Department of Food Science and Human Nutrition, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.
J Food Sci. 2023 Aug;88(8):3524-3537. doi: 10.1111/1750-3841.16676. Epub 2023 Jun 22.
Size of nanoparticle (NP) is a crucial factor in determining its applicability to various fields. This study aimed to develop a nozzle chip for the scalable formation of self-assembled curcumin-loaded zein NPs with tunable properties. A four-factor (zein concentration in dispersed phase, ethanol concentration in continuous phase, flow rate ratio, and total flow rate), three-level Box-Behnken design on the measured responses (particle size and polydispersity index [PDI]) was established. The particle size and PDI, ranging from 194.43 to 420.51 nm, and 0.089 to 0.219, respectively, were readily controlled by adjusting four factors. Under the optimal conditions of 6% zein, 0% EtOH, the flow rate ratio of 7, and a total flow rate of 8 mL/min targeting higher production rate, the particle size of 306.02 ± 1.52 nm (mean ± standard deviation) and the PDI of 0.135 ± 0.001 were obtained. High throughput for zein NP production (86.4 g/day) was reached, which was 200 and 960 times higher than using microfluidic and electrospraying techniques, respectively. Curcumin-loaded zein NPs under the abovementioned experimental conditions were successfully prepared via the nozzle chip with the encapsulation efficiency of 64.29% ± 0.29%, a loading capacity of 3.06% ± 0.01%, enhanced stability, and improved in vitro antioxidant properties. Curcumin was primarily released from zein NPs in the simulated intestinal phase. This study demonstrated that the property of self-assembled zein NPs can be tuned by altering the operating parameters using the nozzle simulation chip. The results suggest that this approach has potential for use in the food and pharmaceutical industries, particularly for curcumin encapsulation. PRACTICAL APPLICATION: The fabricated nozzle chip is a promising technology to obtain zein nanoparticles (NPs) with enhanced productivity and narrow particle size distribution. It can be easily adopted to spray drying process. Besides, the nozzle chip shows the potential for the large-scale production of bioactive loaded zein NPs in the food or pharmaceutical industries.
纳米颗粒(NP)的大小是决定其在各个领域适用性的关键因素。本研究旨在开发一种喷嘴芯片,用于可扩展地形成具有可调性质的自组装姜黄素负载玉米醇溶蛋白 NPs。采用四因素(分散相玉米醇溶蛋白浓度、连续相乙醇浓度、流速比和总流速)、三水平 Box-Behnken 设计对测量响应(粒径和多分散指数 [PDI])进行了设计。通过调整四个因素,很容易控制粒径和 PDI 的范围分别为 194.43 至 420.51nm 和 0.089 至 0.219。在针对更高产率的 6%玉米醇溶蛋白、0%乙醇、7 的流速比和 8mL/min 的总流速的最佳条件下,获得了 306.02±1.52nm(平均值±标准偏差)的粒径和 0.135±0.001 的 PDI。达到了玉米醇溶蛋白 NP 生产的高通量(86.4g/天),分别是微流控和电喷雾技术的 200 倍和 960 倍。在上述实验条件下,通过喷嘴芯片成功制备了载有姜黄素的玉米醇溶蛋白 NPs,包封效率为 64.29%±0.29%,载药量为 3.06%±0.01%,稳定性增强,体外抗氧化性能提高。姜黄素主要在模拟肠道阶段从玉米醇溶蛋白 NPs 中释放出来。本研究表明,通过改变操作参数,可以使用喷嘴模拟芯片来调整自组装玉米醇溶蛋白 NPs 的性质。结果表明,该方法在食品和制药工业中具有潜在的应用价值,特别是用于姜黄素包封。