ArticleThe plant genome2025
Landscape of rare-allele variants in cultivated and wild soybean genomes.
Article in The plant genome, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Allele variation at the Rdm3 locus conferring resistance to soybean southern stem canker.TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik · 2026Article
- Identification of Genomic Regions for Partial Resistance to Soybean Rust Under Field Conditions Using FarmCPU and Machine Learning Approaches.Plants (Basel, Switzerland) · 2026Article
- Genome-wide association study of resistance to taro leaf blight and yield traits in taro (Colocasia esculenta (L.) Schott).Scientific reports · 2026Article
- Development of user-selectable diverse sets of cultivated and wild soybean germplasm for genetic and breeding applications.The plant genome · 2026Article
- Integrative multi-omics analysis reveals stress-specific molecular architectures in soybean under drought and rust infection.BMC genomics · 2026Article
- Genome-wide detection of superior haplotypes for seed oil and protein content in Northeast China soybean (Frontiers in plant science · 2026Article
- Landscape of rare-allele variants in cultivated and wild soybean genomes.The plant genome · 2025Article
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Authors and funding
10 authors.
Funding
Abstract
Rare-allele variants are important for crop improvement because they can be linked to important traits. However, genome-wide distribution and annotation of rare-allele variants have not been reported. We analyzed sequencing data from 1556 soybean accessions and found 6,533,419 rare-allele variants in Glycine max and 941,274 in Glycine soja populations. Although the total number of variants was 20% less in G. max than G. soja, the number of rare-allele variants in G. max was six times that in G. soja. Among the rare-allele variants in G. max, 19.16% were novel mutations that did not exist in G. soja. Domestication and artificial selection have not only reduced overall genetic diversity but also the frequency of variants of cultivated soybean. Rare-allele variants were mainly located in intergenic and noncoding regions rather than coding regions, and in heterochromatin regions rather than euchromatic regions. There were 121,450 rare-allele variations in 36,213 G. max genes and 20,645 in 12,332 G. soja genes, resulting in nonsynonymous, stop gain or stop loss mutations. This study provided the first comprehensive understanding of rare-allele variants in wild and cultivated soybean genomes and its potential impact on gene functions. This information will be valuable for future studies aimed at improving soybean varieties, as these variants may help reveal the underlying mechanisms controlling traits and have the potential to improve stress resistance, yield, and adaptability to environments.
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