Cinan Ezgi, Cesur Sumeyye, Erginer Haskoylu Merve, Gunduz Oguzhan, Toksoy Oner Ebru
Industrial Biotechnology and System Biology (IBSB) Research Group, Department of Bioengineering, Marmara University, Istanbul 34722, Turkey.
Center for Nanotechnology & Biomaterials Application and Research (NBUAM), Marmara University, Istanbul 34722, Turkey.
Nanomaterials (Basel). 2021 Sep 30;11(10):2582. doi: 10.3390/nano11102582.
Considering the significant advances in nanostructured systems in various biomedical applications and the escalating need for levan-based nanoparticles as delivery systems, this study aimed to fabricate levan nanoparticles by the electrohydrodynamic atomization (EHDA) technique. The hydrolyzed derivative of levan polysaccharide from halophilic bacteria, hydrolyzed levan (hHL), was used. Nanoparticles were obtained by optimizing the EHDA parameters and then they were characterized in terms of morphology, molecular interactions, drug release and cell culture studies. The optimized hHL and resveratrol (RS)-loaded hHL nanoparticles were monodisperse and had smooth surfaces. The particle diameter size of hHL nanoparticles was 82.06 ± 15.33 nm. Additionally, release of RS from the fabricated hHL nanoparticles at different pH conditions were found to follow the first-order release model and hHL with higher RS loading showed a more gradual release. In vitro biocompatibility assay with human dermal fibroblast cell lines was performed and cell behavior on coated surfaces was observed. Nanoparticles were found to be safe for healthy cells. Consequently, the fabricated hHL-based nanoparticle system may have potential use in drug delivery systems for wound healing and tissue engineering applications and surfaces could be coated with these electrosprayed particles to improve cellular interaction.
鉴于纳米结构系统在各种生物医学应用中取得的重大进展以及对基于左聚糖的纳米颗粒作为递送系统的需求不断增加,本研究旨在通过电液动力雾化(EHDA)技术制备左聚糖纳米颗粒。使用了来自嗜盐细菌的左聚糖多糖的水解衍生物,即水解左聚糖(hHL)。通过优化EHDA参数获得纳米颗粒,然后对其进行形态、分子相互作用、药物释放和细胞培养研究等方面的表征。优化后的hHL和负载白藜芦醇(RS)的hHL纳米颗粒呈单分散且表面光滑。hHL纳米颗粒的粒径为82.06±15.33nm。此外,发现在不同pH条件下,制备的hHL纳米颗粒中RS的释放遵循一级释放模型,且RS负载量较高的hHL表现出更缓慢的释放。对人皮肤成纤维细胞系进行了体外生物相容性测定,并观察了细胞在包被表面的行为。发现纳米颗粒对健康细胞是安全的。因此,制备的基于hHL的纳米颗粒系统可能在伤口愈合和组织工程应用的药物递送系统中具有潜在用途,并且可以用这些电喷雾颗粒包被表面以改善细胞相互作用。