Centre for Synthetic Biology, Ghent University, Coupure links 653, 9000 Ghent, Belgium.
Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium.
ACS Synth Biol. 2023 Dec 15;12(12):3591-3607. doi: 10.1021/acssynbio.3c00386. Epub 2023 Nov 20.
In synthetic biology, Fluorescent reporters are frequently used to characterize the expression levels obtained from both genetic parts such as promoters and ribosome binding sites as well as from complex genetic circuits. To this end, plate readers offer an easy and high-throughput way of characterizing both the growth and fluorescence expression levels of cell cultures. However, despite the similar mode of action used in different devices, their output is not comparable due to intrinsic differences in their setup. Additionally, the generated output is expressed using arbitrary units, limiting reliable comparison of results to measurements taken within one single experiment using one specific plate reader, hampering the transferability of data across different plate readers and laboratories. This article presents an easy and accessible calibration method for transforming the device-specific output into a standardized output expressing the amount of fluorescence per well as a known equivalent fluorophore concentration per cell for fluorescent reporters spanning the visible light spectrum. This calibration method follows a 2-fold approach determining both the estimated number of cells and the equivalent chemical fluorophore concentration per well. It will contribute to the comparison of plate reader experiments between different laboratories across the world and will therefore greatly improve the reliability and exchange of both results and genetic parts between research groups.
在合成生物学中,荧光报告基因经常被用于描述基因元件(如启动子和核糖体结合位点)和复杂的遗传回路所获得的表达水平。为此,板读数器提供了一种简单且高通量的方法来描述细胞培养物的生长和荧光表达水平。然而,尽管不同设备使用的作用模式相似,但由于其设置的内在差异,它们的输出不可比。此外,生成的输出使用任意单位表示,限制了对使用特定板读数器在一个单独实验中获得的结果的可靠比较,从而阻碍了数据在不同板读数器和实验室之间的可转移性。本文提出了一种简单易用的校准方法,可将设备特定的输出转换为标准化的输出,以表达每个孔中荧光的量,以及跨越可见光范围的荧光报告基因的已知等效荧光团浓度。这种校准方法采用了两步法来确定每个孔中的估计细胞数量和等效化学荧光团浓度。它将有助于在全球不同实验室之间比较板读数器实验,从而大大提高结果和遗传元件在研究小组之间的可靠性和可交换性。