Pericentromeric Effects Shape the Patterns of Divergence, Retention, and Expression of Duplicated Genes in the Paleopolyploid Soybean

Author:

Du Jianchang12,Tian Zhixi1,Sui Yi1,Zhao Meixia13,Song Qijian4,Cannon Steven B.5,Cregan Perry4,Ma Jianxin1

Affiliation:

1. Department of Agronomy, Purdue University, West Lafayette, Indiana 47907

2. Institute of Industrial Crops, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China

3. Institute of Oil Crops, Chinese Academy of Agricultural Sciences, Wuhan 430062, China

4. U.S. Department of Agriculture, Agricultural Research Service, Soybean Genomics and Improvement Laboratory, Beltsville Agricultural Research Center-West, Beltsville, Maryland 20705

5. U.S. Department of Agriculture, Agricultural Research Service, Corn Insect and Crop Genetics Research Unit, Ames, Iowa 50011

Abstract

AbstractThe evolutionary forces that govern the divergence and retention of duplicated genes in polyploids are poorly understood. In this study, we first investigated the rates of nonsynonymous substitution (Ka) and the rates of synonymous substitution (Ks) for a nearly complete set of genes in the paleopolyploid soybean (Glycine max) by comparing the orthologs between soybean and its progenitor species Glycine soja and then compared the patterns of gene divergence and expression between pericentromeric regions and chromosomal arms in different gene categories. Our results reveal strong associations between duplication status and Ka and gene expression levels and overall low Ks and low levels of gene expression in pericentromeric regions. It is theorized that deleterious mutations can easily accumulate in recombination-suppressed regions, because of Hill-Robertson effects. Intriguingly, the genes in pericentromeric regions—the cold spots for meiotic recombination in soybean—showed significantly lower Ka and higher levels of expression than their homoeologs in chromosomal arms. This asymmetric evolution of two members of individual whole genome duplication (WGD)-derived gene pairs, echoing the biased accumulation of singletons in pericentromeric regions, suggests that distinct genomic features between the two distinct chromatin types are important determinants shaping the patterns of divergence and retention of WGD-derived genes.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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