College of Biological Engineering, Henan University of Technology, Zhengzhou 450001, China.
Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya 464-8601, Japan.
Biomolecules. 2023 Mar 8;13(3):496. doi: 10.3390/biom13030496.
Astaxanthin is a carotenoid with excellent antioxidant activity. However, this small lipid-soluble molecule is insoluble in water and has low stability. Although this situation can be improved when astaxanthin is prepared as a nanosuspension, the aqueous form is still not as convenient and safe as the dry powder form for storage, transport, and use. The lyophilization process provides better protection for thermosensitive materials, but this leads to collapse and agglomeration between nanoparticles. To improve this situation, appropriate lyophilization protectants are needed to offer support between the nanoparticles, such as sugars, amino acids, and hydroxy alcohols. The purpose of this work is to screen lyophilization protectants by single-factor experiments and response surface optimization experiments and then explore the optimal ratio of compound lyophilization protectants, and finally, make excellent astaxanthin/BSA/chitosan nanosuspension (ABC-NPs) lyophilized powder. The work shows that the optimal ratio of the compounding lyophilization protectant is 0.46% oligomeric mannose, 0.44% maltose, and 0.05% sorbitol (/). The ABC-NPs lyophilized powder prepared under the above conditions had a re-soluble particle size of 472 nm, with a ratio of 1.32 to the particle size of the sample before lyophilization. The lyophilized powder was all in the form of a pink layer. The sample was fluffy and dissolved entirely within 10 s by shaking with water. Consequently, it is expected to solve the problem of inconvenient storage and transportation of aqueous drugs and to expand the application of nanomedicine powders and tablets.
虾青素是一种具有优异抗氧化活性的类胡萝卜素。然而,这种小的脂溶性分子不溶于水,且稳定性低。虽然当虾青素被制备成纳米混悬剂时可以改善这种情况,但水相形式在储存、运输和使用方面仍然不如干粉形式方便和安全。冻干过程为热敏材料提供了更好的保护,但这会导致纳米颗粒之间的塌陷和团聚。为了改善这种情况,需要合适的冻干保护剂在纳米颗粒之间提供支持,如糖、氨基酸和羟醇。本工作旨在通过单因素实验和响应面优化实验筛选冻干保护剂,然后探索复合冻干保护剂的最佳比例,最后制备出色的虾青素/BSA/壳聚糖纳米混悬剂(ABC-NPs)冻干粉末。实验表明,复合冻干保护剂的最佳比例为 0.46%寡聚甘露糖、0.44%麦芽糖和 0.05%山梨糖醇(/)。在上述条件下制备的 ABC-NPs 冻干粉末再溶性粒径为 472nm,与冻干前样品粒径的比例为 1.32。冻干粉末全部呈粉红色层状。样品在水中摇动 10s 内即变得蓬松并完全溶解。因此,有望解决水药物储存和运输不便的问题,并拓展纳米医学粉末和片剂的应用。