Fmoc-N-Me-3-(4-py)-L-Ala, a synthetic molecule, finds widespread use in the synthesis of peptides and proteins. Owing to its crucial role as a fundamental building block in solid-phase peptide synthesis, it has emerged as a potent weapon in the battle against numerous human maladies such as cancer and infectious diseases. With versatile functionality and chemical reactivity, the compound facilitates modifications and attachment to the peptide chain, rendering it a prized asset in the biomedical industry and a tool much sought after by researchers.
Size | Price | Stock | Quantity |
---|---|---|---|
1 g | $629 | In stock |
Fmoc-N-Me-3-(4-py)-L-Ala, an amino acid derivative utilized in peptide synthesis, boasts diverse applications. Here are the key applications presented with a high degree of perplexity and burstiness:
Peptide Synthesis: At the forefront of solid-phase peptide synthesis, Fmoc-N-Me-3-(4-py)-L-Ala emerges as a pivotal player, enabling the integration of modified residues into peptide chains. This amino acid derivative imparts peptides with enhanced structural and functional attributes, elevating stability, bioavailability, and target specificity. Researchers wield this tool to craft peptides that stand resilient against enzymatic degradation, driving advancements in drug development and bioactivity enhancement.
Drug Development: Within the intricate realm of drug design, Fmoc-N-Me-3-(4-py)-L-Ala emerges as a linchpin, facilitating the creation of peptide-based drugs with augmented pharmacokinetic profiles. By incorporating this modified amino acid, researchers engineer peptides with heightened resistance to enzymatic breakdown, culminating in enhanced therapeutic effectiveness and prolonged longevity within biological systems. This modification heralds a new era of peptide drug development, steering towards improved patient outcomes and treatment regimens.
Structural Biology: Delving deep into the nuances of protein structure and function, Fmoc-N-Me-3-(4-py)-L-Ala assumes a critical role in unraveling the mysteries of protein folding dynamics. By introducing conformational constraints within peptides, researchers orchestrate a symphony of protein folding intricacies, shedding light on the delicate interplay between molecular structures and biological activities. This innovative approach fuels breakthroughs in structural biology, illuminating the intricacies of protein conformation and functionality.
Material Science: Pioneering the way in materials science, Fmoc-N-Me-3-(4-py)-L-Ala takes center stage in the synthesis of peptide-based hydrogels with far-reaching applications. These hydrogels find utility in diverse fields such as drug delivery, tissue engineering, and wound healing, thanks to the mechanical strength and customizable properties conferred by the incorporation of Fmoc-N-Me-3-(4-py)-L-Ala. This venture into material science innovation opens doors to novel solutions in regenerative medicine and biomaterial design, propelling the boundaries of interdisciplinary research and application.