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High‐quality <i>Fagopyrum esculentum</i> genome provides insights into the flavonoid accumulation among different tissues and self‐incompatibility

荞麦属 苦荞 生物 类黄酮生物合成 类黄酮 芦丁 查尔酮合酶 基因 植物 基因组 后转座子 异鼠李素 转录组 遗传学 生物合成 基因表达 生物化学 山奈酚 抗氧化剂 转座因子
作者
Qiangyou He,Dan Ma,Wei Li,Longsheng Xing,Hongyu Zhang,Yu Wang,Cailian Du,Xuanzhao Li,Zheng Jia,Xiuxiu Li,Jianan Liu,Zehou Liu,Yuqing Miao,Rui Feng,Lin Yang,Meijia Wang,Hongwei Lu,Xiaochen Li,Yao Xiao,Ruyu Wang,Hanfei Liang,Qinghong Zhou,Lijun Zhang,Chengzhi Liang,Huilong Du
出处
期刊:Journal of Integrative Plant Biology [Wiley]
标识
DOI:10.1111/jipb.13459
摘要

Common buckwheat (Fagopyrum esculentum) and Tartary buckwheat (Fagopyrum tataricum), the two most widely cultivated buckwheat species, differ greatly in flavonoid content and reproductive mode. Here, we report the first high-quality and chromosome-level genome assembly of common buckwheat with 1.2 Gb. Comparative genomic analysis revealed that common buckwheat underwent a burst of long terminal repeat retrotransposons insertion accompanied by numerous large chromosome rearrangements after divergence from Tartary buckwheat. Moreover, multiple gene families involved in stress tolerance and flavonoid biosynthesis such as multidrug and toxic compound extrusion (MATE) and chalcone synthase (CHS) underwent significant expansion in buckwheat, especially in common buckwheat. Integrated multi-omics analysis identified high expression of catechin biosynthesis-related genes in flower and seed in common buckwheat and high expression of rutin biosynthesis-related genes in seed in Tartary buckwheat as being important for the differences in flavonoid type and content between these buckwheat species. We also identified a candidate key rutin-degrading enzyme gene (Ft8.2377) that was highly expressed in Tartary buckwheat seed. In addition, we identified a haplotype-resolved candidate locus containing many genes reportedly associated with the development of flower and pollen, which was potentially related to self-incompatibility in common buckwheat. Our study provides important resources facilitating future functional genomics-related research of flavonoid biosynthesis and self-incompatibility in buckwheat.

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