HKUST-Shenzhen Research Institute, No. 9 Yuexing 1st Rd, South Area, Hi-tech Park, Nanshan, Shenzhen 518057, China.
School of Environmental Studies, China University of Geosciences, Wuhan 430074, China.
ACS Nano. 2022 Sep 27;16(9):14973-14981. doi: 10.1021/acsnano.2c05976. Epub 2022 Sep 13.
Microalgae-based biofuels are receiving attention at the environmental, economic, and social levels because they are clean, renewable, and quickly produced. The green algae has been extensively studied in research laboratories and the biofuel industry as a model organism to increase lipid production to be cost-effective in commercial production. In this work, we utilized a lipid-droplet-specific luminogen with aggregation-induced emission (AIE) characteristics to increase the lipid production of by fluorescent imaging and sorting of those algal cells with large and rich lipid droplets for subculturing. The AIE-active TPA-A enabled real-time monitoring of the size and number of lipid droplets in during their growth period so that we can identify the best time for harvesting. Furthermore, the algae cells with high lipid content were identified and collected for subculturing by the technique of fluorescence-activated cell sorting (FACS). The lipid production in the generation of two successive selections was almost doubled compared to the generation with natural selection. This work demonstrated that the technologies of AIE and FACS could be applied together to improve the production of a third-generation biofuel.
基于微藻的生物燃料因其清洁、可再生和快速生产而在环境、经济和社会层面受到关注。绿藻已被广泛研究,作为一种模型生物,旨在提高脂质产量,使其在商业生产中具有成本效益。在这项工作中,我们利用具有聚集诱导发射(AIE)特性的脂滴特异性发光体,通过荧光成像和对具有大而丰富脂滴的藻类细胞进行分选,来增加 的脂质产量,以便进行亚培养。AIE 活性 TPA-A 可实时监测 生长过程中脂滴的大小和数量,从而确定最佳收获时间。此外,通过荧光激活细胞分选(FACS)技术,可以鉴定出具有高脂质含量的藻类细胞并进行亚培养。与自然选择相比,在连续两代的选择中,脂质产量几乎翻了一番。这项工作表明,AIE 和 FACS 技术可以一起应用,以提高第三代生物燃料的产量。