bioRxiv · 10.1101/2020.12.25.424394
Pairs of compensatory frameshifting mutations contribute to evolution of protein-coding sequences in vertebrates and insects
Abstract
Insertions and deletions of lengths not divisible by 3 in protein-coding sequences cause frameshifts that usually induce premature stop codons and may carry a high fitness cost. However, this cost can be partially offset by a second compensatory indel restoring the reading frame. The role of such pairs of compensatory frameshifting mutations (pCFMs) in evolution has not been studied systematically. Here, we use whole-genome alignments of protein coding genes of 100 vertebrate species, and of 122 insect species, studying the prevalence of pCFMs in their divergence. We detect a total of 619 candidate pCFM-genes; 11 of them pass stringent quality filtering, including three human genes: RAB36, ARHGAP6 and NCR3LG1. In some instances, amino acid substitutions closely predating or following pCFMs restored the biochemical similarity of the frameshifted segment to the ancestral amino acid sequence, possibly reducing or negating the fitness cost of the pCFM. Typically, however, the resulting sequence bore no biochemical similarity to the ancestral one, indicating that pCFMs can uncover radically novel regions of protein space. In total, pCFMs represent an appreciable and previously overlooked source of novel variation in amino acid sequences.
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Biba, D., Klink, G. V., Bazykin, G. A.. 2020-12-26. Pairs of compensatory frameshifting mutations contribute to evolution of protein-coding sequences in vertebrates and insects. https://doi.org/10.1101/2020.12.25.424394
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