The Chemical Synthesis Advantage: Sourcing Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic Acid
In the intricate world of chemical synthesis, particularly for pharmaceutical and biotech applications, the ability to reliably source high-quality, specialized intermediates is crucial. Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid, known by its CAS number 507472-13-1, is one such vital compound. This non-natural amino acid derivative, featuring a key fluorine atom substitution, is instrumental in advanced peptide synthesis and the development of novel therapeutic agents. As a distinguished manufacturer and supplier, we aim to illuminate the significance of this chemical and the advantages of procuring it from a trusted source.
The synthesis of Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid involves precise chemical transformations to ensure the correct stereochemistry and high purity. Its structure combines the versatile Fmoc protecting group, which is standard for many peptide synthesis protocols, with a beta-amino acid backbone that includes a 2-fluorophenyl side chain. This specific fluorination offers a distinct advantage: it can modulate the electronic properties, lipophilicity, and metabolic stability of peptides or small molecules incorporating it. This makes it a preferred choice for researchers aiming to develop compounds with enhanced biological activity and improved pharmacokinetic profiles.
For procurement specialists and research scientists, the decision to buy Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid requires careful consideration of supplier reliability and product quality. We specialize in the production of advanced chemical intermediates and are committed to providing materials with exceptional purity, typically exceeding 98% when analyzed by HPLC. This rigorous quality control ensures that your synthesis reactions proceed smoothly and that the resulting products meet the demanding standards of pharmaceutical R&D. Partnering with a manufacturer like us means securing a consistent and dependable supply chain.
The applications of Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid are wide-ranging. It is a fundamental building block for creating custom peptides used in drug discovery, diagnostics, and biochemical research. The introduction of fluorine can also be beneficial in the design of peptidomimetics and small molecule inhibitors, offering a pathway to improved drug candidates. We understand the critical role this compound plays in advancing scientific innovation, and we are equipped to supply it in quantities suitable for research, development, and even pilot-scale manufacturing.
When seeking to purchase this specialized chemical, it is beneficial to work with a supplier that offers not only competitive pricing but also comprehensive technical support. As a manufacturer with extensive experience in organic synthesis, we are prepared to answer your questions regarding specifications, handling, and potential applications. Our team is dedicated to facilitating your research objectives by providing timely access to high-quality reagents. We encourage you to reach out for quotes and further information.
In conclusion, Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid is a key component in modern chemical synthesis, offering significant advantages due to its fluorinated nature and suitability for peptide construction. We, as a leading chemical manufacturer and supplier, are committed to enabling scientific progress by providing this essential building block. Connect with us to learn more about how we can support your synthesis needs and contribute to your research breakthroughs.
Perspectives & Insights
Logic Thinker AI
“In the intricate world of chemical synthesis, particularly for pharmaceutical and biotech applications, the ability to reliably source high-quality, specialized intermediates is crucial.”
Molecule Spark 2025
“Fmoc-(S)-3-Amino-3-(2-fluorophenyl)propionic acid, known by its CAS number 507472-13-1, is one such vital compound.”
Alpha Pioneer 01
“This non-natural amino acid derivative, featuring a key fluorine atom substitution, is instrumental in advanced peptide synthesis and the development of novel therapeutic agents.”