Department of Pharmaceutical Biomaterials, Faculty of Pharmacy, Tehran University of Medical Sciences , Tehran , Iran.
Biomaterials Group, the Institute of Pharmaceutical Sciences (TIPS), Tehran University of Medical Sciences , Tehran , Iran.
Artif Cells Nanomed Biotechnol. 2019 Dec;47(1):4020-4029. doi: 10.1080/21691401.2019.1658594.
Nowadays, the development of drug-loaded electrospun organic-inorganic composite scaffolds for tissue engineering application is an attractive approach. In this study, a composite scaffold of Poly-l-lactic acid (PLLA) incorporated dexamethasone (Dexa) loaded Mesoporous Silica Nanoparticles (MSN) coated with Chitosan (CS) were fabricated by electrospinning for bone tissue engineering application. The MSN was prepared by precipitation method. After that, Dexamethasone (Dexa) was loaded into MSNs (MSN-Dexa). In the following, CS was coated over the prepared nanoparticles to form MSN-Dexa@CS and then, were mixed to PLLA solution to form MSN-Dexa@CS/PLLA composite for electrospinning. The surface morphology, hydrophilicity, tensile strength and the bioactivity of the scaffolds were characterized. The osteogenic proliferation and differentiation potential were evaluated by MTT assay and by measuring the basic osteogenic markers: the activity of the enzyme alkaline phosphatase and the level of calcium deposition. The composite scaffolds prepared here have conductive surface property and have a better osteogenic potential than pure PLLA scaffolds. Hence, the controlled release of nanoparticle containing Dexa from composite scaffold supported the osteogenesis and made the composite scaffolds ideal candidates for bone tissue engineering application and pH-sensitive delivery of drugs at the site of implantation in tissue regeneration.
如今,用于组织工程应用的载药电纺有机-无机复合支架的开发是一种很有吸引力的方法。在这项研究中,通过静电纺丝制备了一种载有地塞米松(Dexa)的聚 L-乳酸(PLLA)复合支架,其中负载有介孔硅纳米粒子(MSN)的壳聚糖(CS)涂层。MSN 通过沉淀法制备。之后,将地塞米松(Dexa)载入 MSN(MSN-Dexa)中。然后,将 CS 涂覆在制备好的纳米颗粒上,形成 MSN-Dexa@CS,再将其与 PLLA 溶液混合,形成用于静电纺丝的 MSN-Dexa@CS/PLLA 复合支架。对支架的表面形态、亲水性、拉伸强度和生物活性进行了表征。通过 MTT 分析和测量碱性磷酸酶活性和钙沉积水平这两种基本成骨标志物,评估了支架的成骨增殖和分化潜力。与纯 PLLA 支架相比,这里制备的复合支架具有导电表面性能和更好的成骨潜力。因此,复合支架中纳米颗粒载药的控释有助于成骨,并使复合支架成为组织工程应用和药物在组织再生部位植入部位 pH 敏感递药的理想候选材料。