Chromosome-level subgenome-aware de novo assembly ofSaccharomyces bayanusprovides insight into genome divergence after hybridization

生物 遗传学 基因组 同步 酵母菌 渗入 基因组进化 基因 酿酒酵母
作者
Cory Gardner,Junhao Chen,Christina Hadfield,Zhaolian Lu,David DeBruin,Zhan Yu,Maureen J. Donlin,Tae-Hyuk Ahn,Zhenguo Lin
出处
期刊:Genome Research [Cold Spring Harbor Laboratory]
卷期号:: gr.279364.124-gr.279364.124
标识
DOI:10.1101/gr.279364.124
摘要

Interspecies hybridization is prevalent in various eukaryotic lineages and plays important roles in phenotypic diversification, adaptation, and speciation. To better understand the changes that occurred in the different subgenomes of a hybrid species and how they facilitate adaptation, we completed chromosome-level de novo assemblies of all chromosomes for a recently formed hybrid yeast, Saccharomyces bayanus strain CBS380, using Nanopore MinION long-read sequencing. We characterized the S. bayanus genome and compared it with its parent species, S. uvarum and S. eubayanus , and other S. bayanus genomes to better understand genome evolution after a relatively recent hybridization event. We observed multiple recombination events between the subgenomes in each chromosome, followed by loss of heterozygosity (LOH) in nine chromosome pairs. In addition to maintaining nearly all gene content and synteny from its parental genomes, S. bayanus has acquired many genes from other yeast species, primarily through the introgression of S. cerevisiae , such as those involved in the maltose metabolism. Finally, the patterns of recombination and LOH suggest an allotetraploid origin of S. bayanus . The gene acquisition and rapid LOH in the hybrid genome probably facilitated its adaptation to maltose brewing environments and mitigated the maladaptive effect of hybridization. This manuscript describes the first in-depth study using long-read sequencing technology of an S. bayanus hybrid genome which may serve as an excellent reference for future studies of this important yeast and other yeast strains.

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