Journal of Systematics and Evolution

• •    

  

  • 收稿日期:2025-02-14 接受日期:2025-09-01 出版日期:2025-11-19 发布日期:2025-11-19

Chromosome-level genome assembly of the endangered Magnolia sinostellata: Insights into genome evolution, cold stress resistance, and terpenoid biosynthesis

Huijuan Zhou1,2, Fan Wu2, Hengzhao Liu2, Jiayu Ma2, Huiling Yan1, Renna Li1, Lu Fan1, Fangbing Ding1, YuweiLinghu1, Bin Xie1, Xiaoai Fang1, Shu Yang1, Ming Yue1,2, Peng Zhao2*, and Yaling Wang1*   

  1. 1Xi′an Botanical Garden of Shaanxi Province, Institute of Botany of Shaanxi Province, Xi′an, Shaanxi Academy of Science, Shaanxi 710061, China

    2Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education, College of Life Sciences, Northwest University, Xi′an, Shaanxi 710069, China

    *Authors for correspondence. Peng Zhao. E‐mail: pengzhao@nwu.edu.cn; Yaling Wang. E‐mail: wangyaling@xab.ac.cn

  • Received:2025-02-14 Accepted:2025-09-01 Online:2025-11-19 Published:2025-11-19
  • Supported by:
    This work was supported by the Science and Technology Program of Shaanxi Academy of Science (2023K‐49), Science Foundation of Shaanxi Province (2025JC‐YBQN‐261), Shaanxi Forestry Science and Technology Innovation Key Project (SXLK2023‐02‐20), Qinling Hundred Talents Project of Shaanxi Academy of Science (2023K‐26), Shaanxi Province Science and Technology Department Innovative Talent Promotion Plan‐Science and Technology Innovation Team Project (2021‐TD‐33), Shaanxi Academy of Sciences Science and Technology Plan Project (2019K‐02), National Natural Science Foundation of China (32370386 and 32070372), Science Foundation for Distinguished Young Scholars of Shaanxi Province (2023‐JC‐JQ‐22), Basic Research Project of Shaanxi Academy of Fundamental Science (22JHZ005 and 23JHZ009), Shaanxi Key Research and Development Program (2024NC‐YBXM‐064), Graduate and Innovation Program of Northwest University (CX2024188), and the Xi′an Science and Technology Plan Agricultural Technology Research and Development Project (23NYGG0025 and 22NYYF011).

Abstract: The genus Magnolia belongs to Magnoliaceae, an early diverging lineage of the Magnoliales, and is cultivated globally for its high ornamental and commercial values. As a large genus in the family Magnoliaceae, Magnolia species are regarded as highly valuable in phylogenetic and conservation biological studies. However, the whole genome data of Magnolia is still relatively insufficient. Here, we present a high-quality, chromosome-level genome sequence of Magnolia sinostellata (1.86 Gb) with a scaffold N50 of 85.33 Mb. The 19 M. sinostellata genome chromosomes revealed 11 main duplications representing the subgenome. Comparative genomics analysis revealed that the variance in the number of abiotic stress resistance genes among Magnoliid species are related to different environmental adaptations. Most of the genes related to MAPK signaling and stress resistance pathways in the investigated M. sinostellata species are expanded, compared to the other species. Furthermore, the comparative genomics analysis of three Magnolia assemblies, M. sinostellata, Magnolia biondii, and Magnolia sieboldii revealed that large inversions were enriched in terpenoid metabolic pathways, stress resistance and flavonoid biosynthesis, and DNA replication proteins. Using transcriptome sequencing data, we analyzed the expression levels of genes related to terpenoid biosynthesis (terpene synthase) and ICE–CBF–COR gene models related to cold tolerance in various tissues and the buds under different temperature conditions. The high-quality assembly of M. sinostellata and the ICE–CBF–COR bioinformatic analysis cascade provide valuable resources for studying the phylogeny and evolution of Magnoliaceae and angiosperms, while the candidate genes will provide foundational support for molecular breeding in Magnolia species.

Key words: chromosome duplication, chromosome‐scale genome assembly, comparative genome, ICE–CBF–COR signaling pathway, Magnolia sinostellata, terpenoid biosynthesis