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Updated: Jan 30, 2026

Bacterial Cellulose Spheres that Encapsulate Solid Materials
Published on: February 26, 2021
In situ multi-crosslinked bacterial cellulose with enhanced mechanical and barrier properties for antimicrobial food
Weimin Xing1, Wenyan Liu2, Bei Yang3
1School of Materials Science and Engineering, Hainan University, 58 Renmin Road, Haikou, 570228, Hainan Province, China.
Abstract:
To mitigate environmental pollution and food contact safety concerns associated with traditional non-biodegradable plastic packaging, biodegradable and edible polysaccharide-based materials such as bacterial cellulose (BC) can serve as an ideal alternative for food packaging. In this paper, BC/Nisin/SA-PBA composite films were prepared using an in situ multi-crosslinking strategy to enhance the mechanical strength, barrier performance, and antimicrobial activity of BC films. The goal was to develop biodegradable and food-contact safe packaging films based on BC composites. Specifically, amphiphilic alginate derivatives (SA-PBA) were synthesized and incorporated during the bacterial cellulose biosynthesis together with Nisin, while subsequent cross-linking with Ca2+ was performed after harvest. Compared to pure BC film, the BC/Nisin/SA-PBA composite film containing 0.2 wt% SA-PBA exhibited significant improvements in mechanical properties, with tensile strength (TS) increasing by 3.08 times (24.77 MPa) and elongation at break (EAB) increasing by 37.51 times (16.13%). The oxygen transmission rate (OTR) and water vapor permeability (WVP) decreased by 98.11% and 80.93%, respectively. Additionally, the composite film demonstrated excellent antimicrobial activity, particularly against Staphylococcus aureus, and extended the shelf life of pork to 10 days at 4 °C. The film significantly reduced the total volatile basic nitrogen (TVB-N) and total viable count (TVC), indicating its potential for preserving food quality. This work proposes a novel in situ multi-crosslinking strategy to develop biodegradable, food-safe, and high-performance food packaging materials.
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