碳基介质电泳快速筛选油绿藻脂质含量

R. Parra-Saldívar, V. H. Perez‐Gonzalez, C. M. Galicia‐Medina, Matías Vázquez-Piñón, S. Camacho-Léon, G. S. Alemán-Nava, R. C. Gallo-Villanueva, S. Martínez-Chapa, M. Madou, J. Garcia-Perez, D. Esquivel-Hernández
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引用次数: 0

摘要

:利用微藻作为生物燃料生产的生物质来源已经引起了许多科学家的注意,因为与传统陆地作物相比,微藻具有一些相关的环境优势,包括利用废水生长的微藻和更高的二氧化碳固定率,有助于降低大气浓度。因此,可靠的微藻细胞质脂质筛选过程是大规模生产过程中收获优化的宝贵资产。在本研究中,在微流控装置中,使用微电极对油丰新绿藻的异质性细胞质脂质含量进行了电介质滋养分类。在宽频率窗(100 kHz至30 MHz) 7 VPP的固定振幅下进行的实验显示,高脂含量细胞和低脂含量细胞在低频范围(100 - 800 kHz)的介电泳行为存在显著差异。对于高脂含量和低脂含量的样品,也确定了中高频率范围(1-30 MHz)的弱响应,从而可以建立所研究菌株的电动足迹。这些结果表明,通过一种快速而直接的机制,例如采用玻璃碳的低成本且易于加工的介质电泳,开发一种可靠的筛选过程来优化收获是可能的。本研究的实验设置包括体外培养富氮(N+)和贫氮(N-)细胞悬浮液,分别促进细胞中低脂和高脂的产生。用分光光度法监测细胞群,用尼罗红荧光定量细胞间脂质发育。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid lipid content screening in Neochloris Oleoabundans by carbon-based dielectrophoresis
: The use of microalgae as a biomass source for biofuel production has drawn the attention of many scientists due to several associated environmental advantages over conventional terrestrial crops, including microalgae growing using wastewaters and a higher CO 2 fixation rate, contributing to the reduction of atmospheric concentration. Consequently, a reliable cytoplasmic lipid screening process in microalgae is a valuable asset for harvesting optimization in mass production processes. In this study, the heterogeneous cytoplasmic lipid content of Neochloris oleoabundans was dielec-trophoretically assorted in a microfluidic device using castellated carbon microelectrodes. The ex-periments carried out over a wide frequency window (100 kHz to 30 MHz) at a fixed amplitude of 7 VPP showed a significant contrast between the dielectrophoretic behavior of high lipid content and low lipid content cells at the low frequency range (100–800 kHz). A weak response for the mid and high frequency ranges (1–30 MHz) was also identified for high and low lipid content samples, allowing one to establish an electrokinetic footprint of the studied strain. These results suggest that the development of a reliable screening process for harvesting optimization is possible through a fast and straightforward mechanism, such as dielectrophoresis, which is a low-cost and easy-to-machine material that employs glassy carbon. The experimental setup in this study involved in vitro culturing of nitrogen-replete (N+) and nitrogen-deplete (N-) cell suspensions to promote low and high lipid production in cells, respectively. Cell populations were monitored using spectrophotom-etry, and the resulting lipid development among cells was quantified by Nile red fluorescence.
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