Key Labolatory of Modern Preparation of TCM, Ministry of Education, Jiangxi University of Chinese Medicine, 1688 Meiling Avenue, Nanchang 330004, China.
Molecules. 2023 Jan 6;28(2):594. doi: 10.3390/molecules28020594.
To improve the sustained release and long-term antibacterial activity of essential oil (CEO), novel sponge-liked nanoporous silica particles (SNP) were synthesized via the soft template method, which was employed as a biocompatible carrier to prepare spong-liked nanoporous silica particles loading with CEO (CEO-SNP) through physical adsorption. The structure and properties of the samples were characterized via N2 adsorption/desorption measurements, thermogravimetry (TGA), Fourier transform infrared, SEM and TEM. The result showed that the SNP exhibited an excellent loading capability of CEO up to 76.3%. The thermal stability and release behavior of the CEO were significantly improved via the physical adsorption of the SNP materials. The release profile of CEO was in accordance with the first-order kinetic model, which meant that the release mechanism was drug Fick's diffusion. The antibacterial evaluation results demonstrated that the CEO-SNP exhibited strong antibacterial activity against , and . The antibacterial results have shown that the CEO-SNP could destroy the cell structure of bacteria, and result in the generation of oxidative stress and the release of nucleic acid. After storage of 30 d at 25 °C, the CEO-SNP still had the stronger antibacterial activity towards , and in comparison with CEO. Therefore, the sponge-like silica nanoporous particles seemed to be a promising carrier for long-term stability and antibacterial delivery of CEO.
为了提高精油(CEO)的缓释和长效抗菌活性,采用软模板法合成了新型海绵状纳米多孔硅粒子(SNP),并将其用作生物相容性载体,通过物理吸附法制备了负载 CEO 的海绵状纳米多孔硅粒子(CEO-SNP)。通过氮气吸附/解吸测量、热重分析(TGA)、傅里叶变换红外光谱、SEM 和 TEM 对样品的结构和性能进行了表征。结果表明,SNP 对 CEO 具有优异的负载能力,可达 76.3%。SNP 材料的物理吸附显著改善了 CEO 的热稳定性和释放行为。CEO 的释放曲线符合一级动力学模型,这意味着释放机制是药物菲克扩散。抗菌评价结果表明,CEO-SNP 对 、 和 表现出较强的抗菌活性。抗菌结果表明,CEO-SNP 可以破坏细菌的细胞结构,导致氧化应激和核酸释放。在 25°C 下储存 30 d 后,CEO-SNP 对 、 和 的抗菌活性仍强于 CEO。因此,海绵状硅纳米多孔粒子似乎是一种有前途的载体,可用于 CEO 的长期稳定性和抗菌输送。