Department of Physics, The Faculty of Science and Arts, Inonu University, 44280 Malatya, Turkey.
Department of Medical Services and Techniques, Vocational School of Health Services, Malatya Turgut Ozal University, 44210 Malatya, Turkey.
ACS Appl Bio Mater. 2022 Mar 21;5(3):1348-1360. doi: 10.1021/acsabm.2c00071. Epub 2022 Feb 24.
Sporopollenin exine capsules (SECs) are highly resistant to heat and various acids and bases. They are also cheap, highly porous, eco-friendly polymer biomaterials with stable microencapsulation capacity. Due to their strong and uniquely shaped exine layers, they can allow growth on metal oxide materials, as a biotemplate for use in different applications. In this study, first, a single SEC extraction method was applied to three different pollens from , , and . Scanning electron microscopy (SEM), Brunauer-Emmett-Teller (BET) analysis, and thermogravimetric/differential thermal analysis (TGA/DTA) measurements both before and after the extraction process were performed to observe changes in surface area, morphology, porous structure, and degradation properties. The protein content and removal were analyzed by elemental and spectrophotometric analyses. Then, SECs were loaded by passive and centrifuge loading for drug delivery, and the loading capacities were analyzed by Fourier transform infrared spectroscopy and spectrophotometry. The method was successful in opening the pores and maintaining the structural integrity of SECs. It was determined that the morphology and porosity affected the encapsulation efficiency. According to the loading capacities, SECs were the most efficient SECs for both loading methods. In addition, three different SECs were hydrothermally coated with cobalt and then heat-treated to obtain a metal oxide structure. A COO supercapacitor electrode constructed using COO- SEC powder had the best surface area parameters. The electrode showed a maximum specific capacity of 473 F/g for over 3000 continuous cycles of galvanostatic charge-discharge (GCD).
花粉外壁孢粉素胶囊 (SECs) 具有高度的耐热性和耐酸碱性能。它们还具有成本低、高度多孔、环保的聚合物生物材料的特点,具有稳定的微封装能力。由于其坚固且具有独特形态的外壁层,它们可以允许在金属氧化物材料上生长,作为用于不同应用的生物模板。在这项研究中,首先,应用了一种单一的 SEC 提取方法从 、 、 和 三种不同的花粉中提取。在提取前后,通过扫描电子显微镜 (SEM)、BET 分析和热重/差热分析 (TGA/DTA) 测量来观察表面积、形态、多孔结构和降解特性的变化。通过元素和分光光度分析来分析蛋白质含量和去除情况。然后,通过被动和离心加载将 SECs 加载用于药物输送,并通过傅里叶变换红外光谱和分光光度法分析装载能力。该方法成功地打开了 SECs 的孔并保持了其结构完整性。确定形态和孔隙率影响封装效率。根据装载能力, SECs 是两种装载方法中最有效的 SECs。此外,三种不同的 SECs 被水热涂覆钴,然后进行热处理以获得金属氧化物结构。使用 COO-SEC 粉末构建的 COO 超级电容器电极具有最佳的表面积参数。该电极在 3000 多次连续的恒电流充放电 (GCD) 循环中表现出最大的比容量为 473 F/g。