Identification of a drought stress response module in tomato plants commonly induced by fungal endophytes that confer increased drought tolerance

被引:0
|
作者
Ortega-Villaizan, Adrian Gonzalez [1 ]
King, Eoghan [1 ]
Patel, Manish K. [1 ]
Rodriguez-Dobreva, Estefania [1 ]
Gonzalez-Teuber, Marcia [2 ]
Ramos, Patricio [3 ]
Vicente-Carbajosa, Jesus [1 ,4 ]
Benito, Begona [1 ,4 ]
Pollmann, Stephan [1 ,4 ]
机构
[1] Univ Politecn Madrid UPM, Ctr Biotecnol & Genomica Plantas, Inst Nacl Invest & Tecnol Agr & Alimentaria INIA C, Campus Montegancedo, Pozuelo De Alarcon 28223, Madrid, Spain
[2] Pontificia Univ Catolica Chile, Fac Ciencias Biol, Dept Genet Mol & Microbiol, Santiago, Chile
[3] Univ Talca, Plant Microorganism Interact Lab, Inst Ciencias Biol, Talca, Chile
[4] Univ Politecn Madrid, Escuela Tecn Super Ingn Agron Alimentaria & Biosis, Dept Biotecnol Biol Vegetal, Madrid, Spain
关键词
Drought stress; Endosymbiosis; Plant-microbe interactions; Solanum lycopersicum; Transcriptional regulation; PIRIFORMOSPORA-INDICA; ARABIDOPSIS; EXPRESSION; GROWTH; GENES; ACCUMULATION; MECHANISMS;
D O I
10.1007/s11103-024-01532-y
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Global climate change exacerbates abiotic stresses, as drought, heat, and salt stresses are anticipated to increase significantly in the coming years. Plants coexist with a diverse range of microorganisms. Multiple inter-organismic relationships are known to confer benefits to plants, including growth promotion and enhanced tolerance to abiotic stresses. In this study, we investigated the mutualistic interactions between three fungal endophytes originally isolated from distinct arid environments and an agronomically relevant crop, Solanum lycopersicum. We demonstrated a significant increase in shoot biomass under drought conditions in co-cultivation with Penicillium chrysogenum isolated from Antarctica, Penicillium minioluteum isolated from the Atacama Desert, Chile, and Serendipita indica isolated from the Thar Desert, India. To elucidate plant gene modules commonly induced by the different endophytes that could explain the observed drought tolerance effect in tomato, a comprehensive transcriptomics analysis was conducted. This analysis led to the identification of a shared gene module in the fungus-infected tomato plants. Within this module, gene network analysis enabled us to identify genes related to abscisic acid (ABA) signaling, ABA transport, auxin signaling, ion homeostasis, proline biosynthesis, and jasmonic acid signaling, providing insights into the molecular basis of drought tolerance commonly mediated by fungal endophytes. Our findings highlight a conserved response in the mutualistic interactions between endophytic fungi isolated from unrelated environments and tomato roots, resulting in improved shoot biomass production under drought stress.
引用
收藏
页数:15
相关论文
共 43 条
  • [1] Roles of Fungal Endophytes and Viruses in Mediating Drought Stress Tolerance in Plants
    Dastogeer, Khondoker Mohammad Golam
    Chakraborty, Anindita
    Sarker, Mohammad Saiful Alam
    Alder, Mst Arjina
    INTERNATIONAL JOURNAL OF AGRICULTURE AND BIOLOGY, 2020, 24 (06) : 1497 - 1512
  • [2] Fungal Endophytes Promote Tomato Growth and Enhance Drought and Salt Tolerance
    Morsy, Mustafa
    Cleckler, Blake
    Armuelles-Millican, Hayden
    PLANTS-BASEL, 2020, 9 (07): : 1 - 18
  • [3] Self-grafting-induced epigenetic changes leading to drought stress tolerance in tomato plants
    Fuentes-Merlos, Maria Isabel
    Bamba, Masaru
    Sato, Shusei
    Higashitani, Atsushi
    DNA RESEARCH, 2023, 30 (04)
  • [4] Fungal Endophytes Enhance Wheat and Tomato Drought Tolerance in Terms of Plant Growth and Biochemical Parameters
    Miranda, Victoria
    Silva-Castro, Gloria Andrea
    Ruiz-Lozano, Juan Manuel
    Fracchia, Sebastian
    Garcia-Romera, Inmaculada
    JOURNAL OF FUNGI, 2023, 9 (03)
  • [5] Fungal endophytes and a virus confer drought tolerance to Nicotiana bentharniana plants through modulating osmolytes, antioxidant enzymes and expression of host drought responsive genes
    Dastogeer, Khondoker M. G.
    Li, Hua
    Sivasithamparam, Krishnapillai
    Jones, Michael G. K.
    Wylie, Stephen J.
    ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2018, 149 : 95 - 108
  • [6] Christolea crassifolia HARDY gene enhances drought stress tolerance in transgenic tomato plants
    Guo, Xinyong
    Zhang, Li
    Zhu, Jianbo
    Wang, Aiying
    Liu, Hongling
    PLANT CELL TISSUE AND ORGAN CULTURE, 2017, 129 (03) : 469 - 481
  • [7] Ascophyllum nodosum biostimulants and their role in enhancing tolerance to drought stress in tomato plants
    Goni, Oscar
    Quille, Patrick
    O'Connell, Shane
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2018, 126 : 63 - 73
  • [8] The Tomato WRKY Transcription Factor SlWRKY17 Positively Regulates Drought Stress Tolerance in Transgenic Tobacco Plants
    Li, W.
    Li, D. H.
    Li, H. Y.
    Wang, M. C.
    Wang, Z.
    Liu, J. H.
    RUSSIAN JOURNAL OF PLANT PHYSIOLOGY, 2022, 69 (07)
  • [9] Effect of Rhizobacteria On Drought Stress Tolerance of Tomato Plants at Vegetative and Fruiting Growth Stages
    Altunlu, Hakan
    Coban, Gokce Aydoner
    Gul, Ayse
    Ozaktan, Hatice
    JOURNAL OF CROP HEALTH, 2024, 76 (01) : 195 - 208
  • [10] Christolea crassifolia HARDY gene enhances drought stress tolerance in transgenic tomato plants
    Xinyong Guo
    Li Zhang
    Jianbo Zhu
    Aiying Wang
    Hongling Liu
    Plant Cell, Tissue and Organ Culture (PCTOC), 2017, 129 : 469 - 481