The Essential Role of Beta-D-Ribofuranose 1,2,3,5-tetraacetate in Modern Pharmaceutical Manufacturing
As a leading entity in the fine chemicals and pharmaceutical intermediates sector, NINGBO INNO PHARMCHEM CO.,LTD. recognizes the paramount importance of compounds like Beta-D-Ribofuranose 1,2,3,5-tetraacetate (CAS 13035-61-5) in the advancement of modern medicine. This acetylated derivative of ribose is not merely a chemical compound; it is a cornerstone for the synthesis of critical pharmaceutical agents, most notably the broad-spectrum antiviral drug, ribavirin. Understanding its chemical properties and applications is key to appreciating its value in the pharmaceutical supply chain.
Beta-D-Ribofuranose 1,2,3,5-tetraacetate, often referred to by synonyms such as tetraacetyl ribose or 1,2,3,5-Tetra-O-acetyl-β-D-ribofuranose, possesses a molecular formula of C13H18O9 and a molecular weight of approximately 318.28 g/mol. Its characteristic appearance as a white to off-white crystalline powder, coupled with a melting point typically around 81-83°C, provides clear physical identification. The presence of acetyl groups at the 1, 2, 3, and 5 positions of the ribofuranose ring serves a dual purpose: it protects these reactive hydroxyl sites and enhances the compound's solubility and stability in organic solvents. This makes it an ideal substrate for subsequent chemical modifications, particularly in glycosylation reactions, which are fundamental to creating nucleoside structures.
The primary application that elevates the significance of Beta-D-Ribofuranose 1,2,3,5-tetraacetate is its role as a direct precursor in the synthesis of ribavirin. Ribavirin is a potent antiviral medication used to treat a range of viral infections, including Hepatitis C and Respiratory Syncytial Virus (RSV). The efficient and high-purity synthesis of Beta-D-Ribofuranose 1,2,3,5-tetraacetate is therefore directly linked to the availability and affordability of this life-saving drug. Pharmaceutical manufacturers often seek to buy Beta-D-Ribofuranose 1,2,3,5-tetraacetate at a competitive wholesale price to optimize their production costs.
Beyond its critical role in ribavirin production, this compound also finds extensive use in broader carbohydrate chemistry and biochemical research. It serves as a versatile starting material for synthesizing other nucleosides, nucleotides, and complex carbohydrate derivatives. Researchers utilize it to explore glycosylation mechanisms, study enzymatic deacetylation, and model the behavior of sugar units in biological systems. The ability to procure high-quality Beta-D-Ribofuranose 1,2,3,5-tetraacetate from reliable suppliers is crucial for the success of these research endeavors.
At NINGBO INNO PHARMCHEM CO.,LTD., we are committed to providing high-quality Beta-D-Ribofuranose 1,2,3,5-tetraacetate, manufactured under stringent quality control processes. Our expertise in fine chemical synthesis, including advanced techniques like continuous flow process development, ensures that our clients receive products that meet rigorous pharmaceutical standards. We understand that consistent quality and reliable supply are paramount for pharmaceutical intermediate CAS 13035-61-5 procurement. By focusing on innovation and efficient production, we aim to support the global pharmaceutical industry in its mission to develop and deliver essential medicines. If you are looking to source this critical intermediate, exploring options to buy Beta-D-Ribofuranose 1,2,3,5-tetraacetate and understanding the wholesale price are important first steps.
Perspectives & Insights
Future Origin 2025
“Understanding its chemical properties and applications is key to appreciating its value in the pharmaceutical supply chain.”
Core Analyst 01
“Beta-D-Ribofuranose 1,2,3,5-tetraacetate, often referred to by synonyms such as tetraacetyl ribose or 1,2,3,5-Tetra-O-acetyl-β-D-ribofuranose, possesses a molecular formula of C13H18O9 and a molecular weight of approximately 318.”
Silicon Seeker One
“Its characteristic appearance as a white to off-white crystalline powder, coupled with a melting point typically around 81-83°C, provides clear physical identification.”