Biopolymeric Membranes with Active Principle of Olive Leaves (Olea europaea L.) for Potential Topical Application

Macromol Pub Date : 2023-06-01 DOI:10.3390/macromol3020020
Rafael Carvalho Alves, C. Contessa, C. C. Moraes, Gabriela Silveira da Rosa
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Abstract

The biggest challenge for scientists is to create an ideal wound dressing that should be non-toxic, biocompatible, and biodegradable, providing optimal conditions for the most effective regeneration process. Biomaterials loaded with plant-derived compounds show better biocompatibility and biological properties, ensuring a faster tissue repair process. In order to develop membranes with good mechanical properties and anti-bacterial properties, the objective of this work describes the synthesis of a chitosan-based membrane added with olive leaf extract as an active principle with potential for topical application. The material developed was characterized in terms of morphology, physical, chemical, and mechanical properties, and the anti-bacterial capacity of the membranes. The results indicated that the developed membrane has good potential for use as a wound dressing, as it presented mechanical properties (30.17 ± 8.73 MPa) and fluid draining capacity (29.31 ± 1.65 g·m−2·h−1) adequacy. In addition, the antimicrobial activity analysis revealed the active membrane potential against E. coli and S. aureus reaching 9.9 mm and 9.1 mm, respectively, in inhibition zones, the most common bacteria in skin wounds. Therefore, all the results indicate that the developed membrane presents viable characteristics for the use of wound dressing.
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具有橄榄叶(Olea europaea L.)活性原理的生物聚合物膜的潜在局部应用
科学家面临的最大挑战是创造一种理想的伤口敷料,它应该是无毒的,生物相容性的,可生物降解的,为最有效的再生过程提供最佳条件。负载植物源性化合物的生物材料具有更好的生物相容性和生物学特性,确保了更快的组织修复过程。为了开发具有良好机械性能和抗菌性能的膜,本文介绍了添加橄榄叶提取物的壳聚糖基膜的合成,作为一种具有局部应用潜力的活性成分。所开发的材料在形态、物理、化学和机械性能以及膜的抗菌能力方面进行了表征。结果表明,该膜具有良好的力学性能(30.17±8.73 MPa)和排液能力(29.31±1.65 g·m−2·h−1),具有良好的应用前景。此外,抗菌活性分析显示,在皮肤创面最常见的抑菌区,对大肠杆菌和金黄色葡萄球菌的活性膜电位分别达到9.9 mm和9.1 mm。因此,所有的结果表明,所研制的膜具有可行的特性,用于伤口敷料。
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