生物
驯化
分子育种
基因组
遗传学
基因组学
基因
作者
Peng-Cheng Lin,Kailiang Wang,Yupeng Wang,Zhikang Hu,Chao Yan,Hu Huang,Xianjin Ma,Yongqing Cao,Wei Long,Weixin Liu,Xinlei Li,Zhengqi Fan,Jiyuan Li,Ning Ye,Huadong Ren,Xiaohua Yao,Hengfu Yin
出处
期刊:Genome Biology
[Springer Nature]
日期:2022-01-10
卷期号:23 (1)
被引量:54
标识
DOI:10.1186/s13059-021-02599-2
摘要
As a perennial crop, oil-Camellia possesses a long domestication history and produces high-quality seed oil that is beneficial to human health. Camellia oleifera Abel. is a sister species to the tea plant, which is extensively cultivated for edible oil production. However, the molecular mechanism of the domestication of oil-Camellia is still limited due to the lack of sufficient genomic information.To elucidate the genetic and genomic basis of evolution and domestication, here we report a chromosome-scale reference genome of wild oil-Camellia (2.95 Gb), together with transcriptome sequencing data of 221 cultivars. The oil-Camellia genome, assembled by an integrative approach of multiple sequencing technologies, consists of a large proportion of repetitive elements (76.1%) and high heterozygosity (2.52%). We construct a genetic map of high-density corrected markers by sequencing the controlled-pollination hybrids. Genome-wide association studies reveal a subset of artificially selected genes that are involved in the oil biosynthesis and phytohormone pathways. Particularly, we identify the elite alleles of genes encoding sugar-dependent triacylglycerol lipase 1, β-ketoacyl-acyl carrier protein synthase III, and stearoyl-acyl carrier protein desaturases; these alleles play important roles in enhancing the yield and quality of seed oil during oil-Camellia domestication.We generate a chromosome-scale reference genome for oil-Camellia plants and demonstrate that the artificial selection of elite alleles of genes involved in oil biosynthesis contributes to oil-Camellia domestication.
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