Lam Ulysses Tsz-Fung, Nguyen Thi Thuy Trang, Raechell Raechell, Yang Jay, Singer Harry, Chen Ee Sin
Department of Biochemistry, National University of Singapore, Singapore 117596, Singapore.
Singer Instruments, Roadwater, Watchet TA23 0RE, UK.
Biomedicines. 2023 Oct 18;11(10):2829. doi: 10.3390/biomedicines11102829.
Edge effect denotes better growth of microbial organisms situated at the edge of the solid agar media. Although the precise reason underlying edge effect is unresolved, it is generally attributed to greater nutrient availability with less competing neighbors at the edge. Nonetheless, edge effect constitutes an unavoidable confounding factor that results in misinterpretation of cell fitness, especially in high-throughput screening experiments widely employed for genome-wide investigation using microbial gene knockout or mutant libraries. Here, we visualize edge effect in high-throughput high-density pinning arrays and report a normalization approach based on colony growth rate to quantify drug (hydroxyurea)-hypersensitivity in fission yeast strains. This normalization procedure improved the accuracy of fitness measurement by compensating cell growth rate discrepancy at different locations on the plate and reducing false-positive and -negative frequencies. Our work thus provides a simple and coding-free solution for a struggling problem in robotics-based high-throughput screening experiments.
边缘效应是指位于固体琼脂培养基边缘的微生物生长得更好。尽管边缘效应背后的确切原因尚未明确,但一般认为是由于边缘处营养物质供应更充足,竞争的邻近微生物较少。然而,边缘效应是一个不可避免的混杂因素,会导致对细胞适应性的错误解读,尤其是在广泛用于全基因组研究的高通量筛选实验中,这些实验使用微生物基因敲除或突变文库。在这里,我们在高通量高密度点样阵列中可视化边缘效应,并报告一种基于菌落生长速率的归一化方法,以量化裂殖酵母菌株对药物(羟基脲)的超敏感性。这种归一化程序通过补偿平板上不同位置的细胞生长速率差异并降低假阳性和假阴性频率,提高了适应性测量的准确性。因此,我们的工作为基于机器人的高通量筛选实验中一个棘手的问题提供了一种简单且无需编码的解决方案。