4.6 Article

Comparative analysis of the physicochemical and anti-biofilm properties of iota and lambda carrageenan-capped silver nanocomposites synthesized using response surface methodology

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NEW JOURNAL OF CHEMISTRY
卷 47, 期 35, 页码 16643-16658

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d3nj02293e

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In this study, two carbohydrate/sulfated polysaccharide-capped silver nanocomposites (ι-CrgAgNPs and λ-CrgAgNPs) were synthesized, characterized, and functionally assessed. The nanocomposites showed broad-spectrum anti-biofilm properties and can be further developed as potent antimicrobial agents for industrial formulations.
Antimicrobial resistance of microbes due to the formation of biofilms is a global industrial, environmental, and health concern. The current study presents the synthesis, characterization, and functional assessment of two carbohydrate/sulfated polysaccharide (& iota;-carrageenan and & lambda;-carrageenan)-capped silver nanocomposites (& iota;-CrgAgNPs and & lambda;-CrgAgNPs). The nanocomposite syntheses were designed and optimized using RSM-based FCCCD. The synthesized nanocomposites were characterized using an array of physicochemical techniques to study their morphological, structural, compositional, and molecular interaction features. Spherically shaped nanoparticles of sizes 12 & PLUSMN; 5 nm and 62 & PLUSMN; 10 nm were obtained for & iota;-CrgAgNPs and & lambda;-CrgAgNPs. As evident from FTIR, silver nanocomposites were stabilized by various functional groups present in carrageenans. Antibacterial and anti-biofilm studies performed using the Gram-negative strain Pseudomonas aeruginosa and Gram-positive strain Staphylococcus aureus suggested that both the nanocomposites were potent in inhibiting and eradicating the bacterial biofilms; however, their potency for eradicating the P. aeruginosa biofilm is much higher as compared to the S. aureus biofilm. Furthermore, within the nanocomposites, & lambda;-CrgAgNPs was observed to be more stable, while & iota;-CrgAgNPs exhibited enhanced biofilm inhibition/eradication properties. These results confirm the broad-spectrum anti-biofilm features of the synthesized carrageenan nanocomposites, which can be further developed as functional industrial formulations as potent antimicrobial agents.

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