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1,2-Dioctanoyl-Sn-Glycerol

    • Product Name 1,2-Dioctanoyl-Sn-Glycerol
    • Alias DOG
    • Einecs 256-807-6
    • 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
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    Specifications

    HS Code

    471644

    Chemical Name 1,2-Dioctanoyl-sn-glycerol
    Synonyms Di-n-octanoyl-glycerol, DOG, 1,2-Dicapryloyl-sn-glycerol
    Molecular Formula C19H36O5
    Molecular Weight 344.48 g/mol
    Cas Number 56571-98-1
    Appearance Colorless to pale yellow oil
    Solubility Soluble in chloroform, methanol; insoluble in water
    Storage Temperature -20°C (protect from light and moisture)
    Purity Typically ≥98%
    Melting Point 20-24°C
    Density 0.983 g/cm³
    Iupac Name 2,3-dihydroxypropyl octanoate, octanoic acid ester

    As an accredited 1,2-Dioctanoyl-Sn-Glycerol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging for 1,2-Dioctanoyl-Sn-Glycerol (100 mg) is a tightly sealed amber glass vial with a printed chemical label.
    Shipping 1,2-Dioctanoyl-Sn-Glycerol is typically shipped in tightly sealed containers under ambient conditions. It should be protected from excessive heat, moisture, and direct sunlight. Packaging complies with relevant chemical safety standards to prevent leaks or spills. Ensure appropriate labeling and documentation for safe and legal transport. Handle with standard laboratory precautions.
    Storage 1,2-Dioctanoyl-sn-glycerol should be stored in a cool, dry place away from light and moisture. Keep the container tightly closed and store at temperatures between 2–8°C (refrigerator). Protect from air and strong oxidizing agents. Ensure proper labeling and handle under an inert atmosphere if possible to avoid hydrolysis and oxidation, maintaining product quality and stability.
    Application of 1,2-Dioctanoyl-Sn-Glycerol

    Applications of 1,2-Dioctanoyl-Sn-Glycerol in Industrial Manufacturing

    As a direct manufacturer of 1,2-Dioctanoyl-Sn-Glycerol, we supply this specialty diacylglycerol for carefully defined industrial processes. Our expertise lies in supporting precise downstream uses where this molecule delivers proven functional value, enabling strict adherence to global compliance frameworks and optimizing production outcomes in sectors where its unique structural features are required.

    1. Pharmaceutical Lipid Excipient in Injectable Drug Delivery

    Major pharmaceutical companies use our 1,2-Dioctanoyl-Sn-Glycerol within parenteral formulations, especially lipid-based drug carriers such as nanoemulsions and self-emulsifying drug delivery systems (SEDDS). This excipient contributes to enhanced bioavailability for poorly water-soluble APIs due to its intermediate chain length, which forms stable, readily dispersible lipid phases appropriate for intravenous and intramuscular formulations.

    Industry compliance standards

    • U.S. Pharmacopeia (USP) – Excipient monographs, especially for parenteral use
    • European Pharmacopoeia (Ph. Eur.) specifications for lipid excipients
    • International Conference on Harmonisation (ICH) Q7 for GMP in APIs and excipients
    • FDA cGMP 21 CFR Part 211 for finished pharmaceuticals

    Typical usage ratio

    • Generally 1–8% w/w in total lipid phase, adjusted based on solubility of the target API, emulsion stability requirements, and injection volume

    Downstream process integration

    • Added during lipid phase preparation by melting and mixing with co-solvents and other excipients before high-shear homogenization or microfluidization to create finely dispersed drug-loaded emulsions

    Final product types

    • Injectable lipid emulsions for hydrophobic drugs
    • Self-emulsifying drug delivery systems (SEDDS) in ampoules or vials
    • Nanoemulsion-based parenteral formulations

    2. Nutraceutical and Functional Lipid Formulations

    Producers of encapsulated vitamins, omega fatty acids, and bioactive supplements utilize this diacylglycerol to develop delivery matrices that promote efficient absorption. Its controlled digestibility profile makes it valuable for formulating oral capsules, softgels, and fortified powders requiring improved dispersion and stomach stability of actives in both human and veterinary nutraceutical end-uses.

    Industry compliance standards

    • U.S. FDA 21 CFR 184.1505 (Direct Food Substances Affirmed as Generally Recognized as Safe — GRAS)
    • EU Regulation (EC) No 1333/2008 on food additives
    • China GB 2760 Food Safety National Standard for Food Additive Use
    • FAMI-QS Feed Additives and Premixtures Quality System

    Typical usage ratio

    • 0.3–4% w/w in total lipid matrix; adjusted according to active bioactives' solubility and desired product release characteristics

    Downstream process integration

    • Blended into oil phases alongside medium-chain triglycerides before microencapsulation (spray drying or coacervation) or direct filling in gelatin/vegetarian capsules

    Final product types

    • Nutraceutical softgel capsules
    • Encapsulated microbead powders for supplements
    • Fortified food and beverage emulsions

    3. Cell Culture and Biotechnology Media Component

    Bioprocessing companies and research laboratories incorporate this compound as a defined lipid component in specialized cell culture media, particularly in serum-free or reduced-serum applications where high reproducibility and cell viability are mandatory. It acts as a modulator of signaling pathways and assists in the formation of lipid vesicles used for cell line expansion in CHO, HEK293, and hybridoma cultures for recombinant protein manufacturing.

    Industry compliance standards

    • ISO 13485 for medical device and in vitro diagnostics raw materials
    • USP Chapter <1043> Ancillary Materials for Cell, Gene, and Tissue-Engineered Products
    • Pharmaceutical Inspection Co-operation Scheme (PIC/S) GMP for biotech manufacturing
    • United States Department of Agriculture (USDA) guidelines for animal-origin free media

    Typical usage ratio

    • 0.01–0.5% v/v in cell culture media, customized to clone’s lipid requirements and experimental design

    Downstream process integration

    • Dissolved during aqueous media preparation, commonly filtered before final sterilization, then introduced to seed or production bioreactors

    Final product types

    • Serum-free and animal-component-free culture media
    • Bioreactor feeds for monoclonal antibody production
    • Specialty media for stem cell and engineered cell cultures

    4. Cosmetic Emulsifier and Skin Delivery Enhancer

    Leading personal care manufacturers use 1,2-Dioctanoyl-Sn-Glycerol for its skin-feel characteristics and as a co-emulsifying agent in high-end facial creams, serums, cleansing milks, and dermatological lotions. The molecule enables stable dispersion of actives by modifying the interfacial properties of oil-in-water systems, and it provides a non-greasy finish suited for sensitive skin applications with enhanced dermal penetration profiles.

    Industry compliance standards

    • EU Cosmetics Regulation (EC) No 1223/2009
    • U.S. FDA Voluntary Cosmetic Registration Program (VCRP)
    • Japan Standards of Quasi-drug Ingredients (JSQI)
    • ISO 22716:2007 on Cosmetic GMP

    Typical usage ratio

    • 0.5–3% w/w depending on the phase viscosity, active loading, and skin application (leave-on vs rinse-off)

    Downstream process integration

    • Added to the oil phase during emulsion pre-mixing, then subjected to high-shear mixing or homogenization prior to cooling and packaging stages

    Final product types

    • Premium skin creams and emulsions
    • Facial serums and moisturizing lotions
    • Dermatological gels and cleansing products

    5. Scientific Research: Lipid Second Messenger Studies

    Life sciences research centers and university laboratories rely on high-purity 1,2-Dioctanoyl-Sn-Glycerol as a bioactive analog for diacylglycerol in signal transduction investigations. It serves as a potent activator of protein kinase C (PKC) in vitro, enabling controlled studies of phosphorylation pathways related to cellular growth, differentiation, and oncogenesis, under precisely defined buffer and assay conditions.

    Industry compliance standards

    • ISO/IEC 17025 for laboratory chemical testing and calibration
    • GLP (Good Laboratory Practice) for chemical reagent studies
    • NIH Guidelines for Recombinant DNA Research (where applicable)
    • OECD Principles of Good Laboratory Practice

    Typical usage ratio

    • Final in-assay concentrations of 1–100 μM, dissolved in DMSO or aqueous solvents; concentration adjusted in pilot screens per cell line or enzyme source

    Downstream process integration

    • Introduced to cell cultures, tissue slices, or in vitro kinase assays after preparation of working solutions from solid or concentrated stock

    Final product types

    • Cell signaling assay kits
    • Academic and industrial research protocols (not a commercial end product)
    • Reference standards for PKC modulators
    Free Quote

    Competitive 1,2-Dioctanoyl-Sn-Glycerol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing 1,2-Dioctanoyl-Sn-Glycerol: Expertise-Driven Manufacturing for Advanced Applications

    Our Perspective on 1,2-Dioctanoyl-Sn-Glycerol: Meeting Demands with Consistent Quality

    Working with specialty chemicals over the past decades teaches one lesson above all: consistency matters as much as purity. 1,2-Dioctanoyl-sn-glycerol, recognized in the industry as DOG or DOG-glycerol, speaks to this point forcefully. As the original manufacturer—not a distributor, reseller, or third-party trading company—our aim has always been to maintain a reliable standard for research and application spaces that demand more than commodity-grade reagents.

    Our product under the model designation DOG-18098 offers a well-defined acylation pattern and a reproducible level of isomeric purity, supported by our in-house quality systems. This is not just about box-checking; applications in bioscience, signal transduction research, and membrane studies require a manufacturer’s attention to every variable, not simply price or paperwork. Over the years, customer feedback from universities, pharma developers, and niche formulation labs has emphasized that even subtle batch differences can change results. That is why we keep production in-house, overseeing every step—starting from raw material selection, through esterification, to packaging. What leaves our plant is predictable, because we keep strict records on every run.

    Structural Properties: Beyond Glycerol Simplicity

    1,2-Dioctanoyl-sn-glycerol sets itself apart from standard triglycerides or monoacylglycerol derivatives. Its backbone consists of a sn-glycerol anchor substituted at the 1 and 2 positions with octanoyl (C8) fatty acid chains, producing a symmetrical and highly specific molecular architecture. That matters for labs exploring kinases or protein-lipid signaling, since off-target isomeric forms sometimes crop up with less attentive synthesis. Some may overlook these differences—those are often the same who have never had to troubleshoot subtle failures in cell-based assays or lipid vesicle formation. Reliable 1,2-acylation assures consistent hydrophobicity and membrane permeability, critically supporting those working at the frontier of molecular biology and pharmaceutical design.

    Every shipment from our line includes batch-specific certificates of analysis, not templates or recycled data. We measure purity by HPLC and confirm acyl orientation with NMR, because you cannot assume results without direct proof. Subtle contaminants—like partial acylglycerols, free fatty acids, or non-sn isomers—can disrupt both analytical reproducibility and biological activity. From the manufacturer’s floor, quality control looks a lot less like theory and a lot more like removing sources of risk, right at the origin.

    Performance in Research and Industry: Delivering Practical Value

    1,2-Dioctanoyl-sn-glycerol excels as a diacylglycerol analog, commonly used as an activator for protein kinase C (PKC) in cellular models. Unlike endogenous DAG molecules with variable fatty acid profiles, our product offers well-defined C8 chains, creating predictable solubility and activity in experimental systems. This lends clarity to dose-response studies, mechanistic enzyme research, and the construction of model biomembranes. We have observed, year after year, that researchers appreciate the ability to minimize variable input—especially those who invest months raising and testing sensitive cell lines.

    The model DOG-18098 demonstrates low residual solvents. Every batch meets a strict moisture specification, which we monitor to avoid degradation and saponification, both notorious for undermining storability and function. Our technical staff has responded to customer feedback in real time, refining the process so the end user sidesteps problems with precipitate formation or foggy solutions. Through direct troubleshooting—by talking to bench scientists, not only procurement officers—we have adjusted solvent systems, improved drying cycles, and tailored packaging to eliminate avoidable waste.

    In pharmaceutical excipient design, food-grade emulsifier studies, and even cosmetic formulation R&D, 1,2-Dioctanoyl-sn-glycerol demonstrates a blend of amphiphilicity and storage stability unusual among short-chain diacylglycerols. Researchers and product developers have adapted it to carry hydrophobic drugs, simulate lipid bilayers, and improve topical product spreadability. In each of these contexts, small changes in chemical integrity can alter shelf life and in vitro outcomes. Our role as the originator gives us the flexibility to meet these technical demands directly. Adjusting protocols at source—before the product moves on—helps users avoid slowdowns caused by contaminants, lot-to-lot differences, or packaging failures.

    How Our Manufacturing Experience Sets DOG-18098 Apart

    Many people speak in generalities about "rigorous testing" or "high purity," but those terms hold little substance without real manufacturing background. In our own operation, continuous improvement starts with internal audits. We specify not only the starting glycerol and octanoic acid, but regularly assess the performance of catalysts, solvents, and purification equipment. Over time, even trace shifts in catalyst reactivity can impact isomer distribution. We address this by early intervention, not after shipment complaints.

    We also invest in minimizing storage risks. 1,2-Dioctanoyl-sn-glycerol responds poorly to sustained heat or moisture. Understanding these sensitivities, our filling lines and containers are designed to withstand lengthy transit without promoting hydrolysis or off-odors. Lab technicians from several international pharma companies have visited our plant, requesting specific packaging or temperature controls for their SOPs. Because we handle everything in-house, we have the flexibility to deliver on those requirements without third-party delays or communication breakdowns.

    The directness of manufacturing, as opposed to redistributing or rebranding, enables us to deliver more than generic quality claims. By running our own analytics in parallel to customer use-cases, we spot patterns early—such as the impact of minute residual solvent composition on protein kinase assays, or the role played by long-chain versus medium-chain diacylglycerol analogs. Such insights allow for product improvements that keep researchers and formulators working efficiently. Each year, we update internal manufacturing protocols, reflecting both regulatory change and laboratory learning.

    Comparing 1,2-Dioctanoyl-sn-Glycerol With Other Diacylglycerols

    Within the field, there is no shortage of alternate diacylglycerols—products based on different chain lengths, saturation states, or positional isomerism. Those engaged in lipid signaling or membrane biophysics know that chain length straightforwardly affects not just solubility, but partitioning into membranes and even metabolic fate. Diacylglycerols based on shorter acyl groups—like dibutyroyl—dissolve quickly, but may fail to mimic biological processes reliably due to low hydrophobicity and rapid metabolism. Longer chains, such as dioleoyl or dipalmitoyl analogs, form more stable membranes but may require organic cosolvents to prepare workable solutions.

    1,2-Dioctanoyl-sn-glycerol stakes out a middle ground. It balances ready solubility in aqueous-organic mixtures with sufficient hydrophobicity to support membrane incorporation. In our experience, customers appreciate that DOG-18098 dissolves in cell culture media and common laboratory solvents (such as DMSO or ethanol) without requiring aggressive sonication. This facilitates high-throughput screening and limits loss due to precipitation. Consistent chain length and sn-specificity guarantee reproducible results—something generic diacylglycerol blends, produced without strict positional control, cannot claim. There are researchers who report batch failures using less controlled sources; they only switch after seeking the root cause, often identifying isomeric impurity or chain variability.

    Real-World Usage: Advancing Science, Easier Troubleshooting

    From a manufacturer’s vantage point, the value of a chemical does not end at its chemical formula. Actual performance in user laboratories tells the full story. Regular users of 1,2-Dioctanoyl-sn-glycerol include academic labs studying signal transduction, pharmaceutical developers probing receptor-ligand interactions, and R&D departments formulating liposome-based delivery vehicles. In each case, the margin for error narrows as experiments become more specialized. We receive feedback where one lot’s deviation—however slight—alters the activity curve of an enzyme or causes inconsistencies in lipid vesicle calibration.

    To support reliable experimentation, we document every variable within our process. Raw material traceability, in-process analytics, and strict sampling keep lot-to-lot variation tight. Not all manufacturers invest in this level of oversight since it costs more and slows volume scaling. Our approach stands as a deliberate choice formed from working directly with researchers facing exacting standards.

    We do not rely on third-party sources or white-label contracts. Our approach enables rapid adjustment to evolving research trends—spotting, for instance, the shift toward high-throughput PKC screening, or the need for micronized powder forms in lipid nanoparticle work. Onsite conversations with R&D visitors and continual supplier engagement help anticipate upcoming regulatory and performance requirements without guessing. Direct manufacturing builds a loop between user need and product design.

    Why Consistency Matters in Bioactivity: Direct Input From the Manufacturing Line

    Bioactive molecules such as 1,2-Dioctanoyl-sn-glycerol are sensitive to synthesis method, purification regime, and storage. Minor oxidation or impurity changes—even invisible to the naked eye—can shift biological outcomes. Our chemists track batch performance against application data. Where outcomes fall outside expectation, we investigate internally, tweaking process parameters or reviewing hybrid analytic results.

    Academic and research users often call us to discuss specific experimental setups. Having direct chemist-to-scientist communication makes a difference—both sides understand the language of troubleshooting. If a batch acts differently in PKC activation than previous lots, we dig into both lab records and user protocols. Often, details like solvent lot, storage temperature, or even vial handling reveal sources of variation. Manufacturing close to the user—without redundant intermediaries—streamlines these conversations and turns feedback into practical adjustments.

    In a regulated environment, regulatory agencies may scrutinize raw materials as closely as finished product. We proactively address this by archiving batch records, offering direct access to supporting documentation. Our analytics staff regularly answers detailed technical queries, recognizing that today’s QA teams demand more than generic specifications. The link between direct manufacturing oversight and hassle-free product use grows stronger as standards rise.

    Application Trends: Learning From Our Customer Community

    One learns quickly in specialty chemical production that innovation rarely pauses. Over the past several years, the use cases for 1,2-Dioctanoyl-sn-glycerol have expanded as new cell models, delivery technologies, and signaling hypotheses emerge. This creates both opportunity and challenge. Users explore microfluidic applications, microemulsion systems, and advanced liposome generation; they need a supplier who listens and adapts protocols instead of repeating standards.

    We have responded by building a dynamic feedback loop—sharing lessons from customer case studies with our process engineers. For instance, researchers working on artificial membranes identified issues with spontaneous gelation in some older packaging types. That feedback drove us to enhance our containers and adjust fill protocols. Similarly, partners in food additive experimentation demanded larger formats and alternate solvents for scaling pilot runs. Adaptability comes easier when the manufacturer controls every step and feels the urgency of direct customer contact.

    Remote research facilities and field labs have also flagged packaging durability as a real-world hurdle. Not all bench scientists work in climate-controlled rooms. We now deploy packaging rated for varied ambient conditions, reducing risk from accidental humidity or transit shocks. These changes may sound subtle; in daily operation, they spell the difference between smooth workflow and lost project time. Experience on the manufacturer’s side transforms these stories into product evolution. The more we learn from our partners, the better we get at preventing issues before they arise.

    Addressing Common Issues and Solutions From a Manufacturer’s Standpoint

    Real-life use brings challenges. Researchers sometimes find 1,2-Dioctanoyl-sn-glycerol unexpectedly cloudy, sluggish to dissolve, or susceptible to oxidation. Unlike intermediaries, we have the facility—and incentive—to get at root causes promptly. For instance, we recently streamlined our drying protocol following field reports of slow dissolution. Maintaining anhydrous conditions during final filling dramatically improved solubility and cut customer troubleshooting time.

    Packaging failures, such as cap leaks or poorly-sealed glass, surfaced early in our supply history. Now our loading staff tracks supplier batches, tests seals under heat/cold cycling, and checks test vials for microleaks before shipping. This reduces incidents where sensitive material absorbs ambient water, prolonging shelf life for field users.

    Contamination from cleaning residues or cross-batch carryover used to pose headaches for both us and end users. To address this, we invested in closed-loop cleaning cycles and isolate all workstations handling diacylglycerols from higher-chain fatty acid synthesis areas. Our QC logs show a marked drop in off-spec product since that change. The effectiveness of such interventions becomes obvious when you compare returns now to those 10 years ago.

    Ongoing dialogue with our user community pinpoints new trends rapidly. Researchers now seek guidance on integrating 1,2-Dioctanoyl-sn-glycerol in complex matrices—such as polymer blends, surfactant-rich emulsions, or even slow-release film prototypes. Our technical staff fields these questions first-hand. Armed with production insights, we relay best practices for solubilization and long-term storage, cutting down avoidable mistakes and project delays.

    Why We Stay Focused on Quality and Consistency

    In specialty manufacturing, shortcuts come at a price. As a producer, the temptation always lurks to outsource, lower specs, or rebrand legacy stock. But after fielding calls from frustrated researchers or reading repeat application failures, our commitment to direct control only strengthens. Our staff takes pride in tracing every bottle of DOG-18098 to specific runs, with archived analytics and hands-on tracking.

    The advantages for users are tangible. Direct lines between manufacturer and customer close information gaps, solving problems in near real time. Innovations in production—seeded by field experience—deliver a product that fits each use case, from basic signaling studies to complex drug formulation. The scientific community at large reaps the dividend: faster development cycles, minimized troubleshooting, and results that stand up under scrutiny.

    Looking Ahead: Our Role in Supporting Research and Industry Progress

    The field keeps moving. Researchers now dig deeper into lipidomics, membrane dynamics, and biocompatible carrier design. We sit with technical teams across the world, learning which features of 1,2-Dioctanoyl-sn-glycerol drive the next phase of innovation. Higher purity thresholds, alternate forms, and safer delivery systems keep appearing on the horizon. We stay ahead by connecting feedback loops—turning first-person accounts into tuned product improvements and nuanced technical support.

    As more application areas adopt this unique diacylglycerol, we retain flexibility built from hands-on production. The best ideas often arrive from outside our plant—creative chemists, process engineers, or clinicians explaining how a small change could unlock new capability. Our role is to listen, refine, and deliver, all the while keeping quality assurance integrated from the first synthetic step to delivery at the laboratory door.

    This is the advantage of working directly with the true manufacturer of 1,2-Dioctanoyl-sn-glycerol. Each bottle carries not only a chemical, but the sum of practical experience, technical adaptation, and user-inspired improvement—ready to support discovery, formulation, and application across the world.