Ciolacu Diana Elena, Nicu Raluca, Suflet Dana Mihaela, Rusu Daniela, Darie-Nita Raluca Nicoleta, Simionescu Natalia, Cazacu Georgeta, Ciolacu Florin
Department of Natural Polymers, Bioactive and Biocompatible Materials, "Petru Poni" Institute of Macromolecular Chemistry, 700487 Iasi, Romania.
Department of Physics of Polymers and Polymeric Materials, "Petru Poni" Institute of Macromolecular Chemistry, 700487 Iasi, Romania.
Pharmaceutics. 2023 Nov 4;15(11):2588. doi: 10.3390/pharmaceutics15112588.
Considering the complex process of wound healing, it is expected that an optimal wound dressing should be able to overcome the multiple obstacles that can be encountered in the wound healing process. An ideal dressing should be biocompatible, biodegradable and able to maintain moisture, as well as allow the removal of exudate, have antibacterial properties, protect the wound from pathogens and promote wound healing. Starting from this desideratum, we intended to design a multifunctional hydrogel that would present good biocompatibility, the ability to provide a favorable environment for wound healing, antibacterial properties, and also, the capacity to release drugs in a controlled manner. In the preparation of hydrogels, two natural polymers were used, cellulose (C) and chemically modified lignin (LE), which were chemically cross-linked in the presence of epichlorohydrin. The structural and morphological characterization of CLE hydrogels was performed by ATR-FTIR spectroscopy and scanning electron microscopy (SEM), respectively. In addition, the degree of swelling of CLE hydrogels, the incorporation/release kinetics of procaine hydrochloride (PrHy), and their cytotoxicity and antibacterial properties were investigated. The rheological characterization, mechanical properties and mucoadhesion assessment completed the study of CLE hydrogels. The obtained results show that CLE hydrogels have an increased degree of swelling compared to cellulose-based hydrogel, a better capacity to encapsulate PrHy and to control the release of the drug, as well as antibacterial properties and improved mucoadhesion. All these characteristics highlight that the addition of LE to the cellulose matrix has a positive impact on the properties of CLE hydrogels, confirming that these hydrogels can be considered as potential candidates for applications as oral wound dressings.
考虑到伤口愈合过程的复杂性,预计一种理想的伤口敷料应能够克服伤口愈合过程中可能遇到的多种障碍。理想的敷料应具有生物相容性、可生物降解性,能够保持水分,允许排出渗出液,具有抗菌性能,保护伤口免受病原体侵害并促进伤口愈合。基于这一需求,我们旨在设计一种多功能水凝胶,它应具有良好的生物相容性,能够为伤口愈合提供有利环境,具备抗菌性能,并且能够以可控方式释放药物。在水凝胶的制备过程中,使用了两种天然聚合物,纤维素(C)和化学改性木质素(LE),它们在环氧氯丙烷存在下进行化学交联。分别通过ATR - FTIR光谱和扫描电子显微镜(SEM)对CLE水凝胶进行结构和形态表征。此外,还研究了CLE水凝胶的溶胀度、盐酸普鲁卡因(PrHy)的包封/释放动力学及其细胞毒性和抗菌性能。流变学表征、力学性能和粘膜粘附评估完成了对CLE水凝胶的研究。所得结果表明,与基于纤维素的水凝胶相比,CLE水凝胶具有更高的溶胀度,具有更好的包封PrHy和控制药物释放的能力,以及抗菌性能和改善的粘膜粘附性。所有这些特性表明,向纤维素基质中添加LE对CLE水凝胶的性能有积极影响,证实这些水凝胶可被视为口腔伤口敷料应用的潜在候选材料。