Schick Dinah, Schwack Wolfgang
Institute of Food Chemistry, University of Hohenheim, Garbenstraße 28, D-70599 Stuttgart, Germany.
Institute of Food Chemistry, University of Hohenheim, Garbenstraße 28, D-70599 Stuttgart, Germany.
J Chromatogr A. 2017 Aug 4;1509:147-152. doi: 10.1016/j.chroma.2017.06.035. Epub 2017 Jun 13.
Receptor assays like the yeast estrogen screen (YES) performed in microtiter plates normally provide dose-response curves with a sigmoidal shape in semi-log plots. Such sigmoidal plots can be linearized by the logit function resulting in logit-log plots, as mainly known for the evaluation of enzyme-linked immunosorbent assays and radioimmunoassays. Since the planar yeast estrogen screen (pYES) represents the transfer of the receptor assay YES to high-performance thin-layer chromatography (HPTLC), it was assumed to obtain sigmoidal shaped dose-response curves from the measured signals, which subsequently could be used to generate logit-log plots. However, it was observed that typical sigmoidal curves were not obtained, when peak areas were plotted against the applied amount on a logarithmic scale (log amount). Therefore, peak heights were examined in the present study, which revealed proper dose-response curves when plotted against the log amount. The presence of sigmoidal dose-response curves from HPTLC-pYES made it possible to transform the signals into logits and, therefore, to create logit-log plots with linear correlations. The logit-log plots for the estrogen active compounds (EAC) 17β-estradiol (E2) and 17α-ethinylestradiol (EE2) provided a working range up to 500pg/zone. Applying logit-log plots, mean recovery rates for E2 and EE2 from spiked water samples (2-20ng/L) were determined to 90% and 108%, respectively, with ≤24% RSD. Moreover, the linear graphs allowed an easy determination of the half maximal effect dose (ED) of EAC, since the intersection of the graph with the abscissa represents the ED. Additionally, with the knowledge of the ED values, the estrogenic potential of EAC in terms of estradiol equivalent factors (EEF) could be determined, resulting in 0.64 for EE2.
像在微量滴定板中进行的酵母雌激素筛选(YES)这样的受体分析,通常在半对数图中提供呈S形的剂量反应曲线。这种S形图可以通过logit函数线性化,从而得到logit-log图,这在酶联免疫吸附测定和放射免疫测定的评估中是广为人知的。由于平面酵母雌激素筛选(pYES)代表了受体分析YES向高效薄层色谱(HPTLC)的转移,因此人们认为可以从测量信号中获得呈S形的剂量反应曲线,随后可用于生成logit-log图。然而,当以对数尺度(log量)将峰面积与施加量作图时,观察到并未获得典型的S形曲线。因此,在本研究中对峰高进行了检查,结果表明当与log量作图时,能得到合适的剂量反应曲线。HPTLC-pYES呈S形的剂量反应曲线的存在,使得可以将信号转换为logit,进而创建具有线性相关性的logit-log图。雌激素活性化合物(EAC)17β-雌二醇(E2)和17α-乙炔雌二醇(EE2)的logit-log图提供了高达500pg/zone的工作范围。应用logit-log图,测定了加标水样(2 - 20ng/L)中E2和EE2的平均回收率分别为90%和108%,相对标准偏差≤24%。此外,线性图使得能够轻松确定EAC的半数最大效应剂量(ED),因为该图与横坐标的交点代表ED。另外,根据ED值,可以确定EAC以雌二醇当量因子(EEF)表示的雌激素潜力,EE2的结果为0.64。