Literature DB >> 27377547

Identification of candidate domestication regions in the radish genome based on high-depth resequencing analysis of 17 genotypes.

Namshin Kim1,2, Young-Min Jeong3, Seongmun Jeong1, Goon-Bo Kim4, Seunghoon Baek4, Young-Eun Kwon4, Ara Cho4, Sang-Bong Choi4, Jiwoong Kim5, Won-Jun Lim1,2, Kyoung Hyoun Kim1,2, Won Park1,2, Jae-Yoon Kim1,2, Jin-Hyun Kim6, Bomi Yim3, Young Joon Lee3, Byung-Moon Chun7, Young-Pyo Lee7, Beom-Seok Park8, Hee-Ju Yu9, Jeong-Hwan Mun10.   

Abstract

KEY MESSAGE: This study provides high-quality variation data of diverse radish genotypes. Genome-wide SNP comparison along with RNA-seq analysis identified candidate genes related to domestication that have potential as trait-related markers for genetics and breeding of radish. Radish (Raphanus sativus L.) is an annual root vegetable crop that also encompasses diverse wild species. Radish has a long history of domestication, but the origins and selective sweep of cultivated radishes remain controversial. Here, we present comprehensive whole-genome resequencing analysis of radish to explore genomic variation between the radish genotypes and to identify genetic bottlenecks due to domestication in Asian cultivars. High-depth resequencing and multi-sample genotyping analysis of ten cultivated and seven wild accessions obtained 4.0 million high-quality homozygous single-nucleotide polymorphisms (SNPs)/insertions or deletions. Variation analysis revealed that Asian cultivated radish types are closely related to wild Asian accessions, but are distinct from European/American cultivated radishes, supporting the notion that Asian cultivars were domesticated from wild Asian genotypes. SNP comparison between Asian genotypes identified 153 candidate domestication regions (CDRs) containing 512 genes. Network analysis of the genes in CDRs functioning in plant signaling pathways and biochemical processes identified group of genes related to root architecture, cell wall, sugar metabolism, and glucosinolate biosynthesis. Expression profiling of the genes during root development suggested that domestication-related selective advantages included a main taproot with few branched lateral roots, reduced cell wall rigidity and favorable taste. Overall, this study provides evolutionary insights into domestication-related genetic selection in radish as well as identification of gene candidates with the potential to act as trait-related markers for background selection of elite lines in molecular breeding.

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Year:  2016        PMID: 27377547     DOI: 10.1007/s00122-016-2741-z

Source DB:  PubMed          Journal:  Theor Appl Genet        ISSN: 0040-5752            Impact factor:   5.699


  48 in total

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Journal:  Plant Physiol       Date:  2006-01-13       Impact factor: 8.340

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3.  Temperature-related cline in the root mass fraction in East Asian wild radish along the Japanese archipelago.

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6.  Identification of genome-wide single-nucleotide polymorphisms among geographically diverse radish accessions.

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7.  SSR-Sequencing Reveals the Inter- and Intraspecific Genetic Variation and Phylogenetic Relationships among an Extensive Collection of Radish (Raphanus) Germplasm Resources.

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