Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zürich, Vladimir-Prelog-Weg 1, 8093 Zürich, Switzerland.
Lab Chip. 2017 Oct 25;17(21):3654-3663. doi: 10.1039/c7lc00946a.
Despite the growing importance of droplet-based microfluidics in high-throughput experimentation, few current methods allow the sensitive measurement of absorbance within rapidly moving droplets. To address this significant limitation, we herein present the application of differential detection photothermal interferometry (DDPI) for single-point absorbance quantification in pL- and fL-volume droplets. To assess the efficacy of our approach, we initially measure absorbance in 100 pL droplets at frequencies in excess of 1 kHz and determine a detection limit of 1.4 μmol L for Erythrosin B (A = 3.8 × 10). Subsequently, we apply the method to the analysis of fL-volume droplets and droplets generated at frequencies in excess of 10 kHz. Finally, we demonstrate the utility of DDPI as a detection scheme for colorimetric assays. Specifically, we extract the Michaelis-Menten constant for the reaction of β-galactosidase and chlorophenol-red-β-d-galactopyranoside and monitor the metabolomic activity of a population of HL-60 cells at the single cell level. Results establish single-point absorbance detection as a powerful, sensitive and rapid alternative to fluorescence for a wide range of assays within segmented flows.
尽管基于液滴的微流控技术在高通量实验中变得越来越重要,但目前很少有方法能够在快速移动的液滴中灵敏地测量吸光度。为了解决这一重大限制,我们在此提出了差分检测光热干涉法(DDPI)在 pL 和 fL 体积液滴中单点吸光度定量的应用。为了评估我们方法的效果,我们首先在 100 pL 液滴中以超过 1 kHz 的频率测量吸光度,并确定 Erythrosin B 的检测限为 1.4 μmol L(A = 3.8 × 10)。随后,我们将该方法应用于 fL 体积液滴和超过 10 kHz 频率生成的液滴的分析。最后,我们展示了 DDPI 作为比色分析检测方案的实用性。具体来说,我们提取了β-半乳糖苷酶和氯酚红-β-d-半乳糖吡喃糖苷反应的米氏常数,并在单细胞水平上监测 HL-60 细胞群体的代谢组学活性。结果表明,单点吸光度检测是一种强大、灵敏和快速的替代荧光的方法,适用于分段流中的各种分析。