Recent Synthetic Advancements in Phthalic Anhydride Analogs and Their Pharmacological Potential: A Comprehensive
Nandani Sharma1, Pawan Kumar Gupta1, Prashant Kumar1
1Department of Pharmacy, M.J.P. Rohilkhand University, Bareilly Uttar Pradesh, 243006, India.
Abstract:
Phthalic anhydride is a crucial chemical intermediate that has been extensively utilized in the synthesis of diverse bioactive compounds. This study focuses on the synthesis, structural changes, and biological application of phthalic anhydride derivatives. It is used in the production process of many consumer and industrial goods. It is derived by partial oxidation from multinuclear or alkyl- substituted aromatic compounds, such as naphthalene or o-xylene. The main method for producing phthalic anhydride is gas-phase oxidation of o-xylene over a fixed catalyst that contains oxides of titanium and vanadium. Microwave synthesis, bio-based synthesis, and catalyst development are examples of complicated synthetic processes. Phthalic anhydride plays an important function as a substrate and precursor in the synthesis of several derivatives, such as anthracenes, phthalimide, phthalazine, and 2-benzofuran-1,3-dione. Furthermore, the structure-activity relationship of phthalimide along with phthalic acid isomers and their diverse derivatives has been comprehensively discussed. These derivatives constitute the basis for various heterocyclic compounds with a wide range of chemical and biological activities, including anti-inflammatory, anti-cancer, anti-fungal, and anti-microbial properties. Phthalic anhydride is used in the production of Polyvinyl Chloride (PVC), medicine, dyes, pigments, pharmaceutically important intermediates, and the plastic industry for the synthesis of resins, agriculture, fungicides, and other materials for humans; in recent years, 60% of the world's population has used it for plasticizers. Recent advancement has focused on developing efficient catalysts and greener processes to address environmental concerns. As a result, phthalic anhydride is still a significant and adaptable substrate in both two-component and multicomponent organic reactions, highlighting its continued relevance in chemical research and industrial applications.
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