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Updated: Sep 13, 2025

Bacterial Cellulose Spheres that Encapsulate Solid Materials
Published on: February 26, 2021
Okara cellulose-based multifunctional sponge with wet elastic deformation recovery for antibacterial, hemostatic, and
Zongyu Li1, Jiaxin Zhao1, Jiawei Fang1
1School of Light Industry and Engineering, South China University of Technology, Guangzhou 510640, China.
Abstract:
In the battlefield and emergencies, uncontrolled hemorrhage remains a primary cause of trauma-related deaths, while hemostatic materials still face technical bottlenecks in achieving multifunctional properties such as hemostasis and antibacterial activity. To address this issue, a multifunctional medical sponge was prepared using okara, a cellulose-rich agricultural by-product. First, Tempo oxidation technique was used to prepare oxidized okara cellulose (TOC). Subsequently, with TOC as a reducing and stabilizing agent, cerium oxide-nanosilver composite (CeO2@Ag) was synthesized. Finally, the TOC was crosslinked with N-hydroxyethyl acrylamide and introduced into a composite antibacterial agent (CeO2@Ag) to prepare a novel multifunctional sponge (TOC/N/CeO2@Ag). Furthermore, the sponges featured excellent porous structure (pore size 30-120 μm) and excellent elasticity (shape recovery 87.8 %) at wet state. The blood clotting index of the sponge was 13.6 %, and its hemostatic properties were significantly better than that of the commercially available PVF sponge (49.2 %). The inhibition rates of sponges for S. aureus and E. coli were 95.3 % and 96.4 %, respectively. Moreover, the composite sponge represented excellent blood, cell compatibility and antioxidant activity. This study can be used in fields such as rapid hemostasis and offers a sustainable and effective strategy for the high-value utilization of agricultural by-products.

