Comparative Analysis of Syntenic Genes in Grass Genomes Reveals Accelerated Rates of Gene Structure and Coding Sequence Evolution in Polyploid Wheat

Author:

Akhunov Eduard D.1,Sehgal Sunish1,Liang Hanquan1,Wang Shichen1,Akhunova Alina R.1,Kaur Gaganpreet1,Li Wanlong1,Forrest Kerrie L.1,See Deven1,Šimková Hana1,Ma Yaqin1,Hayden Matthew J.1,Luo Mingcheng1,Faris Justin D.1,Doležel Jaroslav1,Gill Bikram S.1

Affiliation:

1. Department of Plant Pathology (E.D.A., S.S., H.L., S.W., A.R.A., G.K., B.S.G.) and Integrated Genomics Facility, (H.L., A.R.A.), Kansas State University, Manhattan, Kansas 66506; Plant Science, Biology, and Microbiology, South Dakota State University, Brookings, South Dakota 57007 (W.L.); Department of Primary Industries Victoria, Victorian AgriBiosciences Center, Bundoora, Victoria 3083, Austral

Abstract

AbstractCycles of whole-genome duplication (WGD) and diploidization are hallmarks of eukaryotic genome evolution and speciation. Polyploid wheat (Triticum aestivum) has had a massive increase in genome size largely due to recent WGDs. How these processes may impact the dynamics of gene evolution was studied by comparing the patterns of gene structure changes, alternative splicing (AS), and codon substitution rates among wheat and model grass genomes. In orthologous gene sets, significantly more acquired and lost exonic sequences were detected in wheat than in model grasses. In wheat, 35% of these gene structure rearrangements resulted in frame-shift mutations and premature termination codons. An increased codon mutation rate in the wheat lineage compared with Brachypodium distachyon was found for 17% of orthologs. The discovery of premature termination codons in 38% of expressed genes was consistent with ongoing pseudogenization of the wheat genome. The rates of AS within the individual wheat subgenomes (21%–25%) were similar to diploid plants. However, we uncovered a high level of AS pattern divergence between the duplicated homeologous copies of genes. Our results are consistent with the accelerated accumulation of AS isoforms, nonsynonymous mutations, and gene structure rearrangements in the wheat lineage, likely due to genetic redundancy created by WGDs. Whereas these processes mostly contribute to the degeneration of a duplicated genome and its diploidization, they have the potential to facilitate the origin of new functional variations, which, upon selection in the evolutionary lineage, may play an important role in the origin of novel traits.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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