SOLQC: Synthetic oligo library quality control tool

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Abstract

Motivation: Recent years have seen a growing number and an expanding scope of studies using synthetic oligo libraries for a range of applications in synthetic biology. As experiments are growing by numbers and complexity, analysis tools can facilitate quality control and support better assessment and inference. Results: We present a novel analysis tool, called SOLQC, which enables fast and comprehensive analysis of synthetic oligo libraries, based on NGS analysis performed by the user. SOLQC provides statistical information such as the distribution of variant representation, different error rates and their dependence on sequence or library properties. SOLQC produces graphical reports from the analysis, in a flexible format. We demonstrate SOLQC by analyzing literature libraries. We also discuss the potential benefits and relevance of the different components of the analysis.

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Sabary, O., Orlev, Y., Shafir, R., Anavy, L., Yaakobi, E., & Yakhini, Z. (2021). SOLQC: Synthetic oligo library quality control tool. Bioinformatics, 37(5), 720–722. https://doi.org/10.1093/bioinformatics/btaa740

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