Molecular Mechanisms of Gene Expression Regulation in Response to Heat Stress in Hemerocallis fulva

被引:0
|
作者
Chu, Boyan [1 ]
Liu, Weixue [1 ,2 ,3 ,4 ]
Li, Jinxia [1 ]
Zhang, Xiaofei [1 ]
Li, Ping [2 ,3 ,4 ]
机构
[1] Hebei Acad Forestry & Grassland Sci, Shijiazhuang 050061, Peoples R China
[2] Hebei Agr Univ, Hebei Key Lab Floral Biol Breeding, Baoding 071000, Peoples R China
[3] Hebei Agr Univ, Coll Landscape & Tourism, Baoding 071000, Peoples R China
[4] Hebei Agr Univ, Coll Forestry, Baoding 071000, Peoples R China
来源
PLANTS-BASEL | 2025年 / 14卷 / 05期
关键词
Hemerocallis fulva; heat stress; transcriptome; WGCNA(Weighted Gene Co-expression Network Analysis) analysis; molecular mechanism; TEMPERATURE STRESS; ANNOTATION; GROWTH;
D O I
10.3390/plants14050690
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Hemerocallis fulva is one of the three major flowers in the world; its flower type and color are very rich, with high ornamental value and economic value. Heat stress severely limits the cultivation and geographical distribution of H. fulva. Genetic resources and their underlying molecular mechanisms constitute the cornerstone of contemporary breeding technologies. However, research on the response of H. fulva to heat stress remains relatively scant. In this study, we used the heat-resistant 'Dan Yang' variety and heat-sensitive 'Nuo Mi Lu' variety with phenotypic expression as experimental materials to determine the changes in substance and gene expression levels, and used bioinformatics technology to study the molecular mechanisms and gene resource mining of H. fulva in response to heat stress. We identified several thousand differentially expressed genes (DEGs) in different comparison groups. At the same time, 1850 shared DEGs were identified in two H. fulva genotypes responding to heat stress. The dynamic cutting algorithm was used to cluster the genes, and 23 gene co-expression modules were obtained. The MEorangered, MElightpink, and MEmagenta modules were significantly correlated with physiological and biochemical traits. We identified ten key genes closely related to the response of H. fulva to heat stress, including plant-pathogen interactions, plant hormone signal transduction, oxidative transduction phosphorylation, and the plant hormone signal transduction pathway. This study not only analyzes the molecular mechanism of H. fulva response to heat stress, but also provides genetic resources for breeding H. fulva heat tolerance.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Heat Stress Response Mechanisms and Resilience Strategies in Wheat
    Khanzada, Anab
    Yan, Keshuang
    Hu, Wenhao
    Malko, Maguje
    Khan, Khalid Ali
    Bao, Yinguang
    Elboughdiri, Noureddine
    Li, Yan
    JOURNAL OF AGRONOMY AND CROP SCIENCE, 2025, 211 (01)
  • [32] Differential gene expression of an Antarctic Chlorella in response to temperature stress
    Chong, Geeng-Loo
    Chu, Wan-Loy
    Othman, Rofina Yasmin
    Phang, Siew-Moi
    POLAR BIOLOGY, 2011, 34 (05) : 637 - 645
  • [33] Gene regulation in liver of cattle exposed to heat stress
    Antoniou, E.
    Robertson, J.
    Spiers, D.
    JOURNAL OF ANIMAL SCIENCE, 2007, 85 : 625 - 625
  • [34] The complex transcriptional regulation of heat stress response in maize
    Ruan, Mingxiu
    Zhao, Heng
    Wen, Yujing
    Chen, Hao
    He, Feng
    Hou, Xingbo
    Song, Xiaoqin
    Jiang, Haiyang
    Ruan, Yong-Ling
    Wu, Leiming
    STRESS BIOLOGY, 2024, 4 (01):
  • [35] Regulation of gene expression under temperature stress and genome-wide analysis of heat shock protein family in Eriocheir sinensis
    Yin, Chijie
    Pang, Aobo
    Liu, Rongchen
    Yang, Wenqi
    Wu, Haiyue
    Yang, Jie
    Xuan, Jiayu
    Sun, Xiaoli
    Ding, Ge
    Zhang, Huabin
    Xing, Xiumei
    Tang, Boping
    Fu, Longlong
    Wang, Gang
    Zhang, Daizhen
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 308
  • [36] Barley miRNAs and Their Targets Regulation in Response to Heat Stress at the Early Stage of Development
    Kruszka, Katarzyna
    Pacak, Andrzej
    Swida-Barteczka, Aleksandra
    Kesy, Jacek
    Jarmolowski, Artur
    Szweykowska-Kulinska, Zofia
    JOURNAL OF AGRONOMY AND CROP SCIENCE, 2025, 211 (02)
  • [37] Molecular cloning of the heat shock protein 90 gene in scallop Mizuhopecten yessoensis and the effects of temperature stress on gene expression
    Ding, J.
    Wang, H.
    Yin, C.
    Zhao, X. W.
    Sun, X.
    Liu, X. H.
    Han, L. S.
    Chang, Y. Q.
    ISJ-INVERTEBRATE SURVIVAL JOURNAL, 2018, 15 : 2 - 13
  • [38] The Impact of Chronic Heat Stress on the Growth, Survival, Feeding, and Differential Gene Expression in the Sea Urchin Strongylocentrotus intermedius
    Zhan, Yaoyao
    Li, Jiaxiang
    Sun, Jingxian
    Zhang, Weijie
    Li, Yingying
    Cui, Donyao
    Hu, Wanbin
    Chang, Yaqing
    FRONTIERS IN GENETICS, 2019, 10
  • [39] Gene regulation in liver of cattle exposed to heat stress.
    Antoniou, E.
    Robertson, J.
    Spiers, D.
    POULTRY SCIENCE, 2007, 86 : 625 - 625
  • [40] Expression patterns of molecular chaperone genes in Antarctic psychrophilic yeast, Glaciozyma antarctica PI12 in response to heat stress
    Yusof, Nur Athirah
    Wong, Clemente Michael Vui Ling
    Murad, Abdul Munir Abdul
    Abu Bakar, Farah Diba
    Mahadi, Nor Muhammad
    Rahman, Ahmad Yamin Abdul
    Zainuddin, Nursyafiqi
    Najimudin, Mohd Nazalan Mohd
    POLISH POLAR RESEARCH, 2019, 40 (03) : 273 - 292