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The pan-genome and local adaptation of Arabidopsis thaliana

Author

Listed:
  • Minghui Kang

    (Lanzhou University
    Sichuan University)

  • Haolin Wu

    (Sichuan University)

  • Huanhuan Liu

    (Sichuan University)

  • Wenyu Liu

    (Lanzhou University)

  • Mingjia Zhu

    (Lanzhou University)

  • Yu Han

    (Sichuan University)

  • Wei Liu

    (Sichuan University)

  • Chunlin Chen

    (Sichuan University)

  • Yan Song

    (Sichuan University)

  • Luna Tan

    (Sichuan University)

  • Kangqun Yin

    (Sichuan University)

  • Yusen Zhao

    (Sichuan University)

  • Zhen Yan

    (Sichuan University)

  • Shangling Lou

    (Lanzhou University
    Sichuan University)

  • Yanjun Zan

    (Chinese Academy of Agricultural Sciences)

  • Jianquan Liu

    (Lanzhou University
    Sichuan University)

Abstract

Arabidopsis thaliana serves as a model species for investigating various aspects of plant biology. However, the contribution of genomic structural variations (SVs) and their associate genes to the local adaptation of this widely distribute species remains unclear. Here, we de novo assemble chromosome-level genomes of 32 A. thaliana ecotypes and determine that variable genes expand the gene pool in different ecotypes and thus assist local adaptation. We develop a graph-based pan-genome and identify 61,332 SVs that overlap with 18,883 genes, some of which are highly involved in ecological adaptation of this species. For instance, we observe a specific 332 bp insertion in the promoter region of the HPCA1 gene in the Tibet-0 ecotype that enhances gene expression, thereby promotes adaptation to alpine environments. These findings augment our understanding of the molecular mechanisms underlying the local adaptation of A. thaliana across diverse habitats.

Suggested Citation

  • Minghui Kang & Haolin Wu & Huanhuan Liu & Wenyu Liu & Mingjia Zhu & Yu Han & Wei Liu & Chunlin Chen & Yan Song & Luna Tan & Kangqun Yin & Yusen Zhao & Zhen Yan & Shangling Lou & Yanjun Zan & Jianquan , 2023. "The pan-genome and local adaptation of Arabidopsis thaliana," Nature Communications, Nature, vol. 14(1), pages 1-14, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-42029-4
    DOI: 10.1038/s41467-023-42029-4
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    1. Yao Zhou & Zhiyang Zhang & Zhigui Bao & Hongbo Li & Yaqing Lyu & Yanjun Zan & Yaoyao Wu & Lin Cheng & Yuhan Fang & Kun Wu & Jinzhe Zhang & Hongjun Lyu & Tao Lin & Qiang Gao & Surya Saha & Lukas Muelle, 2022. "Graph pangenome captures missing heritability and empowers tomato breeding," Nature, Nature, vol. 606(7914), pages 527-534, June.
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    4. Wen-Biao Jiao & Korbinian Schneeberger, 2020. "Chromosome-level assemblies of multiple Arabidopsis genomes reveal hotspots of rearrangements with altered evolutionary dynamics," Nature Communications, Nature, vol. 11(1), pages 1-10, December.
    5. Susanna Atwell & Yu S. Huang & Bjarni J. Vilhjálmsson & Glenda Willems & Matthew Horton & Yan Li & Dazhe Meng & Alexander Platt & Aaron M. Tarone & Tina T. Hu & Rong Jiang & N. Wayan Muliyati & Xu Zha, 2010. "Genome-wide association study of 107 phenotypes in Arabidopsis thaliana inbred lines," Nature, Nature, vol. 465(7298), pages 627-631, June.
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    1. Ze Yan & Ji Yang & Wen-Tian Wei & Ming-Liang Zhou & Dong-Xin Mo & Xing Wan & Rui Ma & Mei-Ming Wu & Jia-Hui Huang & Ya-Jing Liu & Feng-Hua Lv & Meng-Hua Li, 2024. "A time-resolved multi-omics atlas of transcriptional regulation in response to high-altitude hypoxia across whole-body tissues," Nature Communications, Nature, vol. 15(1), pages 1-22, December.

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