College of Navigation, Dalian Maritime University, Dalian, P. R. China.
College of Marine Engineering, Dalian Maritime University, Dalian, P. R. China.
Electrophoresis. 2023 Dec;44(23):1818-1825. doi: 10.1002/elps.202300057. Epub 2023 Jul 12.
At present, there is still limited report on the electrokinetic (EK) behavior of bioparticles at the interface of an aqueous two-phase system. In this paper, the EK motion and viability assessment of live algae mixed with the NaClO treated dead algae were carried out at the interface formed by polyethylene glycol (PEG)-rich phase and dextran (DEX)-rich phase in a straight microchannel. The experimental results show that both the live and dead algae at the PEG-DEX interface migrate from the negative electrode to the positive electrode, and the EK velocity of live algae at the interface is slightly larger than that of the dead ones with similar diameters. For either live or dead algae, the EK velocity at the interface decreases with the increase in diameter. A size-velocity curve was used to evaluate the viability of the algae. As most of the microorganisms in ballast water are algae, the method in this paper provides a promising way to detect and evaluate the live microorganism in treated ballast water of a ship.
目前,关于生物颗粒在双水相体系界面的电动(EK)行为的报道仍然有限。本文在直微通道中,研究了富聚乙二醇(PEG)相和富葡聚糖(DEX)相形成的界面处,混合有次氯酸钠(NaClO)处理过的死藻的活藻的EK 运动和生存能力评估。实验结果表明,PEG-DEX 界面处的活藻和死藻均从负极向正极迁移,且具有相似直径的活藻的 EK 速度略大于死藻。对于活藻或死藻,界面处的 EK 速度随直径的增加而减小。利用速度-尺寸曲线来评估藻类的生存能力。由于压载水中的大多数微生物都是藻类,因此本文的方法为检测和评估船舶处理过的压载水中的活体微生物提供了一种有前途的方法。