Paczkowska-Walendowska Magdalena, Rył Anna, Kwiatek Jakub, Rosiak Natalia, Szarzyński Kamil, Wawrzyniak Weronika, Ziółkowska Julia, Kuderska Weronika, Kręcka Kaja, Marciniak Anna, Karpiński Tomasz M, Plech Tomasz, Miklaszewski Andrzej, Owczarz Piotr, Cielecka-Piontek Judyta
Department of Pharmacognosy and Biomaterials, Poznan University of Medical Sciences, Rokietnicka 3, 60-806 Poznan, Poland.
Science-Bridge Sp. z o.o., Chociszewskiego 24/8, 60-258 Poznan, Poland.
Polymers (Basel). 2025 Aug 8;17(16):2167. doi: 10.3390/polym17162167.
Oral infections and tissue defects remain significant clinical challenges, often requiring localized, sustained, and multifunctional therapeutic solutions. In this study, baicalein-loaded chitosan films were developed and comprehensively characterized as novel biomaterials for oral and maxillofacial applications. Using a 3 factorial design, nine film formulations were prepared via solvent casting, varying chitosan molecular weight and composition. Physicochemical and structural analyses (microscopy, SEM, FTIR, and XRPD) confirmed uniform drug distribution and matrix compatibility. Mechanical testing and dissolution studies demonstrated zero-order baicalein release kinetics, with controlled, sustained delivery influenced by chitosan content and molecular weight. The optimal formulation (F5: CS MMW 2%, Gel 2%) combined favorable mechanical integrity, drug release, and potent antioxidant and anti-inflammatory activities. Further evaluation on 3D anatomical models simulating bone and soft tissue defects highlighted excellent membrane adaptability, stability, and ease of handling under conditions mimicking clinical surgery. The films acted as effective barriers in guided tissue regeneration and donor site protection, with improved surgical visibility due to their baicalein-induced coloration. Biocompatibility assays confirmed the safety of the materials, while antibacterial testing demonstrated activity against . These results support the potential of baicalein-loaded chitosan films as multifunctional membranes for regenerative dentistry, periodontal therapy, and peri-implant care. The modular formulation design provides a platform for future integration of additional bioactive agents, paving the way for personalized, advanced wound healing solutions.
口腔感染和组织缺损仍然是重大的临床挑战,通常需要局部、持续且多功能的治疗方案。在本研究中,开发了载有黄芩素的壳聚糖膜,并对其作为口腔颌面应用的新型生物材料进行了全面表征。采用三因素设计,通过溶剂浇铸制备了九种膜制剂,改变壳聚糖的分子量和组成。物理化学和结构分析(显微镜、扫描电子显微镜、傅里叶变换红外光谱和X射线粉末衍射)证实了药物分布均匀和基质相容性。力学测试和溶出研究表明黄芩素的释放动力学为零级,壳聚糖含量和分子量对其控制的持续释放有影响。最佳制剂(F5:中分子量壳聚糖2%,明胶2%)兼具良好的机械完整性、药物释放以及强大的抗氧化和抗炎活性。在模拟骨和软组织缺损的三维解剖模型上进行的进一步评估突出了该膜在模拟临床手术条件下具有出色的膜适应性、稳定性和易于操作性。这些膜在引导组织再生和供体部位保护方面起到了有效的屏障作用,由于其黄芩素诱导的着色,提高了手术视野。生物相容性检测证实了材料的安全性,而抗菌测试表明其对……具有活性。这些结果支持了载有黄芩素的壳聚糖膜作为再生牙科、牙周治疗和种植体周围护理的多功能膜的潜力。模块化的制剂设计为未来整合其他生物活性剂提供了一个平台,为个性化的先进伤口愈合解决方案铺平了道路。