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Fmoc-β-Ala-OH

    • Product Name Fmoc-β-Ala-OH
    • Alias Fmoc-beta-alanine
    • Einecs 252-626-0
    • 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

    299584

    product_name Fmoc-β-Ala-OH
    formal_name 9-Fluorenylmethoxycarbonyl-β-alanine
    CAS_number 35661-40-6
    molecular_formula C18H17NO4
    molecular_weight 311.33
    appearance White to off-white solid
    purity ≥98.0% (HPLC)
    solubility Dimethylformamide (DMF), Dimethyl sulfoxide (DMSO)
    storage_temperature 2-8°C
    application Peptide synthesis
    protecting_group Fmoc (N-terminal)
    synonyms Fmoc-beta-alanine, Fmoc-3-aminopropanoic acid
    melting_point 135-140°C
    SMILES O=C(O)CCNC(=O)OCC1c2ccccc2-c2ccccc21
    pKa 2.3 (carboxyl)

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

    Packing & Storage
    Packing Fmoc-β-Ala-OH is supplied in a 25g amber glass bottle with a screw cap, labeled with product and safety information.
    Shipping Fmoc-β-Ala-OH is shipped in a tightly sealed container under ambient conditions. To preserve its stability and purity, it is typically packaged with desiccant and protected from light and moisture. Shipment complies with all relevant chemical transport regulations, ensuring safe delivery to laboratories and research facilities worldwide.
    Storage **Fmoc-β-Ala-OH** should be stored in a tightly sealed container, in a cool, dry place, away from light and moisture. It is best kept at 2–8°C (refrigerated) to prevent degradation. Avoid exposure to strong acids, bases, and oxidizing agents. Proper storage ensures the chemical’s stability and maintains its suitability for peptide synthesis applications.
    Application of Fmoc-β-Ala-OH

    Applications of Fmoc-β-Ala-OH in Industrial Manufacturing

    Fmoc-β-Ala-OH stands as a critical intermediate in peptide synthesis and specialized chemical manufacturing, with a defined role in producing high-value functional materials. As the original manufacturer, we ensure material consistency and traceability for downstream users across regulated and demanding process environments. Below, we provide a detailed breakdown of its principal real-world industrial applications, focusing on process differentiation, compliance requirements, formulation ratios, and downstream integration.

    1. Solid-Phase Peptide Synthesis (SPPS) for Pharmaceutical APIs

    Fmoc-β-Ala-OH serves as a protected non-standard amino acid building block in the synthesis of peptide-based active pharmaceutical ingredients, including therapeutic peptides and peptidomimetics. Our product supports batch and continuous manufacturing systems in both clinical and commercial API production, demanding rigorous traceability and purity validation under pharmaceutical GMP frameworks.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP, EP, JP monographs related to synthetic peptides
    • 21 CFR Part 210/211 (US), EMA GMP (EU) requirements
    • Audit trail and data integrity protocols as per FDA/EMA guidance

    Typical usage ratio

    • One molar equivalent per β-alanine insertion site in peptide chain; proportion adjusted for sequence length and scale (typ. 0.05–1 mole per synthetic batch)

    Downstream process integration

    • Direct coupling onto resin-bound peptide sequences via automated or manual SPPS lines; Fmoc group cleavage with piperidine in situ before chain elongation step continuation

    Final product types

    • API-grade custom peptides
    • Peptide-based drug candidates
    • Commercial therapeutic peptides (injectables, orals)
    • Incl. oncology, metabolic, and anti-infective peptide drugs

    2. Peptide-Based Diagnostic Reagents Manufacturing

    In IVD and biomedical research, downstream users rely on Fmoc-β-Ala-OH for crafting high-purity custom peptides with non-standard amino acid insertions. Manufacturers require exceptional batch-to-batch consistency and adherence to relevant ISO and regulatory standards to ensure end-product reliability in clinical and research applications.

    Industry compliance standards

    • ISO 13485:2016 (Medical devices & IVD quality management systems)
    • FDA 21 CFR Part 820 QSR for diagnostic reagents
    • CLSI guidelines for quality of reagent production
    • Traceability documentation as per GSP (Good Supply Practice)

    Typical usage ratio

    • 0.1–0.8 equivalents per targeted insertion, adaptable to peptide sequence complexity in designed diagnostic probes

    Downstream process integration

    • Incorporation during resin-based assembly; Fmoc deprotection and subsequent functionalization in automated SPPS reactors; subjected to final HPLC and MS QC before formulation into diagnostic kits

    Final product types

    • Synthetic peptide antigens for immunoassays
    • Reference standards for mass spectrometry controls
    • Peptide substrates and inhibitors for enzymatic assays
    • Fluorescent or biotin-labeled peptide probes

    3. Peptide Bioconjugate and Drug Delivery Material Synthesis

    Innovators in targeted drug delivery and conjugation technologies employ Fmoc-β-Ala-OH as a spacer/group in the construction of advanced peptide conjugates, antibody-drug conjugates (ADCs), and nanoparticles. These applications demand quality suitable for linker chemistry and bioactive compound attachment, in compliance with bioprocess regulatory environments.

    Industry compliance standards

    • ICH Q9/Q10 (Quality Risk Management and Pharmaceutical Quality System)
    • USP <1047> General Chapter (Peptide Quality Attributes)
    • ISO 9001:2015 for production traceability and documentation
    • GLP/GMP documentation for preclinical and early clinical supply

    Typical usage ratio

    • 0.2–2.0 molar equivalents as a functional linker, depending on the architecture of bioconjugate or drug delivery scaffold

    Downstream process integration

    • Fmoc-β-Ala-OH introduced at specified positions during automated solid-phase assembly or solution-phase conjugation; after deprotection and peptide cleavage, purified intermediates are subjected to coupling with targeting agents or payloads

    Final product types

    • Peptide–drug conjugates (PDCs)
    • Targeted bioactive delivery nanoparticle ligands
    • Enzyme-cleavable linkers for ADCs
    • Smart carrier-bound peptide therapeutics

    4. Custom Peptide Research Tools and Catalog Reagent Production

    Research-scale reagent manufacturers and CROs depend on predictable Fmoc-β-Ala-OH performance for synthesis of catalog peptides and specialized tools used in structure-activity studies, receptor mapping, and protein engineering. The product’s integration must support a wide range of non-GMP and GMP-driven research pipelines requiring full COA and traceable documentation.

    Industry compliance standards

    • ISO 9001:2015 certification for research reagent production
    • REACH pre-registration for chemicals supplied in the EU
    • Applicable OECD guidelines for research chemical handling
    • Custom QC batch release criteria as agreed per B2B contract

    Typical usage ratio

    • Typically 1 equivalent per β-alanine site; scaled flexibly for peptide length and research scale (mg to multi-gram batches)

    Downstream process integration

    • Addition during N-terminal extension or as an internal amino acid during SPPS; formatted for automated or manual peptide synthesizer workflows; full analytical data provided for catalog and custom orders

    Final product types

    • Peptide standards for receptor binding studies
    • Library peptides for screening assays
    • Modified backbone analogues for protein structure analysis
    • Peptide tools for proteomics research
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    Certification & Compliance
    More Introduction

    Fmoc-β-Ala-OH: An Inside Look From A Chemical Manufacturer’s Perspective

    Fmoc-β-Ala-OH: What Sets It Apart

    On the production floor and in the analytical lab, Fmoc-β-Ala-OH stands out for its distinctive role in peptide synthesis. We produce Fmoc-β-Ala-OH with a focus on the elements that shape the daily work of chemists and researchers: purity, batch consistency, reliable supply, and a clear understanding of the chemical’s place in synthetic workflows. Its model, Fmoc-β-Ala-OH, reflects an amino acid derivative carrying both the β-alanine backbone and the fluorenylmethyloxycarbonyl (Fmoc) protecting group; both features factor heavily into its utility and handling.

    Our customers trust us to deliver this product without the pitfalls common in distribution markets, like ambiguous origin stories or questionable batch records. From our experience, this trust only comes from transparency in our processes, tight control over every step of production, and a willingness to adapt methods as feedback from synthesis labs reaches us.

    Fmoc-β-Ala-OH does not simply serve as another amino acid – its β-alanine structure, with the amino group located on the beta carbon, gives finished peptides properties distinct from their α-alanine analogs. This single change in molecular architecture affects ring closure possibilities, flexibility in peptide backbones, and the resulting biological activity of the assembled peptide. The Fmoc group brings further selectivity during the solid-phase synthesis process, avoiding unwanted reactions at the α-amino position, then removing cleanly with piperidine.

    Why Manufacturers Focus on Quality and Purity

    Through years of manufacturing peptide building blocks, we’ve come to appreciate that purity makes all the difference in solid-phase and solution-phase peptide synthesis. Even trace levels of by-products or unremoved starting materials can lead to coupling failures, sequence errors, or time-consuming purification steps downstream. For Fmoc-β-Ala-OH, extra attention goes into controlling trace aniline, Fmoc by-products, and residual solvents like DMF from the protection and isolation steps.

    As a manufacturer, we never cut corners with purification, routinely applying crystallization, column chromatography, or recrystallization to reach levels above 99% purity, depending on end use. Consistent purity shows up in smooth peptide elongation, cleaner analytical HPLC profiles, and less customer troubleshooting. Over time, this has built mutual respect between R&D teams and production—they rely on our Fmoc-β-Ala-OH to deliver reliable, predictable results.

    Batch-to-batch consistency is a quieter but equally important concern. Slight variances in residual water, particle size, or organic impurities affect reaction rates and clarity of results. Each lot delivers a certificate reflecting these values, but an experienced team knows that certificates are only half the story—continuous process improvement, internal standards for impurities, and close feedback loops round out the picture.

    Understanding Specifications Beyond a Product Code

    The specifications for Fmoc-β-Ala-OH go beyond HPLC purity and NMR spectrum. Most of our customers want to know moisture content, melting point, optical rotation, and precise solubility characteristics. Moisture, for example, impacts reactivity on automated synthesizers. We avoid broad specification ranges and instead share the actual measured values for each batch. That approach lets chemists fine-tune their peptide synthesis without working in the dark.

    Particle size distribution influences dissolution rate and handling. Too fine a powder clings to the inside of containers or dusts during weighing, causing annoying losses and risks to cleanliness. Too coarse, and the product may take a long time to dissolve, slowing down robotic synthesis lines. By listening to users and tracking in-lab performance, we adjust the milling or sieving process to hit a practical sweet spot for solubility and ease of handling.

    Keeping heavy metals at an absolute minimum—usually well below common industry thresholds—makes a big difference for finished peptide libraries, especially in pharmaceutical development. Traces of tin, lead, or palladium leftover from earlier synthesis steps can derail biological assays or regulatory submissions. Our in-house ICP-MS and AAS testing catch these issues before a product reaches the outgoing line.

    Why Chemists Choose Fmoc-β-Ala-OH Over Other Amino Acids

    Peptide chemists turn to Fmoc-β-Ala-OH when their sequence design calls for backbone flexibility, resistance to enzymatic degradation, or opportunities for side-chain cyclization. β-Alanine, as a non-proteinogenic amino acid, disrupts regular secondary structure, which plays well in designing bioactive peptides, linkers for drug conjugates, and peptoid analogs. Incorporating Fmoc protection brings the added benefit of straightforward deprotection cycles compatible with automated synthesizers, offering parallel synthesis flexibility and minimizing side reactions.

    Compared to standard α-amino acids carrying Fmoc protection, this product’s unique backbone changes the game in peptide engineering. In applications where α-alanine would promote rigidity, β-alanine introduces more conformational freedom. That allows medicinal chemists, biochemists, and molecular engineers to tune receptor affinity, stability, and pharmacokinetics without reaching for completely unnatural residues that pose new synthetic or regulatory headaches.

    Analogs protected with t-Boc or other groups fill other roles, but Fmoc-β-Ala-OH is specifically matched for the widely adopted Fmoc/t-Bu solid-phase approach. Our batch control and process traceability means those working under GMP or in clinical-stage research programs use our product with the confidence that every bottle matches the data in our test reports—transparency that’s earned by open sharing about process development and continual improvement.

    Special Care in Manufacturing and Handling

    Manufacturing Fmoc-β-Ala-OH requires skillful control of protection chemistry and purification, from reagents to environmental controls. The Fmoc protection step involves careful addition reactions between β-alanine and Fmoc-Cl, which can create unwanted side products if temperature and stoichiometry aren’t watched closely. In scaling up the reaction, maintaining tight control of pH and exclusion of water prevents formation of Fmoc urea derivatives or incomplete protection, both of which frustrate downstream users.

    We’ve learned to modularize the process design so equipment cleaning, solvent recovery, and waste stream treatment stay efficient as volumes expand. This has a knock-on effect for sustainability and worker safety, where solvent reduction, careful pH adjustment, and real-time analytical monitoring shrink the process footprint. Chemical manufacturing thrives on these incremental improvements: shaving off solvent usage, simplifying cleaning protocols, or minimizing cycle times while keeping quality unchanged.

    Both powder and crystalline forms of Fmoc-β-Ala-OH need careful storage and transportation. We pack under inert atmosphere to prevent hydrolysis or uptake of atmospheric moisture, which could alter reactivity and cause clumping. In our warehouses, temperature and humidity controls are standard, because no synthetic chemist wants to open a bottle and find their building block transformed by unintended exposure. Good manufacturing means not only controlling this at our site, but also training shipping and logistics partners with robust protocols and documentation.

    Supporting Technological Innovation in Peptide Synthesis

    From a manufacturer’s standpoint, Fmoc-β-Ala-OH is as much about process reproducibility and intellectual property as it is about chemical reactivity. Our commitment stretches into helping scientists develop new sequence motifs and custom-tailored analogs using the same building block. We invite dialogue with team leads and bench chemists, offering technical notes and sharing LC-MS data on request. Access to real-world analytical files saves research teams from repeating validation steps and brings both sides toward smoother project timelines.

    Supporting scale-up is a daily reality. Universities, biotech startups, and major pharma groups all request kilogram lots with timelines under pressure. We commit lines to produce Fmoc-β-Ala-OH as campaign runs, so each batch comes from a single synthesis lot with traceable raw materials. For high-throughput peptide screening, customers need a steady, uninterrupted supply, free from changes in impurity profiles or requalification headaches. Our solution: deep stocks, ongoing process validation, and investment in redundancy, not just another marketing slogan.

    We watch trends in automated synthesis all over the globe. The switch to higher-throughput synthesizers or new coupling reagents means Fmoc-β-Ala-OH sometimes needs tweaks in particle size or solvent compatibility. Our production teams work directly with automation engineers and peptide labs, collecting feedback after each production run, and experiment with process parameters to stay ahead of the adoption curve. The complexity of process transfer cannot be overstated—a chemical that functions flawlessly in a glass flask might not behave the same on a 96-well robotics rig.

    Real-World Challenges in Sourcing and Application

    Years in the industry reveal how easily supply chain hiccups can stop production lines. Sourcing for Fmoc-β-Ala-OH sometimes faces bottlenecks—shortages of aniline, Fmoc-chloride price spikes, or regulatory requirements for precursor traceability. We mitigate these risks by keeping multiple supply lines active, qualifying secondary sourcing, and maintaining real-time stock levels, rather than promising on a hope.

    Traceability takes on new urgency as regulations tighten on pharmaceutical ingredients. We maintain detailed records for source reagents, batch process steps, and in-process testing, sharing electronic certificates and supply chain maps when asked. For customers planning clinical trials, this transparency translates to fewer surprises during validation, because regulators ask harder questions as rules get stricter.

    In application, peptide chemists sometimes report batch-specific quirks—solubility shifts, unexpected side-products, or color differences. We treat every report seriously, opening investigations with the same rigor as our own in-house QA. Sometimes, changes in upstream reagents play a role, or storage after delivery leaves a trace of moisture or contamination. No manufacturer can control post-delivery conditions, but sharing best practices and running forensic analysis helps us refine our process and improve future lots.

    Comparisons with Competing Beta-Amino Acids and Protecting Groups

    Fmoc-β-Ala-OH finds a niche between simplicity and structural novelty, offering more flexibility than α-amino acids, but without the exotic challenges that come with complex synthetic building blocks. Beta amino acids with longer side chains or additional functionality exist—Fmoc-β-homoalanine, for example—but these analogs often raise solubility problems, require more protective group steps, or introduce instability during chain elongation.

    Alternative protecting groups, such as Boc or Trityl, sometimes provide benefits in acid-labile syntheses or dual-protection strategies. Our customer interactions show that Fmoc-protected analogs win in most routine solid-phase peptide synthesis, especially in automated instrumentation and parallel synthesis modules. Fmoc-β-Ala-OH offers high compatibility, clean removal under mild base, and a history of robust performance across hundreds of published peptide sequences.

    Switching to alternate suppliers or using third-party intermediaries carries its own fixed risks. Anonymous blends or resold material may introduce silent contaminants—trace pesticides from agricultural solvents, or unfiltered heavy metals from recycled reagents. We keep all synthesis and purification under our own roof, with raw material vetting and hands-on process control. This way the chemist receives exactly what is ordered, not a relay-race of questionable substitutes.

    Driving Value Through Responsible Manufacturing Practices

    Environmental and worker safety drive changes in reagent use, waste stream handling, and packaging. The trend toward greener chemistry leads us to invest in closed-loop solvent systems, waste minimization, and increased use of recycled materials in packaging. As a manufacturer, we balance economic realities with a commitment to minimizing footprint—solutions like solvent recovery, safer cleaning methods, and electronic batch reporting bridge the gap between bulk chemical production and laboratory-scale users.

    We extend our responsibility to the communities around our plants, investing in emissions control, water purification, and engagement with regulatory agencies. Building relationships with environmental regulators pays off in early warnings about upcoming compliance changes and allows smoother audits. This type of risk management improves resilience all the way down the supply chain, keeping customers in the loop and avoiding disruptions.

    Building Long-Term Relationships With Peptide Innovators

    Delivering thousands of lots of Fmoc-β-Ala-OH over many years builds institutional knowledge. Some teams need guidance on adapting Fmoc-β-Ala-OH to new synthesis protocols, while others look for process optimization insights or troubleshooting for unusual coupling reactions. We make technical staff available for direct dialogue, allowing a true partnership as chemistry and discovery move forward together.

    Early-stage research and late-stage production benefit from this approach. For discovery groups, responsive discussions about reagent compatibility and purification tricks speed up progress. For groups preparing for GMP-scale peptide campaigns, depth of documentation, and the ability to provide history on any lot delivered, proves invaluable during audits and qualification. We take customer satisfaction not just as a slogan but as a lived principle, continually refining approaches in step with the most demanding users.

    Conclusion: The Real Difference With Manufacturer-Sourced Fmoc-β-Ala-OH

    The story of Fmoc-β-Ala-OH isn’t simply about a chemical code or an entry on a specification sheet. Manufacturing and supplying it involves close attention to process control, rigorous documentation, and a deep understanding of both chemical and practical laboratory needs. We strive to embody these principles at every stage, delivering a product not just as intended but as required by the reality of modern synthesis, always open to feedback, and ready to adapt with the evolving needs of the scientific community.