Analysis of Transcriptional and Metabolic Differences in the Petal Color Change Response to High-Temperature Stress in Various Chrysanthemum Genotypes

被引:0
|
作者
Li, Zhimei [1 ]
Zhou, Hougao [1 ]
Chen, Yan [2 ]
Chen, Minyi [1 ]
Yao, Yutong [1 ]
Luo, Honghui [1 ]
Wu, Qing [1 ]
Wang, Fenglan [1 ,3 ]
Zhou, Yiwei [4 ]
机构
[1] Zhongkai Univ Agr & Engn, Coll Hort & Landscape Architecture, Guangzhou 510225, Peoples R China
[2] Renshan Tianyuan Guangdong Agr Sci & Technol Dev C, Yunfu 527329, Peoples R China
[3] Zhonghua Modern Agr Res Inst, Dept Gastroenterol, Guangzhou 510800, Peoples R China
[4] Guangdong Acad Agr Sci, Environm Hort Res Inst, Guangdong Prov Key Lab Ornamental Plant Germplasm, Guangzhou 510640, Peoples R China
来源
AGRONOMY-BASEL | 2024年 / 14卷 / 12期
关键词
chrysanthemum; high temperature; anthocyanin; flower color; transcriptome; ANTHOCYANIN DEGRADATION; HEAT-STRESS; MOLECULAR-MECHANISMS; BIOSYNTHESIS; GENE; IDENTIFICATION; EXPRESSION; PIGMENTS;
D O I
10.3390/agronomy14122863
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Flower color is one of the most important ornamental traits of chrysanthemums. Previous studies have shown that high temperatures can cause the petals of some chrysanthemum varieties to fade; however, the molecular mechanisms behind this phenomenon remain poorly understood. This study examines the mechanisms of color change in purple chrysanthemums under high-temperature stress using combined metabolomic and transcriptomic analyses. Four chrysanthemum varieties-two heat-stable ('Zi Feng Che' and 'Chrystal Regal') and two heat-sensitive ('Zi Hong Tuo Gui' and 'Zi Lian')-were analyzed. High-temperature conditions (35 degrees C) significantly downregulated key anthocyanins in heat-sensitive varieties, particularly cyanidin-3-O-(3 '',6 ''-O-dimalonyl)glucoside and pelargonidin-3-O-(3 '',6 ''-O-dimalonyl)glucoside. Transcriptome analysis revealed differential gene expression involved in anthocyanin biosynthesis and degradation, with significant enrichment in the MAPK signaling, phenylpropanoid biosynthesis, flavonoid biosynthesis, and anthocyanin biosynthesis pathways. The study highlighted the differential expression of CHS, DFR, ANS, GT1, 3AT, and UGT75C1 genes in anthocyanin synthesis between heat-sensitive and heat-tolerant varieties. Compared to heat-stable varieties, the petals of heat-sensitive varieties exhibited greater differential expression of heat-responsive transcription factors, including HSFs, ERFs, MYBs, and WRKYs. Genes that show a significant negative correlation with the downregulated anthocyanins, including Cse_sc012959.1_g030.1 (beta G), Cse_sc001798.1_g020.1 (MYB), Cse_sc006944.1_g010.1 (MYB), and Cse_sc000572.1_g090.1 (HSF), might regulate anthocyanin accumulation in chrysanthemums in response to high-temperature stress. These results provide guidance for the cultivation management and variety selection of chrysanthemums under high-temperature conditions. Additionally, they lay the foundation for elucidating the molecular mechanisms of flower color stability under heat stress and for breeding new heat-tolerant varieties.
引用
收藏
页数:19
相关论文
共 21 条
  • [1] Transcriptome analysis reveals chrysanthemum flower discoloration under high-temperature stress
    Shi, Zhenjie
    Han, Xiaoying
    Wang, Guohui
    Qiu, Jing
    Zhou, Li-jie
    Chen, Sumei
    Fang, Weimin
    Chen, Fadi
    Jiang, Jiafu
    FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [2] Synergistic Regulation at Physiological, Transcriptional, and Metabolic Levels in Dendrobium huoshanense Plants Under Combined Drought and High-Temperature Stress
    Zhang, Xingen
    Li, Guohui
    Wei, Peipei
    Du, Binbin
    Liu, Shifan
    Dai, Jun
    GENES, 2025, 16 (03)
  • [3] Proteomic profile analysis of Pyropia haitanensis in response to high-temperature stress
    Xu, Yan
    Chen, Changsheng
    Ji, Dehua
    Hang, Nan
    Xie, Chaotian
    JOURNAL OF APPLIED PHYCOLOGY, 2014, 26 (01) : 607 - 618
  • [4] An integrated physiological indicator and transcriptomic analysis reveals the response of soybean buds to high-temperature stress
    Li, Jiajia
    Wu, Meiyan
    Chen, Haoran
    Liao, Wei
    Yao, Shu
    Wei, Ying
    Wang, Heng
    Long, Qun
    Hu, Xiaoyu
    Wang, Wei
    Wang, Guoji
    Qiu, Lijuan
    Wang, Xiaobo
    BMC PLANT BIOLOGY, 2024, 24 (01):
  • [5] Comparative Transcriptome Analysis of Megacopta cribraria (Hemiptera: Plataspidae) in Response to High-Temperature Stress
    Cui, Juan
    Zhu, Shi-yu
    Gao, Yu
    Bi, Rui
    Xu, Zhe
    Shi, Shu-sen
    JOURNAL OF ECONOMIC ENTOMOLOGY, 2019, 112 (01) : 407 - 415
  • [6] Function Analysis of a Maize Endo-1,4-β-xylanase Gene ZmHSL in Response to High-Temperature Stress
    Pang, Shengyan
    Zheng, Hongyan
    Zhang, Jiankui
    Ren, Xiaotian
    Zong, Xuefeng
    Zou, Junjie
    Wang, Lei
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (16)
  • [7] Phenotypic, stability and adaptation analysis of vegetable pea ( Pisum sativum var hortense L.) genotypes for high-temperature stress tolerance
    Devi, Jyoti
    Sagar, Vidya
    Dubey, R. K.
    Kumar, Rajeev
    Bahadur, Anant
    Verma, Ravindra K.
    Rai, N.
    Behera, T. K.
    SCIENTIA HORTICULTURAE, 2025, 340
  • [8] Transcriptome analysis reveals key genes involved in the eggplant response to high-temperature stress
    Liu, Renjian
    Shu, Bingbing
    Wang, Yuyuan
    Yu, Bingwei
    Wang, Yixi
    Gan, Yuwei
    Liang, Yonggui
    Qiu, Zhengkun
    Yang, Jianguo
    Yan, Shuangshuang
    Cao, Bihao
    ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2023, 211
  • [9] Comparative Phosphoproteomic Analysis Reveals the Response of Starch Metabolism to High-Temperature Stress in Rice Endosperm
    Pang, Yuehan
    Hu, Yaqi
    Bao, Jinsong
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (19)
  • [10] Comparative analysis of maca (Lepidium meyenii) proteome profiles reveals insights into response mechanisms of herbal plants to high-temperature stress
    Wang, Zhan Qi
    Zhao, Qi Ming
    Zhong, Xueting
    Xiao, Li
    Ma, Li Xuan
    Wu, Chou Fei
    Zhang, Zhongshan
    Zhang, Li Qin
    Tian, Yang
    Fan, Wei
    BMC PLANT BIOLOGY, 2020, 20 (01)