4.7 Article

Insights into electrospun pullulan-carboxymethyl chitosan/PEO core-shell nanofibers loaded with nanogels for food antibacterial packaging

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DOI: 10.1016/j.ijbiomac.2023.123433

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Core-shell nanofibers; CMCS-nisin nanogels; Coaxial electrospinning; Bass fish preservation

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In this study, a dual stabilization method called coaxial electrospinning was used to prepare core-shell nanofibers for food packaging materials. The nanofibers were loaded with carboxymethyl chitosan-nisin nanogels as antibacterial agents. The nanofibers exhibited smooth surface, enhanced thermal stability, mechanical strength, and excellent antibacterial activity. They effectively extended the shelf life of bass fish from 9 days to 15 days. These core-shell nanofibers have great potential as food packaging materials for preserving aquatic products.
Nisin, a natural substance from Lactococcus lactis, displays a promising antibacterial ability against the gram-positive bacteria. However, it is susceptible to the external environment, i.e. temperature, pH, and food composition. In this study, a dual stabilization method, coaxial electrospinning, was applied to protect nisin in food packaging materials and the effect of nisin concentration on the properties of the nanofibers was investi-gated. The core-shell nanofibers with pullulan as a core layer and carboxymethyl chitosan (CMCS)/polyethylene oxide (PEO) as shell layer were prepared, and then the prepared CMCS-nisin nanogels (CNNGs) using a self-assembly method were loaded into the core layer of the nanofibers as antibacterial agents. The result revealed that the smooth surface can be observed on the nanofibers by microstructure characterization. The CNNGs-loaded nanofibers exhibited enhanced thermal stability and mechanical strength, as well as excellent antibac-terial activity. Importantly, the as-formed nanofibers were applied to preserve bass fish and found that the shelf life of bass fish packed by CNNGSs with nisin at a concentration of 8 mg/mL was effectively extended from 9 days to 15 days. Taken together, the CNNGs can be well stabilized with the core-shell nanofibers, thus exerting significantly improved antimicrobial stability and bioactivity. This special structure exerts a great potential for application as food packaging materials to preserve aquatic products.

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