Pouroutzidou Georgia K, Lazaridou Maria, Papoulia Chrysanthi, Tsamesidis Ioannis, Chrissafis Konstantinos, Vourlias George, Paraskevopoulos Konstantinos M, Bikiaris Dimitrios, Kontonasaki Eleana
Advanced Materials and Devices Laboratory, Faculty of Sciences, School of Physics, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.
Department of Prosthodontics, Faculty of Health Sciences, School of Dentistry, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.
Nanomaterials (Basel). 2022 Mar 2;12(5):850. doi: 10.3390/nano12050850.
Engineered electrospun membranes have emerged as promising materials in guided tissue regeneration, as they provide an appropriate framework for the formation of new functional periodontal tissues. The development of multifunctional local drug delivery systems with sustained release of drugs for prolonged infection control can be used in periodontal surgical interventions to simultaneously prohibit epithelium downgrowth and ensure proper healing and regeneration of damaged periodontal tissues. The aim of the present study was the fabrication of novel composite membranes from PLGA/moxifloxacin-loaded mesoporous nanocarriers through electrospinning and the evaluation of their drug release profiles. The addition of moxifloxacin-loaded mesoporous nanocarriers in PLGA yielded a sustained and prolonged drug release, while maintaining satisfactory mechanical strength. The freshly fabricated membranes were found to be biocompatible at masses less than 1 mg after exposure to healthy erythrocytes. Increase in the amount of polymer led to more uniform fibers with large diameters and pores. The study of the parameters of the electrospinning process indicated that increase in the applied voltage value and rotation speed of the collector led to more uniform fibers with higher diameter and larger pores, suitable for tissue regeneration applications, such as periodontal tissue regeneration.
工程化电纺膜已成为引导组织再生中有前景的材料,因为它们为新的功能性牙周组织的形成提供了合适的框架。开发具有药物持续释放功能的多功能局部给药系统,用于长期控制感染,可用于牙周手术干预,以同时阻止上皮细胞向下生长,并确保受损牙周组织的正常愈合和再生。本研究的目的是通过静电纺丝制备由聚乳酸-羟基乙酸共聚物(PLGA)/负载莫西沙星的介孔纳米载体组成的新型复合膜,并评估其药物释放曲线。在PLGA中添加负载莫西沙星的介孔纳米载体可实现药物的持续和延长释放,同时保持令人满意的机械强度。新制备的膜在暴露于健康红细胞后,质量小于1mg时被发现具有生物相容性。聚合物用量的增加导致纤维更均匀,直径和孔隙更大。对静电纺丝过程参数的研究表明,增加施加电压值和收集器的转速会导致纤维更均匀,直径更大,孔隙更大,适用于组织再生应用,如牙周组织再生。