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1.
BMC Biol ; 19(1): 214, 2021 09 24.
Article in English | MEDLINE | ID: mdl-34560855

ABSTRACT

BACKGROUND: Yeast one-hybrid (Y1H) is a common technique for identifying DNA-protein interactions, and robotic platforms have been developed for high-throughput analyses to unravel the gene regulatory networks in many organisms. Use of these high-throughput techniques has led to the generation of increasingly large datasets, and several software packages have been developed to analyze such data. We previously established the currently most efficient Y1H system, meiosis-directed Y1H; however, the available software tools were not designed for processing the additional parameters suggested by meiosis-directed Y1H to avoid false positives and required programming skills for operation. RESULTS: We developed a new tool named GateMultiplex with high computing performance using C++. GateMultiplex incorporated a graphical user interface (GUI), which allows the operation without any programming skills. Flexible parameter options were designed for multiple experimental purposes to enable the application of GateMultiplex even beyond Y1H platforms. We further demonstrated the data analysis from other three fields using GateMultiplex, the identification of lead compounds in preclinical cancer drug discovery, the crop line selection in precision agriculture, and the ocean pollution detection from deep-sea fishery. CONCLUSIONS: The user-friendly GUI, fast C++ computing speed, flexible parameter setting, and applicability of GateMultiplex facilitate the feasibility of large-scale data analysis in life science fields.


Subject(s)
Saccharomyces cerevisiae , Data Analysis , Gene Regulatory Networks , Robotics , Saccharomyces cerevisiae/genetics , Software
2.
Genome Res ; 29(8): 1343-1351, 2019 08.
Article in English | MEDLINE | ID: mdl-31186303

ABSTRACT

Eukaryotic gene expression is often tightly regulated by interactions between transcription factors (TFs) and their DNA cis targets. Yeast one-hybrid (Y1H) is one of the most extensively used methods to discover these interactions. We developed a high-throughput meiosis-directed yeast one-hybrid system using the Magic Markers of the synthetic genetic array analysis. The system has a transcription factor-DNA interaction discovery rate twice as high as the conventional diploid-mating approach and a processing time nearly one-tenth of the haploid-transformation method. The system also offers the highest accuracy in identifying TF-DNA interactions that can be authenticated in vivo by chromatin immunoprecipitation. With these unique features, this meiosis-directed Y1H system is particularly suited for constructing novel and comprehensive genome-scale gene regulatory networks for various organisms.


Subject(s)
DNA/genetics , Microarray Analysis/methods , Saccharomyces cerevisiae/genetics , Transcription Factors/genetics , Two-Hybrid System Techniques , Animals , DNA/metabolism , Gene Expression Regulation , Gene Regulatory Networks , Genetic Markers , Humans , Meiosis , Microarray Analysis/instrumentation , Plasmids/chemistry , Plasmids/metabolism , Ploidies , Populus/cytology , Protein Binding , Protoplasts/cytology , Protoplasts/metabolism , Saccharomyces cerevisiae/metabolism , Time Factors , Transcription Factors/metabolism
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