliant batch and a rejected shipment narrows year after year—one supplier lapse can wipe out an entire year’s trust.
Continuous process improvement is never a checkbox; it’s an everyday habit. We take feedback from application scientists, formulation chemists, and even shipping coordinators, looping suggestions straight back into process review. Not so long ago, a technologist flagged a subtle lot-to-lot color shift. Rather than dismiss it as a non-critical attribute, we reexamined our extraction solvent selection, discovering that a minor variance in pH control at the extraction stage explained the change. We now run high-frequency pH monitoring in every extraction batch, not just at process start and finish.
The point of manufacturing isn’t just to ship inventory. Day in, day out, we field requests for technical details, batch samples, or even unusual packaging formats. It’s common to hear from graduate students struggling to optimize an analytical protocol. Our team takes time to walk them through the subtle quirks of the compound—say, the tendency for brucine-based reagents to develop faint yellowing if exposed to damp air during method setup. Those are details only a producer with hands-on experience can explain. Each person in the line feels a responsibility to our downstream users not as anonymous clients, but as partners in a much larger process of chemical innovation and safe application.
We’re also a point of resource for those designing new toxicology or pharmacology research. Although brucine’s historic reputation as a toxic agent marks its use in experimental work, our scientists assist with documentation, background references, and even discussions about mitigation. The idea isn’t to encourage use without caution—it’s to support informed engagement with chemical hazards and real-world behavior, not just black-letter regulatory advice.
With changes in analytical technology, chromatographic and spectrometric users expect suppliers to stay nimble. We collaborate with technical teams in creating app notes, offering sample measurements, and performing stress-testing protocols. This active engagement, rather than a “ship and forget” mentality, builds substance into every delivery. The day researchers start asking for support with next-generation molecular methods, we’ll pivot with them to meet those demands with data, not just reassurance.
Managing scale is a reality we live every day. Small-batch quality suits high-end research labs, but commercial-scale runs mean pressure on both consistency and throughput. Our production engineers have invested years in automating grinding, drying, and packaging to match larger batch needs, minimizing runoff and ensuring that every kilogram receives the same lot-level testing as a single gram bottle.
The matter of environmental responsibility no longer stays tucked away in regulatory compliance files. Solvent recovery, water handling, and waste minimization are priorities—no batch runs to completion without review of its input/output balance. For every major batch, our team documents not just yields and impurity profiles, but also solvent recycling and energy use. Several clients now require full process transparency, expecting suppliers to map out every kilogram of input and output waste. This responsibility goes beyond compliance; it’s a daily practice. If our current setup lags, process innovation takes priority. Some of our most effective upgrades—closed-loop solvent systems, real-time emissions tracking, and restructured waste storage—grew out of these client-driven expectations.
Producing Brucine Hydrochloride with dependable quality means seeing each step through the lens of both operator and end-user. Behind every bottle stands a continuous sequence of measurements, hands-on checks, and decisions backed by long years of experience. We stand by every gram shipped, knowing that the process behind it shapes not only its properties on paper, but also its real-world value in the research lab or the process line.
Along with our day-to-day manufacturing protocols, we keep an open door to practical feedback and emerging scientific requirements. Much of what sets this product apart is the rhythm of listening—to analytical chemists wrestling with protocol validation, to industrial partners with a need for scale, to regulatory officers with critical compliance checklists. The discipline and insight won through direct, accountable production feeds into everything we deliver. Each lot isn’t just a code or a line on an invoice; it’s a commitment to supporting broader scientific progress, grounded by the rigor and care of those who make the substance, not just move it through supply chains.