Ozdalgic Berin, Ustun Merve, Dabbagh Sajjad Rahmani, Haznedaroglu Berat Z, Kiraz Alper, Tasoglu Savas
Graduate School of Sciences and Engineering, Koc University, Sariyer, Istanbul, Turkey.
Department of Medical Services and Techniques, Advanced Vocational School, Dogus University, Istanbul, Turkey.
Biotechnol Bioeng. 2021 Apr;118(4):1545-1563. doi: 10.1002/bit.27669. Epub 2021 Feb 4.
Microalgae have expanded their roles as renewable and sustainable feedstocks for biofuel, smart nutrition, biopharmaceutical, cosmeceutical, biosensing, and space technologies. They accumulate valuable biochemical compounds from protein, carbohydrate, and lipid groups, including pigments and carotenoids. Microalgal biomass, which can be adopted for multivalorization under biorefinery settings, allows not only the production of various biofuels but also other value-added biotechnological products. However, state-of-the-art technologies are required to optimize yield, quality, and the economical aspects of both upstream and downstream processes. As such, the need to use microfluidic-based devices for both fundamental research and industrial applications of microalgae, arises due to their microscale sizes and dilute cultures. Microfluidics-based devices are superior to their competitors through their ability to perform multiple functions such as sorting and analyzing small amounts of samples (nanoliter to picoliter) with higher sensitivities. Here, we review emerging applications of microfluidic technologies on microalgal processes in cell sorting, cultivation, harvesting, and applications in biofuels, biosensing, drug delivery, and nutrition.
微藻已拓展其作为生物燃料、智能营养、生物制药、药妆、生物传感及太空技术的可再生和可持续原料的作用。它们积累了来自蛋白质、碳水化合物和脂质组的有价值的生化化合物,包括色素和类胡萝卜素。微藻生物质可在生物精炼环境下进行多价值利用,不仅能生产各种生物燃料,还能生产其他增值生物技术产品。然而,需要先进技术来优化上游和下游过程的产量、质量及经济方面。因此,由于微藻的微观尺寸和稀培养,在微藻的基础研究和工业应用中使用基于微流控的设备的需求应运而生。基于微流控的设备优于其竞争对手,因为它们能够执行多种功能,例如以更高的灵敏度对少量样品(纳升至皮升)进行分选和分析。在此,我们综述微流控技术在微藻细胞分选、培养、收获以及在生物燃料、生物传感、药物递送和营养方面的新兴应用。