Bertelsen Christian Vinther, Skands Gustav Erik, González Díaz Marcos, Dimaki Maria, Svendsen Winnie Edith
DTU Bioengineering, Technical University of Denmark, Søltofts Plads 221, 2800 Kgs Lyngby, Denmark.
SBT Instruments A/S, Symfonivej 37, 2730 Herlev, Denmark.
ACS Omega. 2023 Feb 16;8(8):7714-7721. doi: 10.1021/acsomega.2c07357. eCollection 2023 Feb 28.
In the future, rapid electrical characterization of cells with impedance flow cytometry promises to be a fast and accurate method for the evaluation of cell properties. In this paper, we investigate how the conductivity of the suspending medium along with the heat exposure time affects the viability classification of heat-treated . Using a theoretical model, we show that perforation of the bacteria membrane during heat exposure changes the impedance of the bacterial cell from effectively less conducting than the suspension medium to effectively more conducting. Consequently, this results in a shift in the differential argument of the complex electrical current that can be measured with impedance flow cytometry. We observe this shift experimentally through measurements on samples with varying medium conductivity and heat exposure times. We show that increased exposure time and lower medium conductivity results in improved classification between untreated and heat-treated bacteria. The best classification was achieved with a medium conductivity of 0.045 S/m after 30 min of heat exposure.
未来,利用阻抗流式细胞术对细胞进行快速电学表征有望成为一种评估细胞特性的快速且准确的方法。在本文中,我们研究了悬浮介质的电导率以及热暴露时间如何影响热处理后细胞的活力分类。通过一个理论模型,我们表明热暴露过程中细菌细胞膜的穿孔会使细菌细胞的阻抗从实际上比悬浮介质导电性差转变为实际上导电性更强。因此,这会导致可用阻抗流式细胞术测量的复电流微分相位发生偏移。我们通过对具有不同介质电导率和热暴露时间的样本进行测量,从实验上观察到了这种偏移。我们表明,增加暴露时间和降低介质电导率会改善未处理细菌和热处理细菌之间的分类。在热暴露30分钟后,使用电导率为0.045 S/m的介质可实现最佳分类。