Faculty of Medicine, Health and Life Science, Swansea University, Singleton Park, Swansea SA2 8PP, UK.
Faculty of Science and Engineering, Swansea University, Singleton Park, Swansea SA2 8PP, UK.
Mar Drugs. 2022 Sep 30;20(10):627. doi: 10.3390/md20100627.
Microalgae have been identified as one of the most promising sources of novel bioactive compounds for biomedical applications, the food industry, and cosmetics. In the last decade, several biotechnological developments have facilitated the identification of a growing number of compounds as well as the study of optimal microalgae culture conditions for the production of biomass enriched in specific molecules of interest. In this study, two common commercial marine microalgae ( and ) were cultured in standard and nutrient-stressed conditions and the obtained biomass extracts were assessed for their potential to inhibit cancer cell proliferation and migration as well as their antioxidant activity. Results from viability in 2D and 3D cancer cell models showed an enhancement of the antitumour activity of in the 3D model compared to 2D, together with a greater capacity to reduce the migration capacity of cancer cells with the biomass from nutrient-stressed conditions, whereas the antioxidant activity of decreased when exposed to nutrient-stressed conditions. To date, this is one of the few studies that proves that controlled changes in large-scale culturing conditions such as nutrient depletion have a relevant impact in the bioactivity of the biomass on cancer cells.
微藻已被确定为用于生物医学应用、食品工业和化妆品的新型生物活性化合物的最有前途的来源之一。在过去的十年中,一些生物技术的发展促进了越来越多的化合物的鉴定,以及研究最佳的微藻培养条件,以生产富含特定感兴趣分子的生物量。在这项研究中,两种常见的商业海洋微藻(和)在标准和营养胁迫条件下进行培养,并评估了获得的生物质提取物在抑制癌细胞增殖和迁移以及抗氧化活性方面的潜力。二维和三维癌细胞模型中的生存能力结果表明,与二维模型相比,在三维模型中增强了的抗肿瘤活性,并且来自营养胁迫条件的生物质具有更大的降低癌细胞迁移能力的能力,而暴露于营养胁迫条件下时的抗氧化活性降低。迄今为止,这是少数几项证明大规模培养条件(如营养耗尽)的受控变化对癌细胞生物质生物活性具有相关影响的研究之一。