Synthesis, characterization, and antibacterial activity of novel bis(indolyl)methanes sourced from biorenewable furfurals using gluconic acid aqueous solution (GAAS) as a sustainable catalyst
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Date
2024
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Publisher
Royal Society of Chemistry
Abstract
Bis(indolyl)methanes (BIMs) are important heterocycle-containing molecular scaffolds that show remarkable biological and pharmacological activities. This work reports the synthesis of novel BIMs using carbohydrate-derived 5-substituted-2-furaldehydes as renewable reactants. Structural diversity was introduced in the BIMs as substituents in the indole and furaldehyde moieties. Various commonly encountered biorenewable carboxylic acids were screened as catalysts for the acid-catalyzed transformation under organic solvent-free conditions. All the novel BIMs were characterized by spectroscopic techniques (FTIR, 1H-NMR, 13C-NMR) and elemental analysis. The reaction was optimized on the reaction temperature, duration, catalyst type, and catalyst loading. The gluconic acid aqueous solution (GAAS) showed the best catalytic activity for the transformation, affording satisfactory isolated yields (68-96%) of the targeted BIMs under optimized conditions. The GAAS catalyst was conveniently recovered from the reaction mixture and reused for four consecutive cycles without catastrophic loss in either mass or activity. Moreover, the antibacterial activities of the novel BIMs were studied on Gram-positive and Gram-negative bacterial strains, such as Enterococcus faecalis and Pseudomonas syringae. © 2024 The Royal Society of Chemistry.
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Keywords
Bacteria, Gallium arsenide, III-V semiconductors, Methane, Scaffolds, Semiconducting gallium, Spectroscopic analysis, 2-furaldehyde, Anti-bacterial activity, Biorenewable, Bis(indolyl)methanes, Gluconic acids, Heterocycles, Molecular scaffolds, Pharmacological activity, Structural diversity, ]+ catalyst, Catalyst activity
Citation
RSC Advances, 2024, 14, 30, pp. 21553-21562
