A Normalization Protocol Reduces Edge Effect in High-Throughput Analyses of Hydroxyurea Hypersensitivity in Fission Yeast

Author:

Lam Ulysses Tsz-Fung1,Nguyen Thi Thuy Trang1,Raechell Raechell1,Yang Jay2,Singer Harry2,Chen Ee Sin1345ORCID

Affiliation:

1. Department of Biochemistry, National University of Singapore, Singapore 117596, Singapore

2. Singer Instruments, Roadwater, Watchet TA23 0RE, UK

3. NUS Center for Cancer Research, National University of Singapore, Singapore 117599, Singapore

4. NUS Synthetic Biology for Clinical & Technological Innovation (SynCTI), Life Science Institute, National University of Singapore, Singapore 117456, Singapore

5. National University Health System (NUHS), Singapore 119228, Singapore

Abstract

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.

Funder

Singapore Ministry of Education

National University Health System

Publisher

MDPI AG

Subject

General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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