A chickpea genetic variation map based on the sequencing of 3,366 genomes

种质资源 生物 驯化 遗传多样性 基因组学 基因组 选择(遗传算法) 遗传变异 单倍型 生物技术 基因库 遗传学 植物育种 等位基因 基因 农学 人口 人工智能 人口学 社会学 计算机科学
作者
Rajeev K. Varshney,Manish Roorkiwal,Shuai Sun,Prasad Bajaj,Annapurna Chitikineni,Mahendar Thudi,Narendra Pratap Singh,Xiao Du,Hari D. Upadhyaya,Aamir W. Khan,Yue Wang,Vanika Garg,Guangyi Fan,Wallace Cowling,José Crossa,Laurent Gentzbittel,Kai P. Voss‐Fels,Vinod Kumar Valluri,Pallavi Sinha,Vikas Kumar Singh,Cécile Ben,Abhishek Rathore,Ramu Punna,M. P. Singh,Bunyamin Tar’an,Chellapilla Bharadwaj,Mohammad Yasin,M. S. Pithia,Servejeet Singh,Khela Ram Soren,Himabindu Kudapa,Diego Jarquín,Philippe Cubry,Lee T. Hickey,G. P. Dixit,Anne-Céline Thuillet,Aladdin Hamwieh,Shiv Kumar,Amit Deokar,Sushil K. Chaturvedi,Aleena Francis,Réka Howard,Debasis Chattopadhyay,David Edwards,Eric Lyons,Yves Vigouroux,Ben J. Hayes,Eric von Wettberg,Swapan K. Datta,Huanming Yang,Henry T. Nguyen,Jian Wang,Kadambot H. M. Siddique,Trilochan Mohapatra,Jeffrey L. Bennetzen,Xun Xu,Xin Liu
出处
期刊:Nature [Nature Portfolio]
卷期号:599 (7886): 622-627 被引量:89
标识
DOI:10.1038/s41586-021-04066-1
摘要

Zero hunger and good health could be realized by 2030 through effective conservation, characterization and utilization of germplasm resources1. So far, few chickpea (Cicer arietinum) germplasm accessions have been characterized at the genome sequence level2. Here we present a detailed map of variation in 3,171 cultivated and 195 wild accessions to provide publicly available resources for chickpea genomics research and breeding. We constructed a chickpea pan-genome to describe genomic diversity across cultivated chickpea and its wild progenitor accessions. A divergence tree using genes present in around 80% of individuals in one species allowed us to estimate the divergence of Cicer over the last 21 million years. Our analysis found chromosomal segments and genes that show signatures of selection during domestication, migration and improvement. The chromosomal locations of deleterious mutations responsible for limited genetic diversity and decreased fitness were identified in elite germplasm. We identified superior haplotypes for improvement-related traits in landraces that can be introgressed into elite breeding lines through haplotype-based breeding, and found targets for purging deleterious alleles through genomics-assisted breeding and/or gene editing. Finally, we propose three crop breeding strategies based on genomic prediction to enhance crop productivity for 16 traits while avoiding the erosion of genetic diversity through optimal contribution selection (OCS)-based pre-breeding. The predicted performance for 100-seed weight, an important yield-related trait, increased by up to 23% and 12% with OCS- and haplotype-based genomic approaches, respectively.

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