Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
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Prunetin

    • Product Name Prunetin
    • Alias 4',7-Dihydroxyflavone
    • Einecs 210-174-3
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    466901

    Chemical Name Prunetin
    Cas Number 729-48-4
    Molecular Formula C16H12O5
    Molecular Weight 284.27 g/mol
    Iupac Name 4'-Hydroxy-5,7-dimethoxyisoflavone
    Appearance Light yellow crystalline powder
    Solubility Soluble in DMSO and ethanol
    Melting Point 226-228°C
    Source Found in Prunus species and other plants
    Synonyms 7,4'-Dihydroxy-5-methoxyisoflavone
    Storage Conditions Store at 2-8°C, protected from light
    Pubchem Cid 5281772

    As an accredited Prunetin factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Prunetin, 1 gram, is packaged in a sealed amber glass vial with secure screw cap, labeled with product details and safety information.
    Shipping Prunetin is shipped in tightly sealed, chemical-resistant containers suitable for laboratory chemicals. It is protected from moisture, heat, and light during transit. Proper labeling is ensured according to regulatory standards. The package includes safety data and is shipped via recognized carriers, complying with international and domestic chemical transport regulations.
    Storage Prunetin should be stored in a tightly sealed container, away from light, heat, and moisture, preferably in a cool, dry, and well-ventilated area. Avoid exposure to strong oxidizing agents and keep at a temperature of 2–8°C (refrigerated) unless otherwise specified. Proper storage ensures chemical stability and prevents degradation or contamination.
    Application of Prunetin

    Applications of Prunetin in Industrial Manufacturing

    As a direct manufacturer of prunetin, we supply this specialty isoflavone to qualified partners across regulated health, personal care, and agricultural markets. The following application scenarios represent authenticated downstream use-cases supported by established processing methods and compliance frameworks. Our technical team ensures each downstream integration meets the relevant quality, safety, and performance requirements for global B2B clients.

    1. Plant-Based Nutraceutical Formulations

    Functional supplement manufacturers incorporate prunetin as a bioactive flavonoid in plant-based nutraceutical blends targeted for cardiovascular and metabolic health. The material’s selection relies on controlled sourcing, micronization, and pre-blend stability screening to align with label claim requirements. Customers process it during granulation or direct compression for final tablets and capsules, with critical monitoring for uniform dispersion and ingredient identity to comply with food supplement labeling laws.

    Industry compliance standards

    • US FDA 21 CFR Part 111 (Dietary Supplements GMP)
    • EU Regulation (EC) No. 1924/2006 (Health Claims Regulation)
    • APAC: GB 16740-2014 (China Food Safety Standard for Health Food)
    • ISO 22000:2018 (Food Safety Management Systems)

    Typical usage ratio

    • 0.02%–0.08% by weight in finished formulations; adjusted based on dosage form and target daily intake, typically 10–40 mg per serve

    Downstream process integration

    • Incorporated during dry blending or pre-mix stage before high-shear granulation, validated by HPLC for quality assurance

    Final product types

    • Direct compressible tablets
    • Vegetarian capsules
    • Plant-based chewables and nutraceutical sticks

    2. Cosmetic Antioxidant Complexes (Anti-Aging Creams and Serums)

    Dermocosmetic labs apply prunetin for its antioxidant profile in specialized anti-aging serums and creams. Integration requires solubility enhancement through encapsulation or lipo-micellar dispersion, ensuring the active remains stable within the emulsion or serum matrix throughout shelf life. Downstream formulators test for uniformity and compatibility with active ingredient portfolios such as vitamin C and niacinamide, complying with restricted substance regulations and product safety assessments in key cosmetics markets.

    Industry compliance standards

    • EU Regulation (EC) No 1223/2009 (Cosmetics Regulation)
    • US FDA Federal Food, Drug, and Cosmetic Act (Cosmetics Section)
    • ASEAN Cosmetic Directive (ACD)
    • ISO 22716:2007 (GMP for Cosmetics)

    Typical usage ratio

    • 0.01%–0.05% by weight in creams and serums; precise content optimized by in vitro antioxidant activity and final texture requirements

    Downstream process integration

    • Introduced during the active addition stage, post-emulsification at 40°C–45°C, or encapsulated for incorporation into lipid phase depending on application

    Final product types

    • Day and night anti-wrinkle creams
    • Functional facial serums
    • Eye contour gels with antioxidant claims

    3. Plant Protection and Biocontrol Agents

    Prunetin serves as a minor natural active in biocontrol formulations aimed at modulating plant defense responses. Agrochemical companies use it in premixed powders or as a carrier in wettable granules for foliar or soil application, partnering it with other plant-derived actives. Process controls ensure uniform micro-dosing and stability against moisture during blending and storage, while formulations must demonstrate controlled release to meet environmental residue limits for field trials and market release.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice (GLP)
    • EU Regulation (EC) No. 1107/2009 (Plant Protection Products)
    • US EPA 40 CFR Parts 150–189 (Pesticide Chemicals)
    • China ICAMA Regulation on Biopesticides

    Typical usage ratio

    • 0.01%–0.1% active content in finished biocontrol granule or wettable powder; dosage refined through field efficacy studies

    Downstream process integration

    • Incorporated during dry blending of microbial or botanical biocontrols, pre-extrusion or spray-drying for granular and powder forms

    Final product types

    • Foliar biocontrol granules
    • Plant defense-activating wettable powders
    • Soil amendment carriers for horticulture

    4. Functional Food Ingredients (Beverages and Snack Fortification)

    Manufacturers of health-oriented foods and drinks utilize prunetin as a plant-based fortification additive for functional beverages and non-thermal processed snacks. Regulatory food ingredient status limits concentration and mandates validated allergen-free content. Downstream integration requires rapid blending into dry premixes or direct solution during beverage processing under nitrogen to preserve activity, with downstream monitoring for thermal degradation during short pasteurization or extrusion steps. Finished applications adhere to regional food additive codes.

    Industry compliance standards

    • EU Regulation (EC) No 1333/2008 (Food Additives Regulation)
    • US FDA GRAS Notification Procedure
    • Japan Food Sanitation Act (Ingredient Standards)
    • FSSC 22000 Food Safety System Certification

    Typical usage ratio

    • 0.005%–0.02% by weight in fortified beverages or snack matrix; optimized to remain below maximum daily intake guidelines and sensory thresholds

    Downstream process integration

    • Direct blended with base powder premix, or dissolved in aqueous phase ahead of final bottling or low-temperature extrusion step; protected from light and oxygen to maintain polyphenol activity

    Final product types

    • Functional fruit and herbal beverages
    • Non-thermal process protein or cereal bars
    • Ready-to-mix drink sachets aiming at adult nutrition

    5. Pharmaceutical Research APIs for Experimental Therapy

    R&D teams in pharmaceutical companies use prunetin as a defined reference active and research intermediate for preclinical assays focused on anti-inflammatory modulation. Integration into pilot processes involves high-purity isolation, pharmaceutical-grade micronization, and stringent analytical release. Downstream, it is suspended or solubilized in research-validated excipients for oral or topical delivery systems. Each research phase must generate full traceability and batch-level documentation for regulatory submission in investigational new drug programs.

    Industry compliance standards

    • ICH Q7 (GMP for APIs)
    • EU GMP Volume 4 (APIs)
    • US FDA 21 CFR Part 210/211 (Drug Quality Systems)
    • Pharmacopoeias: USP, EP monographs (where applicable for quality testing)

    Typical usage ratio

    • Concentration determined by target in vitro or in vivo assay, typically 1–100 μM in cell studies or mg/kg body weight in animal models; not fixed for commercial drug products

    Downstream process integration

    • Dissolved directly in DMSO or ethanol vehicles, or included in topical research vehicles as final step, under validated cleanroom conditions for GMP research

    Final product types

    • Research reference standards
    • Pilot batch oral and topical test articles for preclinical screening
    • API intermediates for IND application studies
    Free Quote

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    Certification & Compliance
    More Introduction

    Prunetin: Bringing Plant-Derived Solutions to Modern Industry

    Real-World Manufacturing Experience with Prunetin

    In our work as chemical manufacturers, we’ve learned to look beyond what a molecule is “supposed” to do on paper. Prunetin, a naturally occurring flavonoid, shows up in scientific literature for its biological activity and plant-based origin. But to those in the industry, it stands out for how it performs in the real world—holding up under the pressures of production scale, responding well to consistent synthesis methods, and meeting the practical demands of our clients. While many see prunetin as another phytoestrogen or antioxidant, our direct hands-on work with this compound lets us see both its strengths and limits in action.

    Model, Specifications, and What Matters in Production

    We supply our prunetin in a technical grade aimed at both research and formulation applications. Our focus remains on purity and reproducibility. We’ve built our workflow around producing prunetin with purity levels well above 98% by HPLC, which consistently meets what pharmaceutical and nutraceutical manufacturers look for. The product comes as a fine yellowish crystalline powder, with tight lot-to-lot control on moisture and ash content, assuring ease of storage and minimal clumping under regular warehouse conditions. Solubility—always a concern with flavonoids—lands at the levels needed for both solvent-based reactions and suspension blending.

    Every production batch undergoes rigorous analysis for heavy metals and pesticide residues. Not because it’s a regulatory checkbox, but because the end uses—bioactive research, supplements, functional food prototypes—demand a trustworthy raw input for experimentation and finished goods. In our facility, processes are closed, line cleaning practices strict, and ingredient flow monitored electronically. Human error still lurks, so our team checks batches directly, taking pride in handing off an unadulterated material.

    Usage Based on Real Industry Feedback

    Small labs and larger companies use prunetin for a spectrum of projects: formulation of dietary supplements, incorporation into topical products, and bioactivity research for disease models. Over the years, feedback from customers and our own documentation show that the substance handles high-heat mixing and direct compression with little degradation—key for tableting and encapsulation. One typical observation: prunetin resists discoloration, even in multi-step blending and preliminary shelf-life studies. This trait shaves time off formulation because stability hurdles appear later rather than right at the outset.

    Beyond human and animal health, some plant growth research circles are now experimenting with prunetin to probe its signaling pathways. It’s rewarding to see colleagues in academic and industrial settings take a compound we manufacture and find new stories to tell—from receptor binding to yield boosts in stress-prone crops. That real-world exchange of information fuels the changes we make in process, packaging, and testing.

    How Prunetin Differs from Other Flavonoids

    It is tempting to lump prunetin together with more well-known flavonoids—apigenin or genistein get the most attention in broader consumer literature. Yet the distinctive methylation pattern in prunetin’s structure changes its chemical personality. Compared to genistein, for example, prunetin shows unique solubility, stability, and interaction profiles. In our experience, this affects extraction yield and purification routes. When we run parallel syntheses for these compounds, prunetin tolerates a wider temperature margin before showing breakdown products or off-color materials. That makes a difference for producers handling bulk volumes who need to keep process interruptions and batch failures at bay.

    The bioactive properties might overlap, yet practical differences in formulation, shelf life, and compatibility with modern encapsulation technologies separate prunetin from its cousins. For companies developing new finished products, these details matter: higher melting point, lower tendency for oxidative browning, and a more robust response to typical excipients. Leading researchers confirm that prunetin also appears less prone to causing cross-reactivity in combined plant-extract matrices. That lends confidence in stability and predictability of the end product, reducing surprises during high-volume runs.

    Challenges from Manufacturing to Application

    Extraction and synthetic routes for plant-derived molecules often bring headaches. Sourcing raw botanical input with uniform prunetin content is now harder than it was five years ago, due to both agricultural variables and greater global demand for specialty flavonoids. Inconsistent botanic input leads to unpredictable yields, which threatens planning and pricing down the line. Our experience pushes us to prioritize vertical R&D, moving away from pure extraction toward semi-synthetic methods where we control every input down to the solvent grade.

    Sometimes, we run pilot batches using natural precursors sourced from certified growers, running them head-to-head with batches from our semi-synthetic process. We measure impurity profiles, byproducts, and yields. The data tells us that the best batches almost always come from locked-down, carefully monitored chemistries rather than uncontrolled agricultural seasons. That realization comes from a decade of chasing plant material across the world and being burned by supply shortages at the worst times.

    End-to-End Control and Future Trends

    Traceability drives our process. Our clients regularly request documentation that follows prunetin from the plant or initial substrate all the way through to the final drum or jar. Blockchain and digital ledger technologies now let us log every step—down to operator initials and instrument calibration records. While these steps add cost, we’ve seen how downstream manufacturers benefit when regulatory audits or customer complaints arise. As regulators in Asia and North America ramp up scrutiny on natural ingredient supply chains, these measures pay off in both compliance and peace of mind.

    On the technology side, micronization and particle size customization get more attention each year. Some of our customers found that adjustment in prunetin’s particle size enhances dissolution rates in both aqueous and lipid-based systems. Our plant added custom mills and precise in-line sizing equipment, responding directly to these needs—not to chase industry trends, but because people with production lines depend on that flexibility to innovate.

    Comparing Customer Experiences Across Sectors

    While cosmetic manufacturers appreciate prunetin’s mild, naturally-sourced profile and resistance to oxidative yellowing, pharmaceutical groups look instead for precise, measurable dose delivery. Those distinct business goals mean we get a full spectrum of technical questions: “Will this survive a 40 degree Celsius stability study?” “Can we disperse it uniformly in a surfactant base?” “Has this lot tested below 0.1 ppm in lead and arsenic?” Being the link between raw chemical synthesis and real-world application, we take these as design constraints rather than afterthoughts.

    Our team has worked alongside food product developers who want to add botanicals to functional beverages without triggering precipitation or haze. Prunetin’s solubility curve compared to other flavonoids means less downstream filtration and more stable liquid formulas. In OTC preparations, formulators focus on safe, gentle effects and minimal bitterness—a spot where prunetin’s flavor neutrality and low residue content matters. The feedback loop between our production floor and client application labs keeps us focused on ways to tweak, refine, or expand the specifications for new uses.

    Market Context and Regulatory Trends

    In today’s market, everyone from supplement giants to boutique wellness companies proclaims transparency, clean sourcing, and sustainability. From where we stand, these aren’t marketing buzzwords—they are practical realities. Environmental monitoring at our facility is constant: water use, solvent recovery, and emission tracking get audited, not just for certifications but to keep costs low and future-proof our operation against regulations moving targets. Certifications for botanical-derived chemicals shift as scientific consensus and government policy change; that requires constant updating of documentation and sometimes a scramble to source non-GMO or organic-compliant feedstock.

    We see more regional differences on maximum allowed levels for heavy metals, pesticide residues, and even trace solvents or plasticizers. Regulatory harmonization rarely happens fast enough for global brands, so we keep our prunetin compliant across all major zones—testing for Aflatoxin, PAHs, and PAEs even where not mandated. Years of sending documentation to both major regulatory bodies and direct clients has shown us the gap between legal compliance and what buyers demand for their own assurance.

    Why Consistency and Transparency Win

    Experience has taught our team one hard truth: a raw material shows its real character only under scaled operational pressure. Prunetin, though boasting published health benefits, delivers its promise only if produced under controlled standards and tight process discipline. We focus energy on deep traceability, clean chemistry, and respect for what our customers accomplish downstream—knowing a careless synthesis or a lapsed purity check can unwind months of product development for our partners.

    Requests for non-animal testing certificates, allergen statements, and batch-specific Certificate of Analysis documents have become the expectation, not the exception. The best outcomes we’ve seen come from collaborative relationships, where our technical team speaks directly with the QA leads, formulators, or production engineers using the material. The give-and-take of technical needs, reformulation trials, and feedback on performance—this drives us to push prunetin’s quality higher and keep support responsive in real time.

    Potential for Broader Applications

    Research labs chase structure-activity relationships, mapping out where prunetin might play a role in cellular health, metabolic modulation, or dermal restoration. Each use-case pushes our manufacturing to new fronts: finer grades for cell culture, custom packaging for field deployability, or purity tweaks for advanced analytics. We see growing interest from animal health groups who want prunetin to replace synthetic additives in animal feeds and veterinary products, citing tolerance and safety profiles derived from both published studies and their own trials. That kind of feedback sparks innovation all along the supply chain, nudging us toward optimized forms for each unique challenge.

    Without claiming silver bullet status, prunetin’s unique molecular profile and our approach to manufacturing unlock more than just a plant active—this is a tool for problem-solving across industries. Whether the goal is a more stable nutrition product, a safer cosmetic, or a replacement for less sustainable synthetic ingredients, our business keeps pace with the evolving science and practical needs on the ground.

    Key Differences in Application and Customer Choice

    Whereas bulk flavonoids like quercetin have a wide but shallow penetration into multiple consumer products, prunetin’s reach depends on specialized knowledge of both its chemistry and real manufacturing limits. New entrants usually want reassurance: does it process like genistein, or are there quirks that only become obvious after a pilot batch? Over time, we’ve documented best practices that cut across markets: direct dissolution in ethanol or DMSO for research, gentle grinding for powder blends, and minimized heat exposure during extrusion. Our technical team responds to outlier challenges too—like scaling up from a 10 kg batch to a 500 kg lot without losing control of particle size or purity.

    Comparing prunetin to products like daidzein or hesperidin, we see differences in taste, reactivity, and bulk density. That means different handling in GMP rooms—less dust, easier pouring, more reliable transfer between states in multi-stage processing. The learning curve is short for operators, and feedback from both line supervisors and QA analysts has informed how we label, store, and transport each batch.

    Pushing Forward with Data and Collaboration

    Our commitment to in-house research, open technical support, and ongoing dialogue with formulators means that the prunetin we produce today isn’t the final word. Year after year, we run storage trials, incompatibility experiments, and blend studies with both new and established partners. Data flow improves outcomes; we track issues discovered in customer plants and fold those learnings back into the next run. These lessons go into every shipment, helping buyers avoid common pain points and get the most out of the material.

    Emerging applications—biosensors, specialty coatings, even smart packaging—now drive our next wave of prunetin research. While the mainstream focuses on health and wellness, advanced engineering teams challenge us to improve functional performance: thicker films for moisture resistance, longer color hold in food, controlled release in medical devices. The ability to tune specifications and batch controls means that we respond in time to both regulatory shifts and new scientific breakthroughs. Being on the shop floor, close to every run, gives us the focus and drive to stay ahead of these demands.

    Lessons from Constant Change

    Supplying prunetin over multiple years, through both stable and volatile markets, we’ve seen plenty of challenges: weather shocks that disrupt agricultural sources, price spikes as demand outpaces supply, and new safety signals that require rapid adaptation. No spreadsheet or model predicts the surprise upticks in demand or the simple problems that crop up on a packaging line mid-run. That lived experience reminds us that no compound—plant-derived or otherwise—operates in isolation. Reliable production rests on robust processes and the willingness to adapt at every stage.

    Listening to feedback from those who run plants and prepare products delivers the strongest advantage. Every issue flagged, from moisture ingress to odor taint, gets logged and drives improvement. We keep open lines of communication and welcome technical audits, knowing that trust grows when customers see our workflow and have a direct say in resolving challenges. That hands-on approach, and our refusal to cut corners in pursuit of short-term savings, has earned repeat business from both multinationals and nimble startup teams.

    Final Thoughts from the Manufacturing Floor

    All our years shaping, upgrading, and refining prunetin manufacturing have shown us that value comes from consistency, candor, and control. As manufacturers—not just brokers or resellers—we take pride in what leaves our facility, knowing it reflects both the rigor of our chemistry and the honesty of our front-line staff. Every kilo tells its own story; ours is steered by real feedback, real improvements, and a drive to see prunetin power new products in health, food, and technology. That is the responsibility and the reward of those who manufacture—not just supply—the real stuff.