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September 16, 2025Fibers6 citationsOpen Access

Commercial, Non-Commercial and Experimental Wound Dressings Based on Bacterial Cellulose: An In-Depth Comparative Study of Physicochemical Properties

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SPSarah Brandão PalácioSPSimone Oliveira PenelloKHKatharine Valéria Saraiva Hodel

Key Points

  • BCC showed the highest crystallinity and thermal stability, indicating its use for high exudate wounds.
  • BCP had the greatest tensile strength, making it suitable for applications requiring mechanical robustness.
  • Membracel® was best for low-exudate wounds due to lower crystallinity and vapor permeability.
  • All BC samples maintained dimensional stability in simulated wound fluid, supporting tailored wound care solutions.

Abstract

Wound management remains a significant global healthcare challenge, particularly due to chronic wounds that resist healing and impose economic and social burdens. Bacterial cellulose (BC), owing to its biocompatibility, high purity and moisture-handling capabilities, has gained attention as a wound dressing material. This study provides a comparative evaluation of a commercial BC film (Membracel®), a non-commercial BC from POLISA® (BCP) and an experimental BC from SENAI CIMATEC (BCC), all produced via static fermentation using distinct culture conditions. Comprehensive characterization included scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, thermogravimetric analysis, solid-state 13C NMR, water interaction assessments, porosity and vapor permeability measurements, optical and mechanical testing and in vitro stability in simulated wound fluid. The three BC films exhibited markedly different structural and functional profiles. BCC displayed the highest crystallinity (78.7%), thermal stability and vapor permeability, indicating suitability for wounds with high exudate. BCP showed the greatest tensile strength (46.2 MPa) and flexibility, suggesting utility where mechanical robustness is required. Membracel® exhibited lower crystallinity and vapor permeability, appropriate for low-exudate wounds. All samples remained dimensionally stable in simulated wound fluid. These findings highlight clear correlations between the physicochemical properties of BC-based dressings and their potential clinical applications, supporting the development of tailored wound care solutions based on wound type and moisture management requirements.

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Cite This Study

Palácio et al. (2025) studied this question.

synapsesocial.com/papers/68d454bb31b076d99fa59c65https://doi.org/10.3390/fib13090127
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