Sodium azide mutagenesis induces a unique pattern of mutations.

Justin C Fay, Gary J Muehlbauer, Li Lei, Kevin P Smith, Chaochih Liu, Giulia Frascarelli, Adrian O Stec, Shane Heinen, Skylar R Wyant, Erik Legg, Monika Spiller, Peter L Morrell

Journal: PLoS genetics 2025;21(6):e1011634

PMID: 40460371

Abstract

The nature and effect of mutations are of fundamental importance to the evolutionary process. The generation of mutations with mutagens has also played important roles in genetics. Applications of mutagens include dissecting the genetic basis of trait variation, inducing desirable traits in crops, and understanding the nature of genetic load. Previous studies of sodium azide-induced mutations have reported single nucleotide variants (SNVs) found in individual genes. To characterize the nature of mutations induced by sodium azide, we analyze whole-genome sequencing (WGS) of 11 barley lines derived from sodium azide mutagenesis, where all lines were selected for diminution of plant fitness owing to induced mutations. We contrast observed mutagen-induced variants with those found in standing variation in WGS of 13 barley landraces. Here, we report indels that are two orders of magnitude more abundant than expected based on nominal mutation rates. We found induced SNVs are very specific, with C → T changes occurring in a context followed by another C on the same strand (or the reverse complement). The codons most affected by the mutagen include the sodium azide-specific CC motif (or the reverse complement), resulting in a handful of amino acid changes and few stop codons. The specific nature of induced mutations suggests that mutagens could be chosen based on experimental goals. Sodium azide would not be ideal for gene knockouts but will create many missense mutations with more subtle effects on protein function.

Copyright: This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 public domain dedication.

Address: Department of Agronomy and Plant Genetics, University of Minnesota, St. Paul, Minnesota, United States of America.; United States of America Department of Energy Joint Genome Institute, Lawrence Berkeley National Laboratory, Berkeley, California, United States of America.; Department of Ecology & Evolutionary Biology, University of California, Irvine, California, United States of America.; Syngenta Crop Protection Inc., Greensboro, North Carolina, United States of America.; KWS LOCHOW GmbH, Northeim, Germany.; Department of Biology, University of Rochester, Rochester, New York, United States of America.
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