Massachusetts Institute of Technology, USA.
Brigham and Women's Hospital, Harvard Medical School, USA.
Lab Chip. 2016 Nov 1;16(22):4333-4340. doi: 10.1039/c6lc00940a.
Sepsis is a potentially lethal condition that may be ameliorated through early monitoring of circulating activated leukocytes for faster stratification of severity of illness and improved administration of targeted treatment. Characterization of the intrinsic electrical properties of leukocytes is label-free and can provide a quick way to quantify the number of activated cells as sepsis progresses. Iso-dielectric separation (IDS) uses dielectrophoresis (DEP) to characterize the electrical signatures of cells. Here, we use IDS to show that activated and non-activated leukocytes have different electrical properties. We then present a double-sided version of the IDS platform to increase throughput to characterize thousands of cells. This new platform is less prone to cell fouling and allows faster characterization. Using peripheral blood samples from a cecal ligation and puncture (CLP) model of polymicrobial sepsis in mice, we estimate the number of activated leukocytes by looking into differences in the electrical properties of cells. We show for the first time using animal models that electrical cell profiling correlates with flow cytometry (FC) results and that IDS is therefore a good candidate for providing rapid monitoring of sepsis by quantifying the number of circulating activated leukocytes.
败血症是一种潜在的致命病症,可以通过早期监测循环激活的白细胞来改善,以更快地对疾病严重程度进行分层,并改善靶向治疗的实施。白细胞固有电特性的表征是无标记的,并且可以提供一种快速定量方法来量化随着败血症进展而激活的细胞数量。等电分离(IDS)使用介电泳(DEP)来表征细胞的电信号。在这里,我们使用 IDS 表明激活和非激活的白细胞具有不同的电特性。然后,我们提出了 IDS 平台的双面版本,以提高高通量特性来表征数千个细胞。该新平台不易发生细胞堵塞,并且允许更快的表征。使用来自小鼠的盲肠结扎和穿刺(CLP)多微生物败血症模型的外周血样本,我们通过研究细胞电特性的差异来估计激活的白细胞数量。我们首次使用动物模型表明,电细胞分析与流式细胞术(FC)结果相关,因此 IDS 是通过量化循环激活的白细胞数量来提供败血症快速监测的良好候选方法。