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HS Code |
692119 |
| Cas Number | 946332-80-7 |
| Molecular Formula | C26H30O11 |
| Molecular Weight | 518.51 g/mol |
| Appearance | Yellowish powder |
| Purity | ≥98% (HPLC) |
| Solubility | Soluble in DMSO, methanol |
| Storage Temperature | -20°C |
| Chemical Class | Flavonoid glycoside |
| Synonyms | 8-(3-methyl-2-butenyl)naringin |
| Structure Type | Prenylated naringin derivative |
| Source | Synthetic or citrus species |
| Inchi Key | OZSPGBUDIAIHMN-PMEKAGEJSA-N |
| Canonical Smiles | CC(C)=CCC1=CC(=C2C(=C1)O)C3=CC(=C(C=C3O2)O)O[C@@H]4[C@H]([C@@H]([C@H](O4)CO)O)O |
As an accredited 8-Isopentenylnaringin factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 8-Isopentenylnaringin, 100 mg, supplied in a clear, labeled glass vial, securely sealed with a tamper-evident cap. |
| Shipping | 8-Isopentenylnaringin is typically shipped in sealed, inert containers to prevent contamination and degradation. It should be stored and transported at a controlled temperature, away from direct sunlight, moisture, and incompatible substances. Packaging complies with safety regulations for chemicals to ensure safe handling during transit. Shipping documentation includes proper labeling and safety data. |
| Storage | 8-Isopentenylnaringin should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, preferably at 2-8°C (refrigerator). Avoid exposure to strong oxidizing agents. Proper labeling and adherence to safety regulations are essential to ensure stability and prevent degradation or contamination during storage. |
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Purity 98%: 8-Isopentenylnaringin with a purity of 98% is used in pharmaceutical formulation, where it enhances the bioavailability of active compounds. Molecular weight 610.6 g/mol: 8-Isopentenylnaringin with a molecular weight of 610.6 g/mol is employed in nutraceutical development, where it provides consistent compound delivery and activity. Melting point 235°C: 8-Isopentenylnaringin with a melting point of 235°C is utilized in thermal processing for food additives, where it ensures formulation stability under high-temperature conditions. Stability at pH 7: 8-Isopentenylnaringin with stability at pH 7 is incorporated into cosmetic emulsions, where it maintains antioxidant efficacy during storage. Particle size D90 < 20 μm: 8-Isopentenylnaringin with a particle size D90 less than 20 μm is applied in tablet manufacturing, where it improves dissolution rate and uniformity of dosage forms. Solubility in ethanol 20 mg/mL: 8-Isopentenylnaringin with solubility in ethanol at 20 mg/mL is used in botanical extract preparations, where it allows for efficient extraction and formulation. |
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In the laboratory, subtle differences in molecular structure shape how raw materials transform into products that push discovery forward. Over years spent on the production floor and inside R&D meetings, one lesson stands out: success follows expertise, not marketing slogans. For every batch of 8-isopentenylnaringin that comes out of our reactors, there's a story of persistence, methodical improvement, and attention to detail. This compound represents a proud achievement—not as a commodity, but as a chemical we hone from start to finish.
Our team first turned to naringin derivatives based on feedback from longtime botanical research partners. The need for more targeted antioxidants, with clear-cut physical stability, prompted us to dig deeper into prenylated flavonoids—a family of molecules that reveal surprising functional upgrades when given the right tweaks. 8-Isopentenylnaringin stands apart, not only as a naringin modification, but because the isopentenyl group at its eighth position unlocks a new realm for both solubility and biological potential. We fine-tuned the synthesis route to consistently provide a high level of purity and reproducibility, learning the quirks of each precursor along the way.
No two chemical processes are exactly alike. We construct each run of 8-isopentenylnaringin on our proprietary semi-synthetic route, marrying decades of solvent-extraction experience with enzymatic prenylation to keep impurities in check and yields stable batch after batch. Most lots feature assay tests exceeding 98% purity by HPLC and minimal traces of residual solvents, confirmed by independent chromatography and in-house cross-checks. With a defined melting range, clear UV absorption maxima, and powder consistency tailored over hundreds of iterations, the product does not show the sticky, resinous finish often found in hastily prepared analogues.
Handling 8-isopentenylnaringin in the plant or lab never turns into a guessing game. The powder flows well during weighing, disperses evenly for pilot-scale trials, and resists caking when stored in dry, sealed containers. We pack each kilogram in airtight, light-resistant drums, using linings that hold up against both humidity and organic solvents. End-users regularly comment on the powder’s crisp, pale-yellow tint and effortless redissolution—even after months in stockrooms, the product’s integrity holds up. In-house teams track the shelf life through ongoing stability studies without relying on supplier claims. We share those data openly with collaborators who want to make informed decisions before scaling research or application development.
Years of working alongside extraction chemists and formulation scientists taught us that application needs shape how we optimize production. 8-Isopentenylnaringin found its place in several sectors, typically first piloted in research settings before advancing to full commercial doses. Core uses revolve around its distinctive antioxidant capacity, with teams examining its ability to moderate oxidative stress in food, cosmetics, and pharmaceutical projects. Its performance against standard naringin impressed immunology-focused partners, who noted improved cellular uptake and stronger protection in oxidative models.
Some research groups have incorporated 8-isopentenylnaringin in studies testing cell signaling pathways related to inflammation and aging. Unlike general-purpose flavonoids, which either degrade or precipitate in some emulsions, our product keeps clarity in solutions often used for topical gels, serums, and oral formulations. Teams involved in pilot projects for functional foods report easier integration compared to conventional citrus extracts. The glycoside linkage and prenyl group both contribute: the prenyl chain improves membrane permeability, while the sugar moiety maintains water compatibility and taste masking for oral products.
We never dictate where end-users should take 8-isopentenylnaringin. Instead, we stay available for technical feedback sessions, eager to troubleshoot, adjust, or shift the process depending on each customer’s line trials. Some partners push for cost efficiency by running bulk-scale tests, while early adopters in research contract us for small-batch runs tailored to investigative protocols. In both cases, experience matters. Our crew knows how temperature swings or tank residue shift yields, and we set up QA checkpoints to catch problems before they reach a blending tank, not after.
The chemical marketplace is flooded with hundreds of citrus-based flavonoids, and professionals quickly spot the difference between a carefully crafted specialty ingredient and a bulk extract with inconsistent profiles. Standard naringin and naringenin products suit many basic applications but fall short on advanced performance criteria. That’s where subtle structure upgrades pay off. The isopentenylation at the eighth carbon changes both functional and handling properties. We see tighter, more predictable partitioning in solvent assays, sharper peaks in HPLC, and enhanced solubility—even in lower polarity systems—compared against routine glycosylated flavonoids.
From a sensory standpoint, the bitterness and aftertaste that plague many naringin sources is significantly calmer in this derivative, a detail our partners in the beverage and supplement world value. We receive regular updates from manufacturers who test load tolerances in finished products; with 8-isopentenylnaringin, they report fewer sensory complaints and greater batch-to-batch consistency in taste masking, which can make or break a new food launch.
The synthetic pathway also drives uniformity: consistent molecular weight distribution, minimal byproducts, and clear documentation for downstream risk assessment. Technical support teams rely on these fine-grained quality controls not as marketing tools, but as real-world aids during regulatory review and product launches. The chromatography profiles we provide are not boilerplate—they reflect our real process data, and we update them each time process tweaks or seasonal naringin feedstock changes occur. No surprises, no guesswork.
Manufacturing specialty chemicals never follows an easy script. Our route to 8-isopentenylnaringin met classic roadblocks: raw material shortages one season, enzyme supplies delayed at customs the next, a pilot filtration rig that clogged during scale-up. Years in this business sharpen instincts for troubleshooting, but real improvement comes from building feedback loops with end-users. Whenever a customer notes a clump, a residue, or an unexpected organoleptic shift, we run not just batch reanalysis but also hands-on tests in our own pilot line—a commitment that keeps waste and recalls down to negligible levels.
We learned to cope with raw material bottlenecks by developing multiple sourcing channels for citrus peels and essential prenyl donors. Our process engineers work closely with agricultural partners to keep the naringin precursor at defined specs, sorted by region and season. This upstream control, along with investment in technical-grade filtrate recovery, cuts off variations before they affect final product quality. Storing our own enzyme stocks, rather than relying on just-in-time orders, has cut process downtime drastically. The decision to manage these levers internally, rather than entrusting them to traders or wholesalers, protects both our schedule and our product's composition year-round.
Current regulations and market expectations demand stringent batch auditing. We never treat this as a box-ticking exercise, because customers who spot discrepancies remember the supplier—not the paperwork. Our QA staff maintains full lineage records from reception of the initial naringin substrate through final drum shipment, including live chromatograms, water content logs, and independent contract-lab confirmation on critical batches. We field requests for sample splits and reference standards directly, knowing that hands-on partners want the data, not just the claims.
Technical documentation only carries weight if it reflects the real process. Fielding direct inquiries from product managers, chemists, and even regulatory officers, we found standardizing how we communicate deviations—be it a slight color shift or a purity dip—builds real trust. We share our own troubleshooting methods, providing detail on both the synthetic route and the decisions behind solvent or reagent switches when global supply swings threaten continuity. Repeated audits confirm our chain remains clean, traceable, and defensible under external review, a feature collaborators often praise during new product launches or regulatory filings.
Semester after semester, we welcome graduate students and established professionals alike into our R&D labs to watch the process behind each kilogram of 8-isopentenylnaringin. Our staff always stress that chemical synthesis, especially for food- and pharma-adjacent molecules, calls for constant adjustment, peer review, and knowledge sharing. The public discussion of plant-derived compounds often overlooks the vital technical hurdles after the first synthesis is published: finding a route that recycles solvents, handles sensitive intermediates without breakdown, and ensures downstream users can blend, store, or formulate with real confidence.
Our site managers never gloss over the day-to-day realities of batch production. Heating blankets fail, chillers freeze up, and sometimes process improvements introduce unexpected variables. We keep logs of each fix, each adjustment. Over years, refinements in catalyst choice and reaction sequencing have cut waste by over 25%, while new in-line drying steps brought down moisture content—a game changer for international shipments prone to humidity spikes. These improvements arise from a culture that values straight talk, documented lessons, and real engagement with the end users who rely on our output.
Handling advanced flavonoid derivatives means confronting concerns about occupational safety, environmental load, and downstream consumer exposure. We publish our handling protocols and PPE requirements as a matter of regular practice, not just compliance. Our in-house training programs show new hires how small slip-ups—improper seal checks, static build-up in powder transfer—can cascade into damaged product or wasted time. Investing in spill-prevention equipment, closed transfer valves, and dust abatement has brought our incident rate to near zero and keeps morale steady across production shifts.
Environmentally, our improvements in waste recovery and solvent recycling align with what regulatory audits and our own staff demand. Flavonoid synthesis, in older plants, often left a significant aqueous and organic waste stream. Our continuous process upgrades, especially around phase separation and post-extraction polishing, now allow us to cut overall solvent use and reclaim over 80% of our organic input per batch cycle. Working hand-in-hand with municipal authorities and environmental consultants, we demonstrate compliance through third-party analysis, not just in-house logs.
8-Isopentenylnaringin does not end its journey at our loading docks. As interest grows in highly-tailored functional ingredients, we hear rapid-fire questions from downstream players: How does the compound behave under heat? What happens when pH drifts in new emulsion systems? Can the prenyl group withstand high-pressure homogenization, or does the glycoside split under acidic conditions common in gut-targeted supplements? Our technical team participates in collaborative trials, providing raw compound, real-time stability data, and modification suggestions. In these exchanges, the next modifications emerge—sometimes a tweak to accommodate encapsulation, other times to boost oxidative resilience in beverages subjected to UV exposure.
Wherever researchers or formulators aim to raise benchmarks for performance and reliability, we continue driving improvements at the manufacturing stage. By maintaining direct communication with downstream partners, we avoid the disconnects that too often slow innovation. Every feedback loop guides changes in purification steps, leads to better scale-up guidance, or prompts new real-world stability testing protocols. Transparency, paired with relentless attention to reproducibility, will continue shaping the promise 8-isopentenylnaringin brings to professional users across the globe.
Speaking as the people who run the reactors and fill the drums, we know reputation comes from doing the hard work behind the scenes. Every lot of 8-isopentenylnaringin represents a link in a chain starting at the orchard and ending in state-of-the-art research, consumer goods, and patient-facing products. Our facility, our staff, and our approach center on one thing: earning trust through technical rigor, openness about methods, and personal engagement with every team using our materials. For those shaping the future of flavonoid chemistry, our commitment stands: we make what works, back it with real data, and keep improving as new challenges appear. That defines not just our product, but our role as a manufacturer in a world that refuses to settle for average.