Yu Min-Chieh, Sun Yung-Shin
Department of Physics, Fu-Jen Catholic University, New Taipei City 24205, Taiwan.
Micromachines (Basel). 2024 Aug 15;15(8):1034. doi: 10.3390/mi15081034.
Yeast plays a significant role in a variety of fields. In particular, it is extensively used as a model organism in genetics and cellular biology studies, and is employed in the production of vaccines, pharmaceuticals, and biofuels. Traditional "bulk"-based studies on yeast growth often overlook cellular variability, emphasizing the need for single-cell analysis. Micro-droplets, tiny liquid droplets with high surface-area-to-volume ratios, offer a promising platform for investigating single or a small number of cells, allowing precise control and monitoring of individual cell behaviors. Microfluidic devices, which facilitate the generation of micro-droplets, are advantageous due to their reduced volume requirements and ability to mimic in vivo micro-environments. This study introduces a custom-designed microfluidic device to encapsulate yeasts in micro-droplets under various conditions in a parallel manner. The results reveal that optimal glucose concentrations promoted yeast growth while cycloheximide and Cu ions inhibited it. This platform enhances yeast cultivation strategies and holds potential for high-throughput single-cell investigations in more complex organisms.
酵母在多个领域发挥着重要作用。特别是,它被广泛用作遗传学和细胞生物学研究中的模式生物,并用于疫苗、药品和生物燃料的生产。传统的基于“大量”酵母生长的研究往往忽略了细胞变异性,这凸显了单细胞分析的必要性。微滴是具有高表面积与体积比的微小液滴,为研究单个或少量细胞提供了一个有前景的平台,能够精确控制和监测单个细胞的行为。有助于产生微滴的微流控装置因其体积需求减少以及能够模拟体内微环境而具有优势。本研究介绍了一种定制设计的微流控装置,用于在各种条件下以并行方式将酵母封装在微滴中。结果表明,最佳葡萄糖浓度促进酵母生长,而环己酰亚胺和铜离子则抑制酵母生长。该平台改进了酵母培养策略,并在更复杂生物体的高通量单细胞研究中具有潜力。