Whole-genome and genome-wide association studies improve key agricultural traits of safflower for industrial and medicinal use

Author:

Chen Jiang1,Guo Shuai12,Hu Xueli3,Wang Rui1,Jia Donghai4,Li Qiang4,Yin Xianmei1,Liao Xuejiao12,Hu Zunhong3,Wang Peiqi3,Ren Chaoxiang1,Dong Shuai1,Chen Chao1,Chen Shilin12,Xu Jiang2,Pei Jin1

Affiliation:

1. Chengdu University of Traditional Chinese Medicine State Key Laboratory of Southwestern Chinese Medicine Resources, College of Pharmacy, , Chengdu 611137 , China

2. China Academy of Chinese Medical Sciences Institute of Chinese Materia Medica, , Beijing 100700 , China

3. Yunnan Academy of Agricultural Sciences Industrial Crops Research Institute, , Kunming 650205 , China

4. Xinjiang Academy of Agricultural Sciences Institute of Economic Crops, , Urumchi 830091 , China

Abstract

Abstract Safflower (Carthamus tinctorius) is widely cultivated around the world for its seeds and flowers. The presence of linoleic acid (LA) in its seeds and hydroxysafflor yellow A (HSYA) in its flowers are the crucial traits that enable safflower to be used for industrial and medicinal purposes. Understanding the genetic control of these traits is essential for optimizing the quality of safflower and its breeding. To further this research, we present a chromosome-scale assembly of the genome of the safflower variety ‘Chuanhonghua 1’, which was achieved using an integrated strategy combining Illumina, Oxford Nanopore, and Hi-C sequencing. We obtained a 1.17-Gb assembly with a contig N50 of 1.08 Mb, and all assembled sequences were assigned to 12 pseudochromosomes. Safflower’s evolution involved the core eudicot γ-triplication event and a whole-genome duplication event, which led to large-scale genomic rearrangements. Extensive genomic shuffling has occurred since the divergence of the ancestor of dicotyledons. We conducted metabolite and transcriptome profiles with time- and part-dependent changes and screened candidate genes that significantly contribute to seed lipid biosynthesis. We also analyzed key gene families that participate in LA and HSYA biosynthesis. Additionally, we re-sequenced 220 safflower lines and carried out a genome-wide association study using high-quality SNP data for eight agronomic traits. We identified SNPs related to important traits in safflower. Besides, the candidate gene HH_034464 (CtCGT1) was shown to be involved in the biosynthesis of HSYA. Overall, we provide a high-quality reference genome and elucidate the genetic basis of LA and HSYA biosynthesis in safflower. This vast amount of data will benefit further research for functional gene mining and breeding in safflower.

Funder

and the Xinglin Talent Program of Chengdu University of TCM

Innovation Team and Talents Cultivation Program of National Administration of Traditional Chinese Medicine

Sichuan Provincial

the Key R&D Plan of Science and Technology Department of Sichuan Province

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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