Öksüz Kerim Emre, Arslan Saynur
Department of Metallurgical and Materials Engineering, Sivas Cumhuriyet University, Sivas 58140, Türkiye.
Institute of Science and Technology, Department of Bioengineering, Sivas Cumhuriyet University, Sivas 58140, Türkiye.
ACS Omega. 2025 Apr 11;10(15):15525-15539. doi: 10.1021/acsomega.5c00442. eCollection 2025 Apr 22.
The development of biocompatible biopolymer foams loaded with antibiotics is crucial to advancing drug delivery systems in biomedical engineering. These materials offer controlled drug release and specialized functionalities for improved therapeutic outcomes. This study presents the development and characterization of antimicrobial polymeric biofoam materials loaded with the drug amoxicillin (AMX). The sustainable synthesis of these biopolymer foams involves a cost-effective, eco-friendly method that incorporates natural starch within poly(vinyl alcohol) (PVA) through an aldehyde cross-linking/stabilizing process. The highly porous structure of the biofoams enabled effective impregnation of the AMX drug using an innovative process involving ultrasonication and vacuum pressure to maximize efficiency and minimize biomaterial loss. The findings demonstrate the potential of these PVA/starch-based biofoams as versatile drug delivery systems with desirable physicochemical and biological characteristics. Detailed investigations were conducted to evaluate morphological features, chemical properties, swelling behavior, in vitro biodegradability, drug release profiles, cell culture, and antimicrobial activity tests of the prepared biofoam samples. Investigating the effect of controlled loading of AMX under laboratory conditions on its release profile and studying its biodegradation in various environments over time represent a critical aspect of this research. The optimal release profile under physiological conditions and the potent inhibition of bacterial growth against and microorganisms by AMX-loaded biofoam materials highlight their potential for biomedical applications. These materials show promise for the in vivo administration and local treatment of bacterial infections.
负载抗生素的生物相容性生物聚合物泡沫的开发对于推进生物医学工程中的药物递送系统至关重要。这些材料提供可控的药物释放和特殊功能,以改善治疗效果。本研究介绍了负载阿莫西林(AMX)的抗菌聚合物生物泡沫材料的开发和表征。这些生物聚合物泡沫的可持续合成涉及一种经济高效、环境友好的方法,该方法通过醛交联/稳定过程将天然淀粉纳入聚乙烯醇(PVA)中。生物泡沫的高度多孔结构使得能够使用一种创新工艺有效地浸渍AMX药物,该工艺涉及超声处理和真空压力,以最大限度地提高效率并最小化生物材料损失。研究结果表明,这些基于PVA/淀粉的生物泡沫作为具有理想物理化学和生物学特性的多功能药物递送系统具有潜力。对制备的生物泡沫样品进行了详细研究,以评估其形态特征、化学性质、溶胀行为、体外生物降解性、药物释放曲线、细胞培养和抗菌活性测试。研究实验室条件下AMX的控制负载对其释放曲线的影响,并研究其在不同环境中的长期生物降解是本研究的一个关键方面。生理条件下的最佳释放曲线以及负载AMX的生物泡沫材料对 和 微生物的强效细菌生长抑制突出了它们在生物医学应用中的潜力。这些材料在体内给药和局部治疗细菌感染方面显示出前景。