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HS Code |
331727 |
| Product Name | N-Alpha-Methyl-L-Alanine Hydrochloride |
| Cas Number | 13758-46-0 |
| Molecular Formula | C4H10ClNO2 |
| Molecular Weight | 139.58 g/mol |
| Appearance | White to off-white powder |
| Purity | Typically ≥98% |
| Melting Point | 220-225°C (dec.) |
| Solubility | Soluble in water |
| Storage Temperature | 2-8°C |
| Ph 1 Solution | 2.5-3.5 |
| Iupac Name | 2-amino-2-methylpropanoic acid hydrochloride |
| Synonyms | α-Methyl-L-alanine hydrochloride |
| Smiles | CC(N)C(=O)O.Cl |
As an accredited N-Alpha-Methyl-L-Alanine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, sealed plastic bottle containing 25 grams of N-Alpha-Methyl-L-Alanine Hydrochloride, labeled with hazard warnings and chemical details. |
| Shipping | N-Alpha-Methyl-L-Alanine Hydrochloride is shipped in tightly sealed containers under ambient or cool, dry conditions to prevent moisture absorption and degradation. Packaging meets hazardous material transport guidelines, ensuring chemical stability and safety during transit. Proper labeling and documentation are included to comply with regulatory and safety requirements during shipping. |
| Storage | N-Alpha-Methyl-L-Alanine Hydrochloride should be stored in a tightly sealed container, kept in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers. Protect it from moisture and direct sunlight. Store at room temperature or as specified by the manufacturer, typically between 2°C and 8°C. Ensure proper labeling, and keep out of reach of unauthorized personnel. |
Applications of N-Alpha-Methyl-L-Alanine Hydrochloride in Industrial ManufacturingN-Alpha-Methyl-L-Alanine Hydrochloride finds application in several advanced manufacturing sectors. Below we detail its role, industry standards, usage ratios, process integration points, and the typical finished products produced by leading global manufacturers. 1. Peptide Synthesis for Pharmaceutical APIsThis raw material serves as a non-proteinogenic alpha-amino acid component for peptide synthesis, especially in the manufacture of peptide-based pharmaceutical active ingredients. Its ability to introduce site-specific modifications improves metabolic stability and modulates bioactivity. Process chemists incorporate it during solid-phase peptide synthesis (SPPS) or liquid-phase peptide chemistry, often under sterile or GMP-controlled environments. Product quality and traceability must strictly comply with regulatory inspection frameworks throughout all development and production stages. Industry compliance standards
Typical usage ratio
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2. Chiral Synthesis Intermediate for Small-Molecule DrugsMany pharmaceutical companies employ this material as a chiral building block to introduce site-specific methylation in small-molecule drugs. The stereochemical control supports the preparation of optically pure intermediates under controlled processes such as asymmetric hydrogenation or alkylation chemistries. The operation requires validated equipment and complete analytical traceability, with close attention to chiral purity and impurity profiling. Industry compliance standards
Typical usage ratio
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3. Raw Material for Research Peptide LibrariesBiotechnology contract research organizations and university labs select this amino acid to expand their chemical diversity in combinatorial and high-throughput peptide library construction. It enables the generation of non-standard residue libraries for screening in medicinal chemistry and molecular biology discovery programs. Facilities must manage the sourcing, documentation, and safe handling as per laboratory chemical safety protocols to support reproducibility and validity of research output. Industry compliance standards
Typical usage ratio
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4. Quality Control Reference StandardAnalytical laboratories utilize this compound as a certified reference standard for calibration, purity testing, and validation of peptide and chiral amino acid analytical methods. It supports method development in HPLC, UPLC, and chiral capillary electrophoresis. Laboratories require traceable documentation, certificate of analysis with batch-specific data, and routine proficiency testing to support regulatory submissions or routine QC in pharmaceutical and fine chemical manufacturing. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
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In the complex world of amino acid derivatives, N-Alpha-Methyl-L-Alanine Hydrochloride holds a distinctive place for researchers, life sciences suppliers, and bio-industries. We’ve been synthesizing this material in batches for years, handling each detail ourselves—from sourcing raw materials through quality checks before we send a single drum out the door.
For those unfamiliar, this molecule features a methyl group bonded at the alpha position on the alanine skeleton, with hydrochloride salt forming to stabilize it for lab and industrial use. Our batch numbers trace back every step of manufacture, which ensures traceability for anyone who needs to track down root causes or verify consistencies. We speak from experience: consistent production isn’t about following a recipe. It’s about understanding reactions at a granular level, recognizing how humidity in the drying area, purity of solvents, and even operator expertise can impact the output you receive.
We’ve developed a set of standard models for customers, including the crystalline fine powder at 98%+ purity—as tested by HPLC and NMR at each production run. Color may seem unimportant, but staff are trained to spot slight off-whites that signal a mother liquor issue. Moisture content and chloride ion levels never just get signed off—they connect directly to how stable your compound remains on your shelf. In our plant, these aren’t just numbers on a spec sheet. Each batch reveals a history of the solvents employed, hydrogen chloride sourcing, and environmental controls in place. We log every deviation—no matter how small—to keep production reproducible.
We could attempt a more glamorous story, but direct manufacturing of N-Alpha-Methyl-L-Alanine Hydrochloride requires patience and vigilance. Removing endotoxin traces and organic impurities isn’t only about filtering a solution. The process demands precise pH adjustment at the salt formation stage and rapid crystallization to lock in purity before ambient air can absorb into the product. We use industrial freeze-dryers monitored by technicians who modify drying cycles in response to batch behavior, maintaining an approach that goes beyond simple automation.
There’s a divide between companies who blend, pack, or relabel the product, and those who oversee synthesis from start to finish. Outsourcing may cut costs, but it disperses accountability—leading to confusion if something’s off with the batch. Our practices are shaped by feedback from researchers who told us, sometimes bluntly, how an unexpected impurity can cost weeks of work. After one lab flagged drift in specific optical rotation, we reviewed our hydrogen chloride delivery, adjusted agitation parameters, and confirmed lot-specific purity by independent analysis. No distributor in the world could offer that level of assurance on a question about process origin.
Direct manufacture also lets us pivot when a customer requests a modification. One university-based group needed the hydrochloride form with below-average particle size for their application. Commercial standards didn’t suit them. We altered our process, introduced specialized sieving under inert atmosphere, and delivered exactly what they asked for. That’s less feasible with third-party suppliers where every extra step means another markup or an extended wait.
The most common use for N-Alpha-Methyl-L-Alanine Hydrochloride lies in chemical synthesis and molecular biology research. It acts as a building block for peptides—especially those intended to test structural modifications or explore unnatural amino acids in protein engineering. Peptide chemists have told us that analogues like this, with an alpha-methyl group, block enzymatic cleavage at the modified junction, letting them probe stability and function in new ways. Modified residues like this often become probes or tools for understanding biological processes.
Importantly, certain neurotoxicological investigations depend on this material. Analytical chemists utilize it as a calibration standard in LC-MS protocols. Companies exploring enzyme inhibitors or synthetic biology routes for pharmaceuticals also purchase from us, knowing their results hinge on absence of carryover solvents or inorganic byproducts.
In our plant, application guides are based on feedback and technical literature, but we never lose sight that customers depend on fresh, lot-specific data. Research projects or industrial applications sometimes ride on tiny differences batch-to-batch—shifts that can be overlooked in contract manufacture or logistics-driven resupply. Direct feedback closes that loop, steering constant improvement.
Few realize how much the acidification and crystallization steps can influence yield, solubility, and stability. Maintaining just the right temperature throughout the reaction prevents side-formation of dimers or unwanted racemization. We batch process under strictly monitored thermal conditions—leaning on in-line monitoring tech but also old-school vigilance. There’s a craft to reading a reaction’s progress, and catching the first hint of discoloration or unexpected precipitation.
Raw materials play a central role. Every new shipment of L-alanine, methylating agents, or hydrochloric acid passes quality controls in our in-house lab, and even well-established suppliers can ship materials that deviate just enough to matter for the final product. Extensive logs keep the process transparent. Our customers sometimes audit supply trails all the way back to the chemical origin.
Packaging decides stability at the end. Too many resellers repack powder without regard for shelf life. At our plant, filling takes place inside a humidity-controlled room with nitrogen backfill to keep the powder free from moisture until you break the seal. We use food-grade PE or HDPE containers, sealed twice over—details that impact reconstitution even a year down the line.
Compared with standard L-alanine or other methylated amino acids, the alpha-methyl modification means this compound behaves differently in reactions and bioassays. Stereochemistry and purity hold greater influence. Analysts need a product with no cross-contamination from other isomers. We go further than typical distributors by running each batch through chiral chromatography and not just basic melting point tests.
One major difference from resold material: timeline. Fresh batches move from synthesis to packaging without the weeks spent in a distributor’s warehouse, and our lab issues a fresh certificate of analysis—tuned to actual batch attributes, not “typical” data clipped from a generic producer’s report. Researchers working on time-sensitive peptide mapping or model organism trials have remarked that direct purchase shortens troubleshooting by days.
Another key contrast: customers see batch records, not marketing claims. Project leaders ask about our salt formation process or anti-caking protocols, and we give straightforward details. Downstream users may face regulatory scrutiny or academic review; nothing dampens an experiment like unexplained impurities. Our records reflect every small process tweak, so no question lingers about where and how a lot originated.
A few years back, demand for customized alpha-methylated amino acids grew as protein engineering moved mainstream. Standardized products couldn’t keep up. We reorganized part of the plant, dedicating reactors for pilot-scale syntheses. Technical liaisons communicate directly with clients—sometimes one on one for weeks—adjusting everything from solvent grade to drying time so that specs align with new methods.
Collaboration brings results. One biotech firm requested large-scale runs of highly pure hydrochloride to feed into peptide-based drug development. Their staff visited our plant, evaluated staff and SOPs, and left with a direct line for questions. By adjusting purification and solvent removal, we doubled purity levels over commercial standards. Each technical hurdle fed back into our protocols—in ways a hands-off supply chain just can’t replicate.
Good manufacturing doesn’t end at technical specs. From an E-E-A-T perspective—covering experience, expertise, authoritativeness, and trustworthiness—direct manufacturers play a critical role keeping research and industrial users safe. We take this to mean ongoing upgrades in environmental controls and operator training. Process safety means zero tolerance for cross-contamination. New operators shadow experienced staff across each step, learning not only procedures but why each matters. They learn to verify HCl concentrations using back-titration, or how to visually check crystalline finish before accepting a lot.
We report analytical data clearly, linking every certificate of analysis to the specific lot—not just the product line. Documentation includes complete spectroscopic, chromatographic, moisture, and chloride analyses, maintained for years. This satisfies regulatory or internal review, but the aim goes deeper: no one should second-guess the compound in their experiment or production line.
Packaging, labeling, and information delivery wrap up the process. Clear hazard and storage guidance helps research labs and production sites minimize risk. Full transparency isn’t just a marketing term—it acts as a foundation for scientific progress, regulatory adherence, and user trust.
Clients sometimes hit unforeseen problems—aggregation in reconstitution, unexpected signals in NMR, solubility shifts, or bioassay anomalies. Because we manage synthesis, purification, and packing, we investigate quickly and suggest troubleshooting routes, sometimes even modifying a next batch in response. In one case, we discovered that a minute rise in ambient humidity during drying caused micro-clumping, affecting a customer’s formulation routine. After modifying drying cycles and tweaking storage times before packing, we fixed the issue. The dialog continues—every challenge raises our game and leads to new standards.
Industry developments also guide changes in our practices. As more analytical applications arise—from natural product identification to pharmaceutical R&D—we invest in analytical instruments and train technical staff to keep pace. High-volume peptide synthesis, HPLC trace analysis, and advanced bioassay development don't just consume product, they push us to raise specifications: tighter controls on isomer content, finer moisture ranges, or more robust anti-counterfeiting measures in documentation.
Manufacturing specialty chemicals presents environmental challenges no matter the scale. Waste management has moved from compliance to a daily commitment. We manage effluents from methylation reactions in modern treatment units, segregating organic solvents for recycling and continuously monitoring water discharge. Facility audits push us to improve solvent recovery steps, re-use process water, and minimize chemical footprints at every level. Environmental officers conduct regular reviews, alerting us to improvements for long-term site health and community safety.
We rely on both automation and hands-on oversight. Automation keeps reaction steps within narrow limits, but keen eyes detect changes sensors miss. Human vigilance balances out technical precision, and we invest in staff at every level to maintain product safety and environmental stewardship.
Customers engage us all the time with unique projects—whether peptide modification, reference standards, or environmental research. Each request expands our expertise. Some clients request production at extreme purities, others single out cost-efficiency through improved process design. Feedback doesn’t filter through tiers of distributors; it comes direct, supporting innovation. Every discussion—straight from scientist to plant tech—adds to our cumulative know-how. Direct manufacturing means that no feedback is too minor, and every improvement, once validated, gets implemented at the next run.
Our approach builds partnerships. Customers know their needs aren’t stock answers—they come to us for solutions that larger, hands-off supply chains just can’t provide. Over years, this investment returns as both technical authority and mutual trust.
N-Alpha-Methyl-L-Alanine Hydrochloride may look simple—a white crystalline powder made for synthesis and research. Behind each drum, bag, or bottle is a long process shaped by technical discipline, staff experience, and an ongoing relationship with end users. Direct manufacture lets us achieve reproducibility, respond to changing project needs, and continuously raise standards.
For researchers and production chemists, every gram purchased from a direct source brings a story: raw materials tracked to origin, process adjustments logged and traceable, feedback folded into each batch. Every lot provides not only a reagent, but a partnership built on open knowledge, technical discipline, and a shared push for better science.