Department of Basic Medical Sciences, College of Applied Medical Sciences, King Khalid University, Abha, Saudi Arabia.
Facultad de Ciencias Pecuarias, Escuela Superior Politécnica de Chimborazo (ESPOCH), Panamericana Sur Km 1½, Riobamba, 060155, Ecuador.
Bioprocess Biosyst Eng. 2024 Aug;47(8):1321-1334. doi: 10.1007/s00449-024-03021-4. Epub 2024 Apr 22.
Ultrasonic manufacturing has emerged as a promising eco-friendly approach to synthesize lipid-based nanocarriers for targeted drug delivery. This study presents the novel ultrasonic preparation of lipid nanocarriers loaded with Scutellaria barbata extract, repurposed for anticancer and antibacterial use. High-frequency ultrasonic waves enabled the precise self-assembly of DSPE-PEG, Span 40, and cholesterol to form nanocarriers encapsulating the therapeutic extract without the use of toxic solvents, exemplifying green nanotechnology. Leveraging the inherent anticancer and antibacterial properties of Scutellaria barbata, the study demonstrates that lipid encapsulation enhances the bioavailability and controlled release of the extract, which is vital for its therapeutic efficacy. Dynamic light scattering and transmission electron microscopy analyses confirmed the increase in size and successful encapsulation post-loading, along with an augmented negative zeta potential indicating enhanced stability. A high encapsulation efficiency of 91.93% was achieved, and in vitro assays revealed the loaded nanocarriers' optimized release kinetics and improved antimicrobial potency against Pseudomonas aeruginosa, compared to the free extract. The combination of ultrasonic synthesis and Scutellaria barbata in an eco-friendly manufacturing process not only advances green nanotechnology but also contributes to sustainable practices in pharmaceutical manufacturing. The data suggest that this innovative nanocarrier system could provide a robust platform for the development of nanotechnology-based therapeutics, enhancing drug delivery efficacy while aligning with environmental sustainability.
超声制造已成为一种有前途的环保方法,可用于合成用于靶向药物输送的基于脂质的纳米载体。本研究提出了一种新颖的超声制备方法,用于制备负载黄芩提取物的脂质纳米载体,该纳米载体可重新用于抗癌和抗菌用途。高频超声波能够精确地自组装 DSPE-PEG、Span 40 和胆固醇,形成纳米载体,将治疗提取物封装在其中,而无需使用有毒溶剂,这体现了绿色纳米技术。利用黄芩的固有抗癌和抗菌特性,该研究表明脂质包封增强了提取物的生物利用度和控制释放,这对其治疗效果至关重要。动态光散射和透射电子显微镜分析证实了载药后尺寸的增加和成功包封,以及增强的负 ζ 电位表明稳定性增强。实现了 91.93%的高包封效率,体外实验表明,与游离提取物相比,负载纳米载体具有优化的释放动力学和增强的抗铜绿假单胞菌抗菌效力。超声合成与黄芩的结合在环保制造工艺中不仅推进了绿色纳米技术,还有助于制药制造业的可持续实践。数据表明,这种创新的纳米载体系统可为基于纳米技术的治疗方法的开发提供一个强大的平台,在提高药物输送效果的同时符合环境可持续性。