A rapidly reversible mutation generates subclonal genetic diversity and unstable drug resistance.

Dan, Lufeng; Li, Yuze; Chen, Shuhua; Liu, Jingbo; Wang, Yu; Li, Fangting; He, Xiangwei; Carey, Lucas B · Proc Natl Acad Sci U S A · 2021

basic_science · Level V

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Abstract

Most genetic changes have negligible reversion rates. As most mutations that confer resistance to an adverse condition (e.g., drug treatment) also confer a growth defect in its absence, it is challenging for cells to genetically adapt to transient environmental changes. Here, we identify a set of rapidly reversible drug-resistance mutations in <i>Schizosaccharomyces pombe</i> that are caused by microhomology-mediated tandem duplication (MTD) and reversion back to the wild-type sequence. Using 10,000× coverage whole-genome sequencing, we identify nearly 6,000 subclonal MTDs in a single clonal population and determine, using machine learning, how MTD frequency is encoded in the genome. We find that sequences with the highest-predicted MTD rates tend to generate insertions that maintain the correct reading frame, suggesting that MTD formation has shaped the evolution of coding sequences. Our study reveals a common mechanism of reversible genetic variation that is beneficial for adaptation to environmental fluctuations and facilitates evolutionary divergence.

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